Dean David S, Lu Bing-Sui, Maggs A C, Podgornik Rudolf
Univ. Bordeaux and CNRS, Laboratoire Ondes et Matière d'Aquitaine (LOMA), UMR 5798, F-33400 Talence, France.
Department of Theoretical Physics, J. Stefan Institute and Department of Physics, Faculty of Mathematics and Physics, University of Ljubljana, SI-1000 Ljubljana, Slovenia.
Phys Rev Lett. 2016 Jun 17;116(24):240602. doi: 10.1103/PhysRevLett.116.240602. Epub 2016 Jun 14.
In net-neutral systems correlations between charge fluctuations generate strong attractive thermal Casimir forces and engineering these forces to optimize nanodevice performance is an important challenge. We show how the normal and lateral thermal Casimir forces between two plates containing Brownian charges can be modulated by decorrelating the system through the application of an electric field, which generates a nonequilibrium steady state with a constant current in one or both plates, reducing the ensuing fluctuation-generated normal force while at the same time generating a lateral drag force. This hypothesis is confirmed by detailed numerical simulations as well as an analytical approach based on stochastic density functional theory.
在净中性系统中,电荷涨落之间的相关性会产生强大的吸引性热卡西米尔力,而设计这些力以优化纳米器件性能是一项重大挑战。我们展示了如何通过施加电场使系统去相关,从而调制包含布朗电荷的两块平板之间的法向和横向热卡西米尔力。施加电场会在一块或两块平板中产生具有恒定电流的非平衡稳态,从而减小随后由涨落产生的法向力,同时产生横向拖曳力。这一假设通过详细的数值模拟以及基于随机密度泛函理论的解析方法得到了证实。