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具有非零弯曲刚度的黏附膜的力学和热稳定性。

Mechanical and thermal stability of adhesive membranes with nonzero bending rigidity.

机构信息

Department of Physics, University of Jyväskylä, P.O. Box 35, FI-40014 Jyväskylä, Finland.

出版信息

Phys Rev Lett. 2010 Jul 9;105(2):026103. doi: 10.1103/PhysRevLett.105.026103.

Abstract

Membranes at a microscopic scale are affected by thermal fluctuations and self-adhesion due to van der Waals forces. Methods to prepare membranes of even molecular scale, e.g., graphene, have recently been developed, and the question of their mechanical and thermal stability is of crucial importance. To this end we modeled microscopic membranes with an attractive interaction and applied Langevin dynamics. Their behavior was also analyzed under external loading. Even though these membranes folded during isotropic compression as a result of energy minimization, the process at high confinement was similar to crumpling of macroscopic nonadhesive sheets. The main difference appeared when the compression was released. In such cases, for membranes of sufficiently large size, folded or scrolled conformations emerged. At high temperature entropic effects made such conformations unfavorable, however.

摘要

在微观尺度上,膜受到热涨落和范德华力引起的自粘性的影响。最近已经开发出了制备分子级膜的方法,例如石墨烯,而它们的机械和热稳定性问题至关重要。为此,我们对具有吸引力相互作用的微观膜进行了建模,并应用了朗之万动力学。还分析了它们在外载作用下的行为。尽管这些膜在各向同性压缩过程中由于能量最小化而折叠,但在高约束下的过程类似于宏观非粘性片材的起皱。当释放压缩时,主要区别就显现出来了。在这种情况下,对于足够大尺寸的膜,会出现折叠或卷曲的构象。然而,在高温下,熵效应使这些构象变得不利。

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