Bibliography - Home - Springer978-1-4612-0033-8/1.pdf · Bibliography Chapter 1 ... G.S. Moschytz,...

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Bibliography Chapter 1 [1.1] M.S. Ghausi and K.R. Laker, Modern Filter Design, Englewood Cliffs, N.J: Prentice-Hall, 1981. [1.2] L.T. Bruton, Active RC Circuits, Englewood Cliffs, NJ: Prentice-Hall, 1980. [1.3] A.S. Sedra and P.O. Brackett, Filter Theory and Design: Active and Passive, Portland, OR: Matrix, 1978. [1.4] L.P. Huelsman and P.E. Allen, Introduction to the Theory and Design of Active Filters, New York: McGraw-Hill, 1980. [1.5] R. Schaumann, K.R. Laker, and M.S. Ghausi, Design of Analog Filters, Passive, Active RC and Switched-Capacitor, Englewood Cliffs, NJ: Prentice-Hall, 1990. [1.6] G.S. Moschytz, Linear Integrated Networks: Fundamentals, New York: Von Nostrand Reinhold, 1975. [1.7] G.S. Moschytz, Linear Integrated Networks: Design, New York: Von Nostrand Reinhold, 1975.

Transcript of Bibliography - Home - Springer978-1-4612-0033-8/1.pdf · Bibliography Chapter 1 ... G.S. Moschytz,...

Bibliography

Chapter 1

[1.1] M.S. Ghausi and K.R. Laker, Modern Filter Design, Englewood Cliffs, N.J: Prentice-Hall, 1981.

[1.2] L.T. Bruton, Active RC Circuits, Englewood Cliffs, NJ: Prentice-Hall, 1980.

[1.3] A.S. Sedra and P.O. Brackett, Filter Theory and Design: Active and Passive, Portland, OR: Matrix, 1978.

[1.4] L.P. Huelsman and P.E. Allen, Introduction to the Theory and Design of Active Filters, New York: McGraw-Hill, 1980.

[1.5] R. Schaumann, K.R. Laker, and M.S. Ghausi, Design of Analog Filters, Passive, Active RC and Switched-Capacitor, Englewood Cliffs, NJ: Prentice-Hall, 1990.

[1.6] G.S. Moschytz, Linear Integrated Networks: Fundamentals, New York: Von Nostrand Reinhold, 1975.

[1.7] G.S. Moschytz, Linear Integrated Networks: Design, New York: Von Nostrand Reinhold, 1975.

426 Bibliography

[1.8] K. Radhakrishnarao, V. Sethuraman, and P.K. Neelakantan, A novel "follow-the-master" filter, Proc. IEEE, Vol. 65, pp. 1725-1726, 1977.

[1.9] G.S. Moschytz (ed.), MOS Switched-Capacitor Filters: Analysis and Design, New York: IEEE Press, 1984.

[1.10] P.E. Allen and E. Sanchez-Sinencio, Switched Capacitor Circuits, New York: Van Nostrand Reinhold, 1984.

[1.11] P.V. Ananda Mohan, V. Ramachandran, and M.N.S. Swamy, Switched­Capacitor Filters: Theory, Analysis and Design, London: Prentice­Hall,1995.

[l.l2] R. Unbehauen and A. Cichocki, MOS Switched-Capacitor and Con­tinuous-time Integrated Circuits and Systems, Berlin: Springer-Verlag, 1989.

[1.13] R. Gregorian and G.C. Ternes, Analog MOS Integrated Circuits for Signal Processing, New York: Wiley, 1986.

[1.14] P.E. Fleischer and K.R. Laker, A family of active switched-capacitor biquad building blocks, Bell System Technical Journal, Vol. 58, pp. 2235-2269, 1979.

[l.l5] R.L. Geiger and E. Sanchez-Sinencio, Active filter design using operational transconductance amplifiers-a tutorial, IEEE Circuits and Devices Magazine, pp. 20-32, 1985.

[1.16] J.E. Kardontchik, Introduction to the Design of Transconductor Capacitor Filters, Boston: Kluwer, 1992.

[1.17] E.T. Emms, A novel single transistor oscillator, Electronic Engineer­ing, pp. 506-508, 1960.

[1.IS] P.V. Ananda Mohan, Comments on "Grounded capacitor current mode oscillator using single current follower," IEEE Transactions on Cir­cuits and Systems, Vol. 41, Part I, pp. 614,1994.

[1.19] K.c. Smith and A.S. Sedra, The current conveyor-a new circuit building block, Proc. IEEE, Vol. 56, pp. 353-365, 1965.

[1.20] M. Banu and Y.P. Tsividis, Fully integrated active RC filters in MOS technology, IEEE Journal of Solid-State Circuits, Vol. SC-lS, pp. 644-651, 19S3.

[1.21] Y. Tsividis, M. Banu, and J. Khoury, Continuous-time MOSFET-C fil-

Bibliography 427

ters in VLSI, IEEE Journal of Solid-State Circuits, Vol. SC-21, pp. 15-30, 1986.

[1.22] Z. Czarnul, Modification of the Banu-Tsividis continuous-time integra­tor structure, IEEE Transactions on Circuits and Systems, Vol. CAS-33,pp. 714-716,1986.

[l.23] Y.P. Tsividis and J.O. Voorman (eds.), Integrated Continuous-time Fil­ters, Piscataway, NJ: IEEE Press, 1993.

[1.24] P.V. Ananda Mohan, New structures for MOSFET-C filters, Proc. IEEE, Vol. 75, pp. 957-960, 1987.

[1.25] c. Toumazou, FJ. Lidgey, and D.G. Haigh (eds.), Analogue IC De­sign: The Current-mode Approach, London: Peregrinus, 1990.

[1.26] S.S. Lee, R.H. Zele, D.J. Allstot, and G. Liang, CMOS continuous-time current-mode filters for high-frequency applications, IEEE Transac­tions on Circuits and Systems, Vol. 28, pp. 323-329, 1993.

[1.27] Croisier et aI., Digital filter for PCM encoded signals, US patent 3,777,130, reprinted in A.c. Salazar (ed.), Digital Signal Processors and Computers, New York: IEEE Press, 1977.

[1.28] J.A. Svoboda, Current conveyors, operational amplifiers and nullors, Proc. lEE, Part G, Vol. 136, pp. 317-322,1989.

[1.29] AD 844, 600 MHz 2000 vi Ils monolithic Op Amp, data sheet, Analog Devices, MA, U.S.A.

[1.30] E. Sackinger and G. Guggenbuhl, A versatile-building block: the dif­ferential difference amplifier, IEEE Journal of Solid-State Circuits, Vol. SC-22, pp. 287-294, 1987.

[1.31] S.c. Huang, M. Ismail, and S.R. Zarabadi, A wide-range differential difference amplifier: a basic block for analog signal processing in MOS technology, IEEE Transactions on Circuits and Systems, Vol. 40, pp. 289-301,1993.

[1.32] S.A. Mahmoud and A.M. Soliman, The differential difference opera­tional floating amplifier: a new block for analog signal processing in MOS technology, IEEE Transactions on Circuits and Systems, Part II, Vol. 45, pp. 148-157, 1998.

[1.33] c.P. Chiou and R. Schaumann, Design and performance of a fully inte-

428 Bibliography

grated bipolar 10.7MHz analog band-pass filter, IEEE Journal of Solid­State Circuits, Vol. SC-21, pp. 6-14, 1986.

[1.34] Y.P. Tsividis, Integrated continuous-time filter design-an overview, IEEE Journal of Solid-State Circuits, Vol. 29, pp. 166-176, 1994.

[1.35] A.S. Sedra, G.W. Roberts, and F. Gohh, The current conveyor history, progress and new results, Proc. lEE, Part G, Vol. 137, pp. 78-84,1990.

Chapter 2

[2.1] R.L. Geiger and E. Sanchez-Sinencio, Active filter design using opera­tional transconductance amplifiers, IEEE Circuits and Devices Maga­zine, pp. 20-32, 1985.

[2.2] c.A. Mead, Analog VLSI and neural systems, Reading, MA: Addison­Wesley, pp. 163-178, 1989.

[2.3] P.V. Ananda Mohan, Novel OTA-C filter structures using grounded capacitors, Proc. ISCAS, pp. 1347-1350, 1991.

[2.4] Y. Sun and 1.K. Fidler, Structure generation of current-mode two­integrator-loop dual-output OTA grounded capacitor filters, IEEE Transactions on Circuits and Systems, Part II, Vol. 43, pp. 659-663, 1996.

[2.5] L.c. Thomas, The biquad: Part I-Some practical design considera­tions, IEEE Transactions on Circuit Theory, Vol. CT-18, pp. 350-361, 1971.

[2.6] W.J. Kerwin, L.P. Huelsman, and R.W. Newcomb, State-variable syn­thesis for insensitive integrated circuit transfer functions, IEEE Journal of Solid-State Circuits, Vol. 2, pp. 87-92, 1973.

[2.7] P.V. Ananda Mohan, Nodal voltage simulation of active RC networks, IEEE Transactions on Circuits and Systems, Vol. 32, pp. 1085-1088, 1985.

[2.8] P.V. Ananda Mohan, Formulas for dynamic range evaluation of sec­ond-order discrete-time filters, IEEE Transactions on Circuits and Sys­tems, Vol. 30, p. 321, 1983.

[2.9] 1. Ramirez-Angulo, M. Robinson, and E. Sanchez-Sinencio, Current-

Bibliography 429

mode continuous-time filters: two design approaches, IEEE Transac­tions on Circuits and Systems, Vol. 39, pp. 337-341, 1992.

[2.10] K.H. Loh, D.L. Hiser, W.J. Adams, and R.L. Geiger, A versatile digi­tally controlled continuous time filter structure with wide dynamic range and fine resolution capability, IEEE Transactions on Circuits and Systems, Part II, Vol. 39, pp. 265-276, 1992.

[2.11] E. Sanchez-Sinencio, R.L. Geiger, and H. Nevarez-Lozano, Generation of continuous-time two-integrator-Ioop OTA-C filter structures, IEEE Transactions on Circuits and Systems, Vol. 35, pp. 936-946, 1988.

[2.12] R.P. Sallen and W.L. Key, A practical method of designing active RC filters, IEEE Transactions on Circuit Theory, Vol. CT-2, pp. 74-85, 1955.

[2.13] P.V. Ananda Mohan, Generation ofOTA-C filter structures from active RC filters, IEEE Transactions on Circuits and Systems, Vol. 37, pp. 656-660, 1990.

[2.14] H. Nevarez-Lozano, Comments on "Generation of OTA-C filter struc­tures from active RC filter structures," IEEE Transactions on Circuits and Systems, Vol. 38, pp. 1401; Author's Reply, pp. 1401-1402, 1991.

[2.15] IJ. Friend, c.A. Harris, and D. Hilberman, STAR: an active biquad­ratic filter section, IEEE Transactions on Circuits and Systems, Vol. CAS-22, pp. 115-121,1975

[2.16] T. Deliyannis, High-Q factor circuit with reduced sensitivity, Electron­ics Letters, Vol. 4, pp. 577-579, 1968.

[2.17] H.J. Orchard, Inductor-less filters, Electronics Letters, Vol. 2, pp. 224-225,1966.

[2.18] P.V. Ananda Mohan, Capacitor floatation scheme using only OTAs and grounded capacitors, Journal of Circuits, Systems and Computers, Vol. 5,pp. 181-197, 1995.

[2.19] M.A. Tan and R. Schaumann, Simulating general parameter LC-ladder filters for monolithic realisations with only transconductance elements and grounded capacitors, IEEE Transactions on Circuits and Systems, Vol. 36, pp. 299-307, 1989.

[2.20] R. Schaumann, Simulating lossless ladders with transconductance cir­cuits, IEEE Transactions on Circuits and Systems, Vol. 45, Part II, pp. 407-410, 1998.

430 Bibliography

[2.21] Y.S. Hwang, S.1. Liu, D.S. Wu, and Y.P. Wu, Table-based linear trans­formation filters using OTA-C techniques, Electronics Letters, Vol. 30, pp.2021-2022,1994.

[2.22] A.S. Sedra and P.O. Brackett, Filter Theory and Design: Active and Passive, Portland, OR: Matrix Publishers, 1978.

[2.23] J. Ramirez-Angulo and E. Sanchez-Sinencio, High-frequency compen­sated current-mode ladder filters using multiple output OTAs, IEEE Transactions on Circuits and Systems, Vol. 41, Part II, pp. 581-586, 1994.

[2.24] Y. Sun and J.K. Fidler, Structure generation and design of multiple loop feedback OTA-C grounded capacitor filters, IEEE Transactions on Circuits and Systems, Vol. 44, Part I, pp. 1-11, 1997.

[2.25] 1. Ramirez-Angulo and E. Sanchez-Sinencio, Active compensation of operational transconductance amplifier filters using partial positive feedback, IEEE Journal of Solid-State Circuits, Vol. 25, pp. 587-592, 1994.

[2.26] J. Ramirez-Angulo, E. Sanchez-Sinencio, and M. Howe, Large fo.Q second-order filters using multiple output OTAs, IEEE Transactions on Circuits and Systems, Vol. 41, Part II, pp. 587-592, 1994.

[2.27] 1. Silva-Martinez, M.SJ. Steyaert, and W. Sansen, A 1O.7MHz 68dB SNR CMOS continuous-time filter with on-chip automatic tuning, IEEE Journal olSolid-State Circuits, Vol. 27, pp. 1843-1853,1992.

[2.28] J. Mahattanakul and C. Toumazou, Current-mode versus voltage-mode Gm-C biquad filters: what the theory says, IEEE Transactions on Cir­cuits and Systems, Vol. 45, Part II, pp. 173-186, 1998.

[2.29] G. Efthivoulidis, L. Toth, and Y.P. Tsividis, Noise in Gm-C filters, IEEE Transactions on Circuits and Systems, Vol. 45, pp. 295-302, 1998.

[2.30] M.T. Abuelmaatti, New minimum component electronically tunable OTA-C sinusoidal oscillators, Electronics Letters, Vol. 25, pp. 1114-1115,1989.

[2.31] R. Senani and B. Amitkumar, Linearly tunable Wien bridge oscillator realized with operational transconductance amplifiers, Electronics Letters, Vol. 25, pp. 19-21, 1989.

Bibliography 431

[2.32] R. Senani, New electronically tunable OT A-C sinusoidal oscillator, Electronics Letters, Vol. 25, pp. 286-287, 1989.

[2.33] R. Senani, B.A. Kumar, M.P. Tripathi, and B.A. Kumar, Systematic generation of OTA-C sinusoidal oscillators, Electronics Letters, Vol. 26, pp. 1457-1459, 1990.

[2.34] R. Nandi, Lossless inductor simulation: novel configuration using DVCCS, Electronics Letters, Vol. 16, pp. 666-667,1980.

[2.35] B.B. Bhattacharyya and M.N.S. Swamy, Network transposition and its applications in synthesis, IEEE Transactions on Circuit Theory, Vol. CT-18, pp. 394-397,1971.

[2.36] S.W. Director and R.A. Rohrer, The generalized adjoint network and network sensitivities, IEEE Transactions on Circuit Theory, Vol. CT-16,pp. 318-323,1969.

[2.37] G.W. Roberts and A.S. Sedra, All current-mode frequency selective circuits, Electronics Letters, Vol. 25, pp. 759-761, 1989.

[2.38] M.N.S. Swamy and R. Raut, Realization of (gm-C) current-mode filters from associated (gm-C) voltage-mode filters, Proceedings of the 45th

Midwest Symposium on Circuits and Systems, Tulsa, Oklahoma, Part II, pp 625-628, 2002.

[2.39] M.N.S. Swamy, C. Bhushan, and B.B. Bhattacharyya, Generalized duals, generalized inverses and their applications, Radio and Electronic Engineer, Vol. 44, pp. 95-99, 1974.

[2.40] M.N.S. Swamy, C. Bhushan, and B.B. Bhattacharyya, Generalized dual transposition and its applications, Journal of the Franklin Institute, Vol. 301,pp.465-476,1976.

[2.41] A. Wyszynski, R. Schaumann, S. Szczepanski, and P.V. Halen, Design of a 2.7 GHz linear OTA and a 250 MHz elliptic filter in bipolar tran­sistor array technology, IEEE Transactions on Circuits and Systems, Vol. 40, pp. 19-31, 1993.

[2.42] C.S. Park and R. Schaumann, A high-frequency CMOS linear trans­conductance element, IEEE Transactions on Circuits and Systems, Vol. 33, pp. 1132-1138, 1986.

[2.43] S. Szczepanski, Jacek Jakusz, and R. Schaumann, A linear fully bal­anced CMOS OT A for VHF filtering applications, IEEE Transactions on Circuits and Systems, Vol. 44, pp. 174-187, 1997.

432 Bibliography

[2.44] Z. Szarnul, T. Jida, and K. Tsuzi, A low-voltage highly non-linear mul­tiple weighted input transconductor, IEEE Transactions on Circuits and Systems, Vol. 42, pp. 362-364,1995.

[2.45] T. Deliyannis, Y. Sun, and J.K. Fidler, Continuous-time Active Filter Design, Boca Raton, FL: CRC Press, 1999.

Chapter 3

[3.1] C. Toumazou, FJ. Lidgey, and D.G. Haigh, Analogue IC Design: the Current-Mode Approach, London: Peregrinus, 1993.

[3.2] M. Higashimura and Y. Fukui, Realization of current-mode all-pass networks using a current conveyor, IEEE Transactions on Circuits and Systems, Vol. 37, pp. 660-661,1990.

[3.3] SJ. Liu, J.J. Chen, and Y.S. Hwang, New current mode biquad filters using current followers, IEEE Transactions on Circuits and Systems, Vol. 42, pp. 380-383, July 1995.

[3.4] A. Fabre and P. Rochegude, All-pass filters using a current controlled current source, Electronics Letters, Vol. 21, pp. 1205-1207, 1985.

[3.5] M.T. Abuelmaatti, New current mode active filters employing current conveyors, International Journal of Circuit Theory and Applications, Vol. 21, pp. 93-99, 1993.

[3.6] A. Fabre, F. Martin, and M. Hanafi, Current-mode all-pass/notch and band-pass filters with reduced sensitivities, Electronics Letters, Vol. 26,pp. 1495-1497, 1990.

[3.7] P. Aronhime, D. Nelson, and C. Adams, Applications of a second gen­eration current conveyor in current-mode circuits, Electronics Letters, Vol. 26, pp. 1456-1457, 1990.

[3.8] c.P. Chong and K.c. Smith, Biquadratic filter sections employing a single current conveyor, Electronics Letters, Vol. 22, pp. 1162-1164, 1986.

[3.9] SJ. Liu and H.W. Tsao, Two single CC II biquads with high input im­pedance, IEEE Transactions on Circuits and Systems, Vol. 38, pp. 456-461, 1991.

[3.10] M.T. Abuelmaatti, Comments on "Two single CC II biquads with high

Bibliography 433

input impedance," IEEE Transactions on Circuits and Systems, Vol. 41, Part I, pp. 769-770,1994.

[3.11] A.M. Soliman, Comment on "The single CC II biquads with high input impedance," IEEE Transactions on Circuits and Systems, Vol. 43, p. 65, 1996.

[3.12] M.T. Abuelmaatti, Two minimum component CC II based RC oscilla­tors, IEEE Transactions on Circuits and Systems, Vol. 34, pp. 980-981, 1987.

[3.13] S.1. Liu, H.W. Tsao, and J. Wu, Cascadable current-mode single CC-II biquads, Electronics Letters, Vol. 26, pp. 2005-2006, 1990.

[3.14] P.V. Ananda Mohan, New current-mode biquad based on Friend­Deliyannis active RC biquad, IEEE Transactions on Circuits and Sys­tems, Part II, Vol. 42, pp. 225-228,1995.

[3.15] A Fabre and M. Alami, Insensitive current mode band-pass implemen­tations based non-ideal gyrators, IEEE Transactions on Circuits and Systems, Vol. 39, pp. 152-155,1992.

[3.16] A Fabre and M. Alami, Universal current-mode biquad implemented from second-generation current conveyors, IEEE Transactions on Cir­cuits and Systems, Part I, pp. 383-385, 1995.

[3.17] H.O. Elwan and A.M. Soliman, A novel CMOS current conveyor reali­zation with electronically tunable current mode filters suitable for VLSI, IEEE Transactions on Circuits and Systems, Part II, Vol. 43, pp. 663-670,1996.

[3.18] A Fabre, H. Amrani, and O. Saaid, Current-mode band-pass filters with Q magnification, IEEE Transactions on Circuits and Systems, Part II, Vol. 43, pp. 839-842, 1996.

[3.19] A Fabre, F. Dayoub, L. Duruisseau, and M. Kamoun, High input im­pedance insensitive second-order filters implemented from current con­veyors, IEEE Transactions on Circuits and Systems, Part I, Vol. 41, pp. 918-921,1994.

[3.20] D.S. Wu, Y.S. Hwang, S.1. Liu, and Y.P. Wu, New multifunction filter using an inverting CCII and a voltage follower, Electronics Letters, Vol. 30, pp. 551-552.1994.

[3.21] AM. Soliman, Kerwin-Huelsman-Newcomb circuit using current conveyors, Electronics Letters, Vol. 30, pp. 2019-2020, 1994.

434 Bibliography

[3.22] V.K. Singh and R. Senani, New multifunction active filter configura­tion employing current conveyors, Electronics Letters, Vol. 26, pp. 1814-1816,1990.

[3.23] C. Chang and M.S. Lee, Universal voltage-mode filter with three inputs and one output using three current conveyors and one voltage follower, Electronics Letters, Vol. 30, pp. 2112-2113,1994.

[3.24] C. Chang, Multifunction biquadratic filters using current conveyors, IEEE Transactions on Circuits and Systems, Part II, Vol. 44, pp. 956-958,1997.

[3.25] P.V. Ananda Mohan, Grounded capacitor based grounded and floating inductance simulation using current conveyors, Electronics Letters, Vol. 34, pp. 1037-1038, 1998.

[3.26] M. Higashimura and Y. Fukui, Universal filter using plus type CCIs, Electronics Letters, Vol. 32, pp. 722-723, 1996.

[3.27] G.W. Roberts and A.S. Sedra, All current-mode frequency selective circuits, Electronics Letters, Vol. 25, pp. 759-761,1989.

[3.28] G.W. Roberts and A.S. Sedra, A general class of current-amplifier based biquadratic filter circuits, IEEE Transactions on Circuits and Systems, Vol. 39, Part I, pp. 257-263, 1992.

[3.29] A.S. Sedra, M.A. Ghorab, and K. Martin, Optimum configurations for single-amplifier biquadratic filters, IEEE Transactions on Circuits and Systems, Vol. 27, pp. 1155-1163, 1980.

[3.30] C. Toumazou and F.l. Lidgey, Floating impedance converters using current conveyors, Electronics Letters, Vol. 21, pp. 640-642, 1985.

[3.31] K. Pal, Novel floating inductance using current conveyors, Electronics Letters, Vol. 17, p. 638,1981.

[3.32] K. Pal, New inductance and capacitance floatation schemes using cur­rent conveyors, Electronics Letters, Vol. 17, pp. 807-808, 1981.

[3.33] V. Singh, Active RC single resistance controlled loss-less floating in­ductance simulation scheme using single grounded capacitor, Electron­ics Letters, Vol. 17, pp. 920-921,1981.

[3.34] R. Senani, New tunable synthetic floating inductors, Electronics Let­ters, Vol. 16, pp. 382-383, 1980.

Bibliography 435

[3.35] L.T. Bruton, RC-Active Circuits: Theory and Design, Englewood Cliffs, NJ: Prentice-Hall, 1980.

[3.36] R. Senani, Floating ideal FDNR using only two current conveyors, Electronics Letters, Vol. 20, pp. 205-206, 1984.

[3.37] B. Wilson, Floating FDNR employing a new CC-II-conveyor imple­mentation, Electronics Letters, Vol. 21, pp. 996-997, 1984.

[3.38] S. Nandi, P.B. Jana, and R. Nandi, A novel floating ideal tunable FDNR simulation using current conveyors, IEEE Transactions on Cir­cuits and Systems, Vol. 31, pp. 402-403, 1984.

[3.39] Y.A.N. Abdalla, Comments on "A novel floating ideal tunable FDNR simulation using current conveyors," IEEE Transactions on Circuits and Systems, Vol. 32, p. 303, 1985.

[3.40] M.T. Abuelmaatti, Comments on "Floating inductance simulation based on current conveyors," Electronics Letters, Vol. 34, p. 1037, 1998.

[3.41] W. Kiranon and P. Pawarangkoon, Floating inductance simulation based on current conveyors, Electronics Letters, Vol. 33, pp. 1748-1749,1997.

[3.42] H.C. Layos and I. Haritantis, On the derivation of current-mode tloat­ing inductors, International Journal of Circuit Theory and Applica­tions, Vol. 25, pp. 29-36, 1997.

[3.43] A. Himura, Y. Fukui, M. Ishida, and M. Higashimura, Series imped­ance simulator using one CC-II, Electronics Letters, Vol. 26, pp. 269-270,1990.

[3.44] A. Fabre, High-frequency applications based on a new current­controlled current conveyor, IEEE Transactions on Circuits and Sys­tems, Vol. 43, Part I, pp. 82-91,1996.

[3.45] A. Fabre, O. Saiid, F. Wiest, and C. Boucheron, High-frequency high­Q BiCMOS current-mode band-pass filter for mobile communication application, IEEE Journal of Solid-State Circuits, Vol. 33, pp. 614-625, 1998.

[3.46] P.B. Jana and R. Nandi, Single current conveyor tunable sine-wave RC oscillator, Electronics Letters, Vol. 20, pp. 44-45, 1984.

[3.47] M.T. Abuelmaatti and A.A. AI-Ghumaiz, Novel CCI based single ele-

436 Bibliography

ment controlled oscillators employing grounded resistors and capaci­tors, IEEE Transactions on Circuits and Systems, Vol. 43, Part I, pp. lS3-1SS, 1996.

[3.48] M.T. Abuelmaatti, Grounded capacitor current-mode oscillator using single current follower, IEEE Transactions on Circuits and Systems, Part I, Vol. 39, pp. 1018-1020,1992.

[3.49] P.V. Ananda Mohan, Comments on "Grounded capacitor current-mode oscillator using single current follower," IEEE Transactions on Cir­cuits and Systems, Vol. 41, Part I, p. 614, 1994.

[3.50] E.T. Emms, A novel single transistor oscillator, Electronic Engineer­ing, pp. S06-S08, 1960.

[3.S1] M.T. Abuelmaatti and M.A. Al-Qauhtani, A new current-controlled multiphase sinusoidal oscillator using current conveyors, IEEE Trans­actions on Circuits and Systems, Part II, Vol. 4S, pp. 881-88S, 1998.

[3.S2] C.M. Chang, Novel current-conveyor-based single-resistance­controlled / voltage-controlled oscillator employing grounded resistors and capacitors, Electronics Letters, Vol. 30, pp. 181-183, 1994.

[3.S3] T. Vanisri and C. Toumazou, Wideband and high gain current feedback opamp, Electronics Letters, Vol. 28, pp. 170S-1706, 1992.

[3.S4] J. Mahattanakul and C. Toumazou, A theoretical study of the stability of high-frequency current feedback op-amp integrators, IEEE Transac­tions on Circuits and Systems, Vol. 43, Part I, pp. 2-12, 1996.

[3.5S] M.T. Abuelmaatti et aI., Novel RC oscillators using the current feed­back operational amplifier, IEEE Transactions on Circuits and Sys­tems, Vol. 43, pp. ISS-lS7, 1996.

[3.56] S. Celma, P.A. Martinez, and A. Carlosena, Current feedback amplifier based sinusoidal oscillators, IEEE Transactions on Circuits and Sys­tems, Part II, Vol. 30, pp. 2022-2023, 1994.

[3.S7] R. Senani and V. Singh, Novel single resistance controlled oscillator configuration using current feedback amplifiers, IEEE Transactions on Circuits and Systems, Part I, Vol. 43, pp. 698-700, 1996.

[3.58] S.1. Liu and Y.S. Hwang, Realization of R-L and C-D impedances us­ing a current feedback amplifier and its applications, Electronics Let­ters, Vol. 30, pp. 380-381,1994.

Bibliography 437

[3.59] D.R. Bhaskar, Single resistance controlled sinusoidal oscillator using single FTFN, Electronics Letters, Vol. 35, p. 190, 1999.

Chapter 4

[4.1] e. Toumazou, F. Lidgey, and D.G. Haigh (eds.), Analogue IC Design: the Current-Mode Approach, London: Peregrinus, 1990.

[4.2] J.B. Hughes, I.e. Macbeth, and D.M. Pattullo, Switched current filters, Proc. lEE, Part G, Vol. 137, pp. 156-162, 1990.

[4.3] J.B. Hughes and K.A Moulding, Switched current video signal proc­essing for video frequencies and beyond, IEEE Journal of Solid-State Circuits, Vol. 28, pp. 821-830, 1993.

[4.4] A Yufera and A Reuda, Studying the effect of mismatching and clock feed-through in switched current filters using behavioural simulation, IEEE Transactions on Circuits and Systems, Part II, Vol. 44, pp. 1058-1067, 1997.

[4.5] e. Toumazou, J.B. Hughes, and D.M. Pattullo, A regulated cascode switched current memory cell, Electronics Letters, Vol. 26, pp. 303-304,1990.

[4.6] S.J. Daubert and D. Vallancourt, Operation and analysis of current cop­ier circuits, Proc. lEE, Part G, Vol. 137, pp. 109-115, 1990.

[4.7] R.H. Zele and DJ. All stat, Low-voltage fully differential switched­current filters, IEEE Journal of Solid-State Circuits, Vol. 29, pp. 203-209,1994.

[4.8] M. Goldenberg, R. Croman, and T.S. Fiez, Accurate SI filters using RGC integrators, IEEE Journal of Solid-State Circuits, Vol. 29, pp. 1388-1395, 1994.

[4.9] T.S. Fiez and DJ. Allstot, CMOS switched current ladder filters, IEEE Journal of Solid-State Circuits, Vol. 26, pp. 1360-1367,1990.

[4.10] G.W. Roberts and AS. Sedra, Synthesizing switched current filters by transposing the SFG of switched capacitor filter circuits, IEEE Trans­actions on Circuits and Systems, Vol. 38, pp. 337-340, 1991.

[4.11] A.C.M. de Queiroz and P.M. Pinheiro. Bilinear switched current ladder filters using Euler integrators, IEEE Transactions on Circuits and Sys­tems, Part II, Vol. 43, pp. 66-70, 1996.

438 Bibliography

[4.12] P.V. Ananda Mohan, V. Ramachandran, and M.N.S. Swamy, Switched­Capacitor Filters: Theory, Analysis and Design, London: Prentice­Hall, 1995.

[4.13] M.S. Ghausi and K.R. Laker, Modern Filter Design: Active RC and Switched Capacitor, Englewood Cliffs, NJ: Prentice-Hall, 1981.

[4.14] T.S. Fiez, G. Liang, and DJ. Allstot, Switched-current circuit design issues, IEEE Journal of Solid-State Circuits, Vol. SC-26, pp. 192-202, 1991.

[4.15] C. Eichenberger and G. Guggenbuhl, On charge injection in analog MOS switches and dummy switch compensation techniques, IEEE Transactions on Circuits and Systems, Vol. 37, pp. 256-264,1990.

[4.16] D. Vallancourt, SJ. Daubert, and Y.P. Tsividis, Current copier cells, Electronics Letters, Vol. 24, pp. 1560-1562, 1988.

[4.17] D.WJ. Groeneveld, HJ. Schouwenaars, H.A.H. Termeer, and C.A.A. Bastiaansen, A self-calibration technique for monolithic high resolution D/A converters, IEEE Journal of Solid-State Circuits, Vol. SC-24, pp. 1517-1522,1989.

[4.18] S.L Daubert and D. Vallancourt, A transistor only current-mode sigma­delta modulator, IEEE Journal of Solid-State Circuits, Vol. 27, pp. 821-830, 1992.

[4.19] B. Pain and E.R. Fossum, A current memory cell with switch feed­through reduction by feedback, IEEE Journal of Solid-State Circuits, Vol. SC-29, pp. 1288-1290, 1994.

[4.20] G. Wegmann and E.A. Vittoz, Basic principles of accurate dynamic current mirrors, Proc. lEE, Part-G, Vol. 137, pp. 95-10 I, 1990.

[4.21] G. Wegmann and E.A. Vittoz, Analysis and improvements of accurate dynamic current mirrors, IEEE Journal of Solid-State Circuits, Vol. 25, pp. 699-706, 1990.

[4.22] M. Song, Y. Lee, and W. Kim, A clock feed-through reduction circuit for switched current systems, IEEE Journal of Solid-State Circuits, Vol. 28, pp. 133-137,1993.

[4.23] C.Y. Wu, C.C Chen, and IJ. Cho, Precise CMOS current sample/hold circuits using differential clock feed-through attenuation techniques, IEEE Journal of Sold-State Circuits, Vol. 30, pp. 76-80,1995.

Bibliography 439

[4.24] D.O. Nairn, A high-linearity sampling technique for switched-current circuits, IEEE Transactions on Circuits and Systems, Part II, Vol. 43, pp. 49-51, 1996.

[4.25] R. Huang and c.L. Wey, Simple low-voltage high-speed high-linearity V-I converter with SIH for analog signal processing applications, IEEE Transactions on Circuits and Systems, Part II, Vol. 43, pp. 52-55, 1996.

[4.26] PJ. Crawley and O.W. Roberts, Predicting harmonic distortion in switched-current memory circuits, IEEE Transactions on Circuits and Systems, Part II, Vol. 41, pp. 73-86, 1994.

[4.27] I. Mehr and T.L. Sculley, Discrete-time feedback structures for high precision analog signal processing, IEEE Transactions on Circuits and Systems, Part II, Vol. 43, pp. 60-62, 1996.

[4.28] C. Huang and T.L. Sculley, An enhanced linearity sampled-data volt­age amplifier, IEEE Transactions on Circuits and Systems, Part II, Vol. 43, pp. 62-65, 1996.

[4.29] D.O. Nairn and A. Biman, A comparative analysis of switched current circuits, IEEE Transactions on Circuits and Systems, Part II, Vol. 43, pp. 733-743, 1996.

[4.30] S.S. Lee, R.H. Zele, DJ. Allstot, and O. Liang, CMOS continuous-time current-mode filters for high-frequency applications, IEEE Transac­tions on Circuits and Systems, Vol. 28, pp. 323-329, 1993.

[4.31] R.H. Zele and DJ. Allstot, Low-power CMOS continuous-time filters, IEEE Journal of Solid-State Circuits, Vol. 31, pp. 157-168, 1996.

[4.32] S.L. Smith and E. Sanchez-Sinencio, Low voltage integrators for high­frequency CMOS filters using current-mode techniques, IEEE Trans­actions on Circuits and Systems, Part II, Vol. 43, pp. 39-48, 1996.

[4.33] E.I. El-Masry and l.W. Oates, A novel continuous-time current-mode differentiator and its applications, IEEE Transactions on Circuits and Systems, Part II, Vol. 43, pp. 56-59, 1996.

[4.34] LB. Hughes and W. Redmanwhite, Switched Currents: An Analog Technique for Digital Technology, C. Toumazou, l.B. Hughes, and N.C. Batterby (eds.), London: Peregrinus, 1993.

[4.35] D.O. Nairn and C.A.T. Salama, A ratio-independent algorithmic analog to digital converter combining current-mode and dynamic techniques,

440 Bibliography·

IEEE Transactions on Circuits and Systems, Vol. 37, pp.319-325, 1990.

[4.36] AC.M. de Queiroz, P.R.M. Pinheiro, and L.P. Caloba, Nodal analysis of switched current filters, IEEE Transactions on Circuits and Systems, Vol.40,pp.10-18,1993.

[4.37] W. Guggenbuhl, J. Di, and 1. Goette, Switched current memory circuit for high precision application, IEEE Journal of Solid-State Circuits, Vol. 29,pp. 1108-1116, 1994.

[4.38] LB. Hughes and K.A Moulding, S21: A switched current technique for high performance, Electronics Letters, Vol. 29, pp. 1400-1401, 1993.

[4.39] R.H. Zele, DJ. Allstot, and T.S. Fiez, Fully balanced CMOS current­mode circuits, IEEE Journal of Solid-State Circuits, Vol. 28, pp. 569-575, 1993.

[4.40] c. Toumazou, N.C. Batterby, and C. Maglaras, High-performance algo­rithmic switched current memory cell, Electronics Letters, Vol. 19, pp. 1593-1595,1990.

[4.41] c. Toumazou and S. Xiao, N-step charge cancellation scheme for very accurate switched current circuits, Electronics Letters, Vol. 30, pp. 680-681,1994.

[4.42] A Reuda, A Yufera, and J.L. Huertas, Wave analog filters using switched current techniques, Electronics Letters, Vol. 27, pp. 1482-1483,1991.

[4.43] A Reuda, A Yufera, and LL. Huertas, Programmable switched current wave analog filter, IEEE Journal of Solid-State Circuits, Vol. SC-26, pp.927-935,1991.

[4.44] T.H. Kuo, S.Y. Lee, and K.D. Chen, Offset current cancellation based on a multi-path feedback compensation (MFC) technique for switched current circuits and systems, IEEE Transactions on Circuits and Sys­tems, Vol. 44, Part II, pp. 299-309,1997.

Chapter 5

[5.1] Y.P. Tsividis, V. Gopinathan, and L. Toth, Companding in signal proc­essing, Electronics Letters, Vol. 26, pp. 1331-1332, 1990.

Bibliography 441

[5.2] E. Seevinck, Companding current-mode integrator: a new circuit prin­

ciple for continuous-time monolithic filters, Electronics Letters, Vol.

26,pp. 2046-2047,1990.

[5.3] D.R Frey, Log-domain filtering: an approach to current-mode filtering,

Proc. lEE, Part G, Vol. 140, pp. 406-416, 1993.

[5.4] Y.P. Tsividis, On linear integrators and differentiators using instanta­

neous companding, IEEE Transactions on Circuits and Systems, Part

II, Vol. 42, pp. 561-564, 1995.

[5.5] B. Gilbert, Trans-linear circuits: a proposed classification, Electronics

Letters, Vol. 11, pp. 14-16, 1975.

[5.6] W.A. Serdijn, M. Braest, J. Mulder, A.C. van del' Woerd, and A.H.M.

van Roermund, A low-voltage ultra-low-power trans-linear integrator

for audio filter applications, IEEE Journal of Solid-State Circuits, Vol. SC-32, pp. 577-581, 1997.

[5.7] Y.P. Tsividis, Externally linear integrators, IEEE Transactions on Cir­

cuits and Systems, Vol. 45, Part II, pp. 1181-1187,1998.

[5.8] 1. Mulder, W.A. Serdijn, A.c. van del' WoeI'd, and A.H.M. van Roer­

mund, An instantaneous and syllabic companding translinear filter,

IEEE Transactions on Circuits and Systems, Part I, Vol. 45, pp. 150-

154, 1998.

[5.9] RW. Adams, Filtering in the log domain, 63'" AES Conference, New

York, May 1979.

[5.10] D.R Frey, Log-domain filtering for RF applications, IEEE Journal of

Solid-State Circuits, Vol. SC-31, pp. 1468-1475,1996.

[5.11] D.R. Frey, State-space synthesis and analysis of log-domain filters,

IEEE Transactions on Circuits and Systems, Part II, Vol. 45, pp. 1205-

1211,1998.

442 Bibliography

[S.12] D.R. Frey, Exponential state-space filters: a generic current-mode de­

sign strategy, IEEE Transactions on Circuits and Systems, Vol. 43, Part

I, pp. 34-42, 1996.

[S.13] D. Perry and G.W. Roberts, The design of log-domain filters based on

the operational simulation of LC ladders, IEEE Transactions on Cir­

cuits and Systems, Part II, Vol. 43, pp. 763-774, 1996.

[S.14] M.N. EI-Gamal and G.W. Roberts, Very high-frequency log-domain

band-pass filters, IEEE Transactions on Circuits and Systems, Vol. 4S,

pp. 1188-1198, 1998.

[S.lS] I. Mulder, M.H.L. Kouwenhoven, W.A. Serdijn, A.C. van der Woerd,

and A.H.M. van Roermund, Noise considerations for trans-linear fil­ters, IEEE Transactions on Circuits and Systems, Vol. 4S, Part II, pp.

1199-1204,1998.

[S.16] L. Toth, Y.P. Tsividis, and N. Krishnapura, On the analysis of noise and interference in instantaneously companding signal processors,

IEEE Transactions on Circuits and Systems, Vol. 4S, Part II, pp.

1242-1249,1998.

[S.17] I. Mahattanakul, C. Toumazou, and S. Pookaiyadom, Low-distortion

current-mode companding integrator operating at fT of BIT, Electronics Letters. Vol. 32, pp. 2019-2021,1996.

[S.18] A. Worapishet and C. Toumazou, fTintegrator-a new class of tuneable

low-distortion instantaneous companding integrators for very high­

frequency applications, IEEE Transactions on Circuits and Systems,

Part II, Vol. 4S, pp. 1212-1219, 1998.

[S.19] M.H. Eskiyerli, A.I. Payne, and C. Toumazou, State-space synthesis of

integrators based on the MOSFET square-law, Electronics Letters, Vol.

32,pp.SOS-S07,1996.

[S.20] R. Fried, D. Python, and C.c. Enz, Compact log-domain current mode integrator with high transconductance to bias ratio, Electronics Letters,

Vol. 32, pp. 9S2-9S3, 1996.

Bibliography 443

[5.21] J. Mulder, A.c. van der Woerd, W.A. Serdijn, and A.H.M. van Roer­

mund, General current-mode analysis method for trans linear filters,

IEEE Transactions on Circuits and Systems, Vol. 44, pp. 193-197,

1997.

[5.22] Y.P. Tsividis, Externally linear time-invariant systems and their appli­

cation to companding signal processing, IEEE Transactions on Circuits

and Systems, Part II, Vol. 44, pp. 65-85, 1997.

Chapter 6

[6.1] Y.P. Tsividis, Integrated continuous-time filter design-an overview, IEEE Journal o.f Solid-State Circuits, Vol. 29, pp. 166-176, 1994.

[6.2] A. Matsuzawa, Low-voltage and low-power circuit design for mixed analog/digital systems in portable equipment, IEEE Journal of Solid­State Circuits, Vol. 29, pp. 470-480, 1994.

[6.3] 1. Mahattanakul and C. Toumazou, Current-mode versus voltage-mode Gm-C biquad filters: what the theory says, IEEE Transactions on Cir­cuits and Systems, Part II, Vol. 45, pp. 173-186, 1998.

[6.4] C.S. Park and R. Schaumann, A high-frequency CMOS linear trans­conductance element, IEEE Transactions on Circuits and Systems, Vol. 33, pp. 1132-1138, 1986.

[6.5] MJ. Steyaert and W.M.C. Sansen, Power supply rejection ratio in op­erational transconductance amplifiers, IEEE Transactions on Circuits and Systems, Vol. 37, pp. 1077-1084,1990.

[6.6] A. Nedungadi and T.R. Viswanathan, Design of linear CMOS trans­conductance elements, IEEE Transactions on Circuits and Systems, Vol. 31, pp. 891-894, 1984.

[6.7] H. Khorramabadi and P.R. Gray, High-frequency CMOS continuous­time filters, IEEE Journal of Solid-State Circuits, Vol. SC-19, pp. 939-948, 1984.

[6.8] F. Krummenacher and N. Joehl, A 4-MHz continuous-time filter with on-chip automatic tuning, IEEE Journal of Solid-State Circuits, Vol. SC-23, pp. 750-758, 1988.

444 Bibliography

[6.9] W.M. Snelgrove and A. Shoval, A balanced 0.9 !lm CMOS transcon­ductance C filter tunable over the VHF range, IEEE Journal oj Solid­State Circuits, Vol. 27, pp. 314-323,1992.

[6.10]. C. Yoo, S.W. Lee, and W. Kim, A ±1.5V, 4MHZ CMOS continuous­time filter with a single integrator based tuning, IEEE Journal oj Solid­State Circuits, Vol. 33, pp. 18-22, 1998.

[6.11] B. Nauta, A CMOS transconductance-C filter technique for very high frequencies, IEEE Journal oj Solid-State Circuits, Vol. 27, pp. 142-153, 1992.

[6.12] S. Szczepanski, l Jakusz, and R Schaumann, A linear fully balanced CMOS OT A for VHF filtering applications, IEEE Transactions on Cir­cuits and Systems, Vol. 44, Part II, pp. 174-187, 1997.

[6.13] Q. Huang, A MOSFET-only continuous-time band-pass filter, IEEE Journal oJSolid-State Circuits, Vol. 32, pp. 147-158, 1997.

[6.14] I. Mehr and D.R. Weiland, A CMOS continuous-time Gm-C filter for PRML read channel applications at 150Mb/s and beyond, IEEE Jour­nal oj Solid-State Circuits, Vol. 32, pp. 499-513, 1997.

[6.15] A.M. Durham, W. Redman-White, and lB. Hughes, High-linearity continuous-time filter in 5V VLSI CMOS, IEEE Journal oj Solid-State­Circuits, Vol. 27, pp. 1270-1276,1992.

[6.16] V. Gopinathan, Y.P. Tsividis, K.S. Tan, and RK. Hester, Design con­siderations for high frequency continuous-time filters and implementa­tion of an anti-aliasing filter for digital video, IEEE Journal oj Solid­State Circuits, Vol. 25, pp. 1368-1378, 1990.

[6.17] Y.T. Wang and A.A. Abidi, CMOS active filter design at very high fre­quencies, IEEE Journal oj Solid-State Circuits, Vol. SC-25, pp. 1562-1574, 1990.

[6.18] R Harjani, R Heineke, and F. Wang, An integrated low-voltage class AB CMOS OTA, IEEE Journal oj Solid-State Circuits, Vol. 34, pp. 134-142,1999.

[6.19] J.P. Moree, G. Groenewold, and L.A.D. van den Broeke, A bipolar in­tegrated continuous-time filter with optimized dynamic range, IEEE Journal oj Solid-State Circuits, Vol. 28, pp. 954-961, 1993.

[6.20] A. Wyszynski, R. Schaumann, S. Szczepanski, and Paul Van Ha1en, Design of a 2.7GHz linear OA and a 250MHz elliptic filter in bipolar

Bibliography 445

transistor array technology, IEEE Transactions on Circuits and Sys­tems, Vol. 40, Part II, pp. 19-31, 1993.

[6.21] O. Shana'a and R. Schaumann, Low-voltage high-speed current-mode continuous-time IC filters with orthogonal Wo-Q tuning, IEEE Transac­tions on Circuits and Systems, Part II, Vol. 46, pp. 390-400, 1999.

[6.22] G.A. De Veirman and R.G. Yamasaki, Design of a bipolar lO-MHz programmable continuous-time 0.05° equi-ripple linear-phase filter, IEEE Journal of Solid-State Circuits, Vol. 27, pp. 324-331, 1992.

[6.23] J.L. Pennock, CMOS triode transconductor for continuous-time active integrated filters, Electronics Letters, Vol. 21, pp. 817-818, 1985.

[6.24] R. Alini, A. Baschirotto, and R. Castello, Tunable BiCMOS continu­ous-time filter for high frequency applications, IEEE Journal of Solid­State Circuits, Vol. 27, pp. 1905-1915,1992.

[6.25] c.A. Laber and P.R. Gray, A 20-MHz sixth-order BiCMOS parasitic insensitive continuous-time filter and second-order equalizer optimized for disk-drive read channels, IEEE Journal of Solid-State Circuits, Vol. 28,pp.462-470, 1993.

[6.26] S.D. Willingham, K.W. Martin, and A. Ganesan, A BiCMOS low-dis­tortion 8-MHz low-pass filter, IEEE Journal of Solid-State Circuits, Vol. 28, pp. 1234-1245, 1993.

[6.27] M.l. Ali, M. Howe, E. Sanchez-Sinencio, and J. Ramirez-Angulo, A BiCMOS low-distortion tunable OTA for continuous-time filters, IEEE Transactions on Circuits and Systems, Vol. 40, Part I, pp. 43-49, 1993.

[6.28] F. Yang and C.C. Enz, A low-distortion BiCMOS seventh-order Bessel filter operating at 2.5V supply, IEEE Journal of Solid-State Circuits, Vol. 31, pp. 321-330, 1996.

[6.29] G. Groenewold, A high dynamic range integrated continuous-time band-pass filter, IEEE Journal of Solid-State Circuits, Vol. 27, pp. 1614-1622, 1992.

[6.30] K.C. Smith and A.S. Sedra, The current conveyor-a new circuit build­ing block, Proc. IEEE, Vol. 56, pp. 353-365, 1968.

[6.31] A.S. Sedra, G.W. Roberts, and F. Gohh, The current conveyor history, progress and new results, Proc. lEE, Part G, Vol. 137, pp. 78-84, 1990.

446 Bibliography

[6.32] R.A. Duncan, K.M. Chan, and A.S. Sedra, Designs for a wideband am­plifier and a current conveyor, IEEE Transactions on Circuits and Sys­tems, Vol. 41, Part I, pp. 272- 280, 1994.

[6.33] H.O. Elwan and A.M. Soliman, A novel CMOS current conveyor reali­zation with an electronically tunable current mode filter suitable for VLSI, IEEE Transactions on Circuits and Systems, Part II, Vol. 43, pp. 663-670, 1996.

[6.34] A. Fabre, O. Saiid, F. Wiest, and C. Boucheron, High-frequency appli­cations based on a new current-controlled current conveyor, IEEE Transactions on Circuits and Systems, Vol. 43, Part I, pp. 82-91, 1996.

[6.35] M.T. Abuelmaati and M.A. Al-Qahtani, A new current-controlled mul­tiphase sinusoidal oscillator using current conveyors, IEEE Transac­tions on Circuits and Systems, Part II, Vol. 45, pp. 881-885, 1998.

[6.36] Y. Tsividis, M. Banu, and J. Khoury, Continuous-time MOSFET-C fil­ters in VLSI, IEEE Journal of Solid-State Circuits, Vol. SC-21, pp. 15-30, 1986.

[6.37] K.S. Tan and P.R. Gray, Fully integrated analog filters using bipolar­JFET technology, IEEE Journal of Solid-State Circuits, Vol. SC-13, pp. 814-821,1978.

[6.38] M. Banu and Y. Tsividis, An elliptic continuous-time CMOS filter with on-chip automatic tuning, IEEE Journal of Solid-State Circuits, Vol. SC-20, pp. 1114-1121, 1985.

[6.39] lM. Khoury, Design of a 15-MHz CMOS continuous-time filter with on-chip tuning, IEEE Journal of Solid-State Circuits, Vol. 26, pp. 1988-1997,1991.

[6.40] C.F. Chiou and R. Schaumann, Design and performance of a fully inte­grated bipolar 10.7MHz analog band-pass filter, IEEE Journal of So lid­State Circuits, Vol. SC-21, pp. 6-14,1986.

[6.41] C. Plett and M.A. Copeland, A study of tuning for continuous-time fil­ters using macromodels, IEEE Transactions on Circuits and Systems, Vol. 39, pp. 524-531, 1992.

[6.42] J. Silva Martinez, M. Steyaert, and W. Sansen, A 10.7 MHz 68 dB SNR CMOS continuous-time filter with on-chip automatic tuning, IEEE Journal of Solid-State Circuits, Vol. 27, pp. 1843-1853, 1992.

Bibliography 447

[6.43] I.M. Stevenson and E. Sanchez-Sinencio, An accurate quality factor tuning scheme for IF and high-Q continuous-time filters, IEEE Journal of Solid-State Circuits, Vol. 33, pp. 1970-1978, 1998.

[6.44] K.A. Kozma, D.A. Johns, and A.S. Sedra, Automatic tuning of con­tinuous-time filters using an adaptive filter technique, IEEE Transac­tions on Circuits and Systems, Vol. 38, pp. 1241-1248, 1991.

[6.45] P.M. Vanpeteghem and R. Song, Tuning strategies in high-frequency integrated continuous-time filters, IEEE Transactions on Circuits and Systems, Vol. 36, pp. 136-139,1989.

[6.46] P.K.D. Pai and A.A. Abidi, A 40-mW 55Mb/s CMOS equalizer for use in magnetic storage read channels, IEEE Journal of Solid-State Cir­cuits, Vol. 29, pp. 489-499, 1994.

[6.47] G. A. De Veirman, S. Ueda, J. Cheng, S. Tam, K. Fukahori, M. Kurisu, and E. Shinozaki, A 3.0V 40 Mb/s hard disk drive read channel IC, IEEE Journal of Solid-State Circuits, Vol. 30, pp. 788-799, 1995.

[6.48] R.A. Philpott, R.A. Kertis, R.A. Richetta, TJ. Schmerbeck, and DJ. Schulte, A 7Mbyte/s (65MHz) mixed-signal magnetic recording chan­nel DSP using partial response signaling with maximum likelihood detection, IEEE Journal of Solid-State Circuits, Vol. 29, pp. 177-184, 1994.

[6.49] F. Rezzi, I. Bietti, M. Cazzaniga, and R. Castello, A 70mW seventh­order filter with 7-50MHz cutoff frequency and programmable boost and group delay equalization, IEEE Journal of Solid-State Circuits, Vol. SC-32, pp. 1987-1999,1997.

[6.50] I.e. Park and L.R. Carley, High-speed CMOS continuous-time com­plex graphic equalizer for magnetic recording, IEEE Journal of Solid­State Circuits, Vol. SC-33, pp. 427-437,1998.

[6.51] J.E.e. Brown, PJ. Hurst, B.e. Rothenberg, and S.H. Lewis, A CMOS adaptive continuous-time forward equalizer, LPF and RAM-DFE for magnetic recording, IEEE Journal of Solid-State Circuits, Vol. 34, pp. 162-169,1999.

[6.52] M.Q. Le, PJ. Hurst, and K.e. Dyer, An analog DFE for disk drives us­ing a mixed-signal integrator, IEEE Journal of Solid-State Circuits, Vol. 34, pp. 592-598, 1999.

448 Bibliography

[6.53] C.S. Kim, 0.0. Cho, Y.H. Kim, and B.S. Song, A CMOS 4x speed DVD read channel IC, IEEE Journal of Solid-State Circuits, Vol. 33, pp. 1168-1178, 1998.

[6.54] S.S. Lee and c.A. Laber, A BiCMOS continuous-time filter for video signal processing applications, IEEE Journal of Solid-State Circuits, Vol. 33, pp. 1373-1382, 1998.

[6.55] D. Scott Langford, BJ. Tesch, B.E. Williams, and O.R. Nelson Ir., A BiCMOS front-end circuit for a FDM based ADSL system, IEEE Jour­nal of Solid-State Circuits, Vol. 33, pp. 1383-1393, 1998.

[6.56] I.F. Wilson, R. Youell, T.H. Richards, O. Luff, and R. Pilaski, A single chip VHF and UHF receiver for radio paging, IEEE Journal of Solid­State Circuits, Vol. 26, pp. 1944-1950, 1991.

[6.57] F. Krummenacher and O. Van Ruymbeke, Integrated selectivity for narrow-band FM-IF systems, IEEE Journal of Solid-State Circuits, Vol. SC-25, pp. 757-760,1990.

[6.58] N.N. Nguyen and R.O. Meyer, Si IC compatible inductors and LC pas­sive filters, IEEE Journal of Solid-State Circuits, Vol. 25, pp. 1028-1031,1990.

[6.59] S. Pipilos and Y. Tsividis, RLC active filters with electronically tun­able center ti'equency and quality factor, Electronics Letters, Vol. 30, pp. 472-474, 1994.

[6.60] S. Pipilos, Y.P. Tsividis, I. Fenk, and Y. Papananos, A Si 1.80Hz RLC filter with tunable center frequency and quality factor, IEEE Journal of Solid-State Circuits, Vol. 31, pp. 1517-1524, 1996.

[6.61] R. Duncan, K.W. Martin, and A.S. Sedra, A Q-enhanced Active-RLC band-pass filter, IEEE Transactions on Circuits and Systems, Part II, Vol. 44, pp. 341-347, 1997.

[6.62] T.S. Fiez, O. Liang, and DJ. Allstot, Switched-current circuit design issues, IEEE Journal of Solid-State Circuits, Vol. 26, pp. 192-202, 1991.

[6.63] D. Perry and O.W. Roberts, The design of log-domain filters based on the operational simulation of LC ladders, IEEE Transactions on Cir-cuits and Systems, Part II, Vol. 43, pp. 763-774, 1996. •

[6.64] A. Fabre, O. Saiid, F. Wiest, and C. Boucheron, High-frequency high­Q BiCMOS current-mode band-pass filter for mobile communication

Bibliography 449

application, IEEE Journal of Solid-State Circuits, Vol. 33, pp. 614-625,1998.

[6.65] B. Razavi, CMOS technology characterization for analog and RF de­sign, IEEE Journal of Solid-State Circuits, Vol. 34, pp. 268-276, 1999.

[6.66] E. Kardontchik, Introduction to the Design of Ttransconductor­Capacitor Filters, Norwell, MA: Kluwer, 1992.

[6.67] G. Ferri and W. Sansen, A rail-to-rail constant-gm low voltage CMOS operational amplifier, IEEE Journal of Solid-State Circuits, Vol. 32, pp. 1563-1567, 1997.

[6.68] M. van de Gevel, J.e. Kuenen, J. Davidse, and A.H.M. Roermund, Low-power MOS integrated filter with transconductors with spoilt cur­rent sources, IEEE Journal of Solid-State Circuits, Vol. 32, pp. 1576-1581,1997.

[6.69] R.R. Torrance, T.R. Viswanathan, and V. Hanson, CMOS voltage to current transducers, IEEE Transactions on Circuits and Systems, Vol. 32,pp. 1097-1104, 1985.

[6.70] D. Smith, M. Koen, and A.F. Witulski, Evolution of high-speed opera­tional amplifier architectures, IEEE Journal of Solid-State Circuits, Vol. 29, pp. 1166-1179, 1994.

[6.71] Z. Czarnul, T. lida, and K. Tsuji, A low-voltage highly linear multiple­weighted input CMOS transconductor, IEEE Transactions on Circuits and Systems, Part II, Vol. 42, pp. 362-364,1995.

[6.72] K. Nagaraj, Constant transconductance CMOS amplifier input stage with rail-to-rail input common-mode voltage range, IEEE Transactions on Circuits and Systems, Part II, Vol. 42, pp. 366-368, 1995.

[6.73] J.P. Eggermont, D. Flandre, J.P. Ruskin, and J.P. Colinge, Potential and modeling of I-)..lm SOl CMOS operational transconductance amplifiers for applications up to I GHz, IEEE Journal of Solid-State Circuits, Vol. 33,pp.640-643,1998.

[6.74] KJ. Lee, W.e. Wang, and K.S. Huang, A current-mode testable design of operational transconductance amplifier-capacitor filters, IEEE Transactions on Circuits and Systems, Part II, Vol. 46, pp. 401-413, 1999.

450 Bibliography

[6.75] KA. Kozma, D.A. Johns, and A.S. Sedra, Tuning of continuous-time filters in the presence of parasitic poles, IEEE Transactions on Circuits and Systems, Vol. 40, Part I, pp. 13-20, 1993.

[6.76] A. Kaiser, A micro-power CMOS continuous-time low-pass filter, IEEE Journal of Solid-State Circuits, Vol. SC-24, pp. 736-743, 1989.

[6.77] J.E.e. Brown, PJ. Hurst, and L. Der, A 35Mb/s mixed-signal decision feedback equalizer for disk drives in 211m CMOS, IEEE Journal of Solid-State Circuits, Vol. 31, pp. 1258-1266, 1996.

[6.78] R. Mittal, K.e. Bracken, L.R. Carley, and DJ. Allstot, A low-power backward equalizer for DFE read channel applications, IEEE Journal of Solid-State Circuits, Vol. 32, pp. 270-273, 1997.

[6.79] T. Matsuura, T. Nara, T. Komatsu, E. Imiazumi, T. Matsutsuru, R. Horita, H. Katsu, S. Suzumura, and K Sato, A 240-Mbps, l-W CMOS EPRML read-channel LSI chip using an interleaved sub-ranging pipe­line AID converter, IEEE Journal of Solid-State Circuits, Vol. 33, pp. 1840-1850, 1998.

[6.80] D. Visakhadatta, R. Croman, M. Goldenberg, J.P. Hein, P. Katikaneni, D. Kuai, K Lee, I.e. Tesu, R. Trujillo, L. Zhang, K Anderson, R. Behrens, W. Bliss, L. Du, T. Dudley, G. Feyh, W. Foland, M. Kastner, Q. Li, J. Mitchem, D. Reed, S. She, M. Spurbecck, L. Sundell, H. Tran, M. Wei, and e. Zook, An EPR4 read/write channel with digital timing recovery, IEEE Journal of Solid-State Circuits, Vol. 33, pp. 1851-1857, 1998.

[6.81] M.SJ. Steyaert, W. Dehaene, J. Craninckx, M. Walsh, and P. Real, A CMOS rectifier integrator for amplitude detection in hard disk servo loops, IEEE Journal of Solid-State Circuits, Vol. 30, pp. 743-751, 1995.

[6.82] K.W. Moulding, Gyrator video IC filter with automatic tuning, IEEE Journal o.f Solid-State Circuits, Vol. SC-15, pp. 963-968, 1980.

[6.83] W. Gao and W.M. Snelgrove, A linear integrated LC band-pass filter with Q-enhancement, IEEE Transactions on Circuits and Systems, Part II, Vol. 45, pp. 635-639, 1997.

[6.84] KB. Ashby, LA. Koulias, W.e. Finley, J.J. Bastek, and S. Moinian, High Q inductors for wireless applications in a complementary silicon bipolar process, IEEE Journal of Solid-State Circuits, Vol. 31, pp. 4-9, 1996.

Index

Active filters, log-domain, 6-8, 197-244 switched current, 5-6, 129-

196,419-423 switched capacitor, 3,

421-422 using CCs, 4-5, 67-128 using OAs, 1-2 using OT As, 4, 15-66

Active R filters, 1-2 Actively compensated OT A, 48-53 Adaptive tuning of filters, 349-353 Adjoint concept,

filters using, 59-66, 104 ADSL

frorit-end design, 401-405 All-pass filters,

first-order using, OTAs,15-20 CCs,67-69

Amplifiers, current feedback CFOA,8-10,120-127 operational, 8-10,120-127

Analysis of log-domain filters, 242-244

BiCMOS technology OTAs using, 301-321

Bipolar technology, OTAs using, 290-301 Using CCs, 321-334 Log-domain circuits,

197-244 Biquads with high input

impedance using CCs, 75-78, 91-93

Biquads using CCs and no resistors, 1l2-115

Camera recorder IC architecture 252-253 '

Capacitor, simulation using

OTAs,34-40 Charge injection,

effect on SI filters, 164-182 CICO type,

first-order circuits, 15-20,67-69

biquads,21-34,78-86 Class AB CMOS OT As, 290-292 Clock feed-through,

cancellation in SI filters, 164-182

Companding, application to filters, 197-244

452

current mode integrator, 197-208

Component simulation, using OT As, 34-40

CT filters, 5-6 Current conveyors,

filters using, 67-115 oscillators using, 115-120 second generation, 4-5 bipolar, 321-334 CMOS, 327-332 translinear, 328-334

Current feedback operational amplifiers,

filters using, 126-127 oscillators using, 123-126

Current-mode filters using CCs, 67-128 using OT As, 15-66 using log-domain

concepts, 197-244 Current-mode oscillators,

using current conveyors, 115-120

using OT As, 57-59 using CFOAs, 123-126

Differential difference amplifier, 10-12 floating operational amplifier, 10-12

Differentiators using OT As, 15-20 Disk drive read channel rcs, 353-

388 PRMLtype,368-372 peak detect type, 358-367 DFE based, 381-388

Distortion in sr memory cells, 182-183

DVD read channel rcs, 388-394 Dynamic range of

OT A-C filters, 53-57

Effect of mismatch of transistors on current copiers, 163-165

EUN integrators, 197-208

Exponential state-space Filters, 208-229

Index

Figure of merit for evaluation of current memory cells, 185-

188 Floating inductance

simulation using, CCs, 104-112 OTAs,34-40 CFOAs, 126-127

Four terminal floating nullor, 127-128

Friend-Deliyannis biquad using CCs, 78-87 using OTAs, 31-37

Graphic equalizer, 375-381 Grounded inductance simulation

using, CCs, 104-112 OTAs,34-40 CFOAs, 126-127

GSM base band using current-mode circuits, 411-

413 Gyrators,

non-ideal using CCs, 86-94

High-frequency log-domain filters, 237-239

Log-domain ladder filters, 221-229 Lorentzian step responses, 368-369 Low-power and low-voltage issues,

249-252

MOSFET -C filters, 5-8 Multiphase CC-based oscillators,

115-120 Multiple feedback type OT A­

C filters, 45-51

Network transposition, application to CC-based

Index

filters, 104 application to OT A-C filters,

59-66

Noise and dynamic range of log-domain filters, 226-237

Noise in current copiers, 184-185 Noise in OTA-C filters, 53-57 Non-linearity compensation in

current-mode circuits, 183-184

Operational simulation type OT A-C filters, 40-45

OTAs, BiCMOS, 301-321 bipolar, 289-301 filters using, 15-66 first-order filters using, 15-20 oscillators using, 57-61 second-order filters

using, 21-34 multiple-feedback

filters using, 45-51 non-idealities, 48-53, 246-249

Power dissipation of OT A-C filters, 53-57

Programmable OT A-C biquads, 22-26

Q-enhanced active RLC filters, 413-420

Resistor realization using, MOS transistors, 5-8 OTAs, 34-40

RF receivers, 405-420

SC biquad, 3, 154-155 SI cells,

folded-cascode type, 141-146 regulated gate cascode, 146-

149 SI delay circuits, 129-149

453

Square-root domain filters, 239-242

Switched capacitor filters, 3, 139-141

Switched current filters, 129-196

Transposed networks, derivation from CC-based

fil ters, 104 derivation from OT A-C

filters, 59-66

Transconductors, BiCMOS, 301-321 bipolar, 289-301 CMOS, 252-289 filters using, 15-66

oscillators using, 57-61 Tuning of continuous time

filters, 334-355 using adaptive techniques,

348-353 using filters, 340-348 using oscillators, 337-340

Video filters, 394-401

Wi en bridge, CC based biquads using,

69-75