Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field,...

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Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky K. Cho – Stanford University D. Brenner – NC State University R. Ruoff – Northwestern University M. Osman – Washington State University Computational Nanotechnology of Materials, Devices and Machines: Carbon Nanotubes

Transcript of Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field,...

Page 1: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Deepak Srivastava

Computational Nanotechnology at CSC/NAS

NASA Ames Research Center

Moffett Field, CA 95014

Collaborators:M. Menon – University of KentuckyK. Cho – Stanford UniversityD. Brenner – NC State UniversityR. Ruoff – Northwestern UniversityM. Osman – Washington State University

Computational Nanotechnology of Materials, Devices and Machines: Carbon Nanotubes

Page 2: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.
Page 3: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

http://www.ipt.arc.nasa.gov at Ames Research Center

Page 4: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Simulation Techniques

•Large scale Classical Molecular Dynamics Simulations on a SharedMemory Architecture Computer

• Tersoff-Brenner reactive many-body potential for hydrocarbons

with long range LJ(6-12) Van der Walls interactions

• Parallel implementation on a shared memory Origin2000

• Quantum Molecular Dynamics Simulations

• Tight-binding MD in a non-orthogonal atomic basis

• Previous parametrization: silicon and carbon (M. Menon and K. R

Subbaswami, Phys. Rev. B 1993-94.

• Extended to heteroatomic systems including C, B, N, H

Page 5: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Experimental Nanotechnology at Ames Research Center

http://www.ipt.arc.nasa.gov at Ames Research Center

Page 6: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Nanomechanics of Nanomaterials

• Nanotubes are extremely strong highly elastic nanofibers

~ High value of Young’s Modulus (1.2 -1.3 T Pa for SWNTs)

~ Elastic limit upto 10-15% strain

• Dynamic response under axial compression, bending torsion

• redistribution of strain• sharp buckling leading to bond rupture• SWNT is stiffer than MWNT

Page 7: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Nanomechanics of Nanomaterials

Page 8: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Nanotubes in Composites

• Experiment: buckling and collapse of nanotubes embedded in polymer composites.

Buckle, bend andloops of thicktubes..

Local collapse orfracture of thintubes.

Page 9: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Stiffness and Plasticity of Compressed C Nanotubes

Page 10: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Plastic Collapse of an (8,0) Carbon Nanotube

Quantum Molecular Dynamics

•D. Srivastava, M. Menon and K. Cho, Phys. Rev. Lett. (1999)

Page 11: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Plastic Collapse by Design

• Tube plastically collapses at the location of the defect• New types of heterojunctions can be created • Quantum dot effect in one dimensional system

Page 12: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

CxByNz Nanotubes

• Band gap engineering over a larger range

• BN ~ 5 eV• BC2N ~ 2 eV• C ~ 0 - 1 eV• BC3 ~ 0.5 eV

Page 13: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

BN Nanotubes - Structural Characteristics

• BN bond buckling effect:

Page 14: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

BN Nanotubes: Nanomechanics and Plasticity

• Comparison of Young’s modulus and elastic limit

Page 15: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Anisotropic Plasticity of BN Nanotube

(a)

(b)

(c)

(d)

(e)

• Plastic collapse at 14.75% strain

Page 16: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Anisotropic Plasticity of BN Nanotubes

Quantum Molecular Dynamics

Page 17: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Comparison of Plastic Collapse of BN and C

Anisotropic strain release Isotropic strain release

Page 18: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

BN Nanotubes - Nanomechanics

•BN nanotube based composite with anisotropic plasticity• Nanostructured skin effect !

Page 19: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.
Page 20: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Nanotube Electronics (Basics)

Page 21: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Band Structure

Page 22: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.
Page 23: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.
Page 24: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.
Page 25: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Nanoelectronics with Doping

Page 26: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.
Page 27: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.
Page 28: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Nano Electromechanical Effects (NEMS)

Mechanical deformation alter the electronic deformationOf nanotubes : effect is chirality dependent

Page 29: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Mechano-Chemical Effects: Kinky Chemistry

Cohesive Energy

BindingEnergy

Page 30: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Functionalization of Nanotubes

Page 31: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Mechano-Chemical Effects: Kinky chemistry

SEM images of MWNTs dispersed on a V-ridged Formvar substrate

D. Srivastava, J. D. Schall, D. W. Brenner, K. D. Ausman, M. FengAnd R. Ruoff, J. Phys. Chem. Vol. 103, 4330 (1999).

Page 32: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Molecular Machines and Laser Motor

J. Han, A Globus and R. Jaffe

Page 33: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Molecular Machines and Laser Motor

Page 34: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Computational Nanotechnology: PSE

Simulations Experiments

Nanomanipulation in Virtual World

Next Generation of Technology and Products

Page 35: Deepak Srivastava Computational Nanotechnology at CSC/NAS NASA Ames Research Center Moffett Field, CA 95014 Collaborators: M. Menon – University of Kentucky.

Comments

• compressed C nanotube nanomechanics in composites

• BN nanotube is almost as stiff as a C nanotube with even higher

elastic limit

• anisotropic plastic collapse is observed

~ nanostructured skin effect

~ functionality of a smart material

• concept of a mechanical kink catalyzed chemistry of flexible

nanoscale materials

~ kinky chemistry