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1.
Science ; 320(5875): 504-7, 2008 Apr 25.
Artigo em Inglês | MEDLINE | ID: mdl-18440923

RESUMO

Most materials shrink laterally like a rubber band when stretched, so their Poisson's ratios are positive. Likewise, most materials contract in all directions when hydrostatically compressed and decrease density when stretched, so they have positive linear compressibilities. We found that the in-plane Poisson's ratio of carbon nanotube sheets (buckypaper) can be tuned from positive to negative by mixing single-walled and multiwalled nanotubes. Density-normalized sheet toughness, strength, and modulus were substantially increased by this mixing. A simple model predicts the sign and magnitude of Poisson's ratio for buckypaper from the relative ease of nanofiber bending and stretch, and explains why the Poisson's ratios of ordinary writing paper are positive and much larger. Theory also explains why the negative in-plane Poisson's ratio is associated with a large positive Poisson's ratio for the sheet thickness, and predicts that hydrostatic compression can produce biaxial sheet expansion. This tunability of Poisson's ratio can be exploited in the design of sheet-derived composites, artificial muscles, gaskets, and chemical and mechanical sensors.

2.
Science ; 311(5767): 1580-3, 2006 Mar 17.
Artigo em Inglês | MEDLINE | ID: mdl-16543453

RESUMO

Artificial muscles and electric motors found in autonomous robots and prosthetic limbs are typically battery-powered, which severely restricts the duration of their performance and can necessitate long inactivity during battery recharge. To help solve these problems, we demonstrated two types of artificial muscles that convert the chemical energy of high-energy-density fuels to mechanical energy. The first type stores electrical charge and uses changes in stored charge for mechanical actuation. In contrast with electrically powered electrochemical muscles, only half of the actuator cycle is electrochemical. The second type of fuel-powered muscle provides a demonstrated actuator stroke and power density comparable to those of natural skeletal muscle and generated stresses that are over a hundred times higher.


Assuntos
Órgãos Artificiais , Materiais Biomiméticos , Eletrodos , Músculo Esquelético , Nanotubos de Carbono , Fenômenos Biomecânicos , Biônica , Fontes de Energia Elétrica , Eletroquímica , Hidrogênio/química , Remoção , Músculo Esquelético/fisiologia , Oxirredução , Oxigênio/química , Robótica , Estresse Mecânico
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