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  5. Nanobeam Mechanics: Elasticity, Strength, and Toughness of Nanorods and Nanotubes

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Article
English
1997

Nanobeam Mechanics: Elasticity, Strength, and Toughness of Nanorods and Nanotubes

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English
1997
Science
Vol 277 (5334)
DOI: 10.1126/science.277.5334.1971

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Charles M. Lieber
Charles M. Lieber

Harvard University

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Eric W. M. Wong
Paul E. Sheehan
Charles M. Lieber

Abstract

The Young's modulus, strength, and toughness of nanostructures are important to proposed applications ranging from nanocomposites to probe microscopy, yet there is little direct knowledge of these key mechanical properties. Atomic force microscopy was used to determine the mechanical properties of individual, structurally isolated silicon carbide (SiC) nanorods (NRs) and multiwall carbon nanotubes (MWNTs) that were pinned at one end to molybdenum disulfide surfaces. The bending force was measured versus displacement along the unpinned lengths. The MWNTs were about two times as stiff as the SiC NRs. Continued bending of the SiC NRs ultimately led to fracture, whereas the MWNTs exhibited an interesting elastic buckling process. The strengths of the SiC NRs were substantially greater than those found previously for larger SiC structures, and they approach theoretical values. Because of buckling, the ultimate strengths of the stiffer MWNTs were less than those of the SiC NRs, although the MWNTs represent a uniquely tough, energy-absorbing material.

How to cite this publication

Eric W. M. Wong, Paul E. Sheehan, Charles M. Lieber (1997). Nanobeam Mechanics: Elasticity, Strength, and Toughness of Nanorods and Nanotubes. Science, 277(5334), pp. 1971-1975, DOI: 10.1126/science.277.5334.1971.

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Publication Details

Type

Article

Year

1997

Authors

3

Datasets

0

Total Files

0

Language

English

Journal

Science

DOI

10.1126/science.277.5334.1971

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