Department of Physics and Astronomy, Northwestern University, Evanston, Illinois 60208, USA.
Nat Mater. 2012 May 20;11(7):608-13. doi: 10.1038/nmat3331.
When tensioned, ordinary materials expand along the direction of the applied force. Here, we explore network concepts to design metamaterials exhibiting negative compressibility transitions, during which a material undergoes contraction when tensioned (or expansion when pressured). Continuous contraction of a material in the same direction of an applied tension, and in response to this tension, is inherently unstable. The conceptually similar effect we demonstrate can be achieved, however, through destabilizations of (meta)stable equilibria of the constituents. These destabilizations give rise to a stress-induced solid-solid phase transition associated with a twisted hysteresis curve for the stress-strain relationship. The strain-driven counterpart of negative compressibility transitions is a force amplification phenomenon, where an increase in deformation induces a discontinuous increase in response force. We suggest that the proposed materials could be useful for the design of actuators, force amplifiers, micromechanical controls, and protective devices.
当受到张力时,普通材料会沿着所施加力的方向膨胀。在这里,我们探索网络概念来设计表现出负压缩性转变的超材料,在这种转变中,材料在受到张力时会收缩(或在受压时会膨胀)。材料在同一方向上连续收缩,并且对这种张力做出响应,从本质上说是不稳定的。然而,我们通过(超)稳定平衡的失稳来实现类似概念的效果,这些失稳导致与应力-应变关系的扭曲滞后曲线相关的应力诱导固-固相变。负压缩性转变的应变驱动对应物是力放大现象,其中变形的增加会引起响应力的不连续增加。我们建议,所提出的材料可能对设计致动器、力放大器、微机械控制和保护装置有用。