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利用临界 Casimir 力控制胶体相转变。

Controlling colloidal phase transitions with critical Casimir forces.

机构信息

van der Waals-Zeeman Institute, University of Amsterdam, Amsterdam, The Netherlands.

出版信息

Nat Commun. 2013;4:1584. doi: 10.1038/ncomms2597.

Abstract

The critical Casimir force provides a thermodynamic analogue of the quantum mechanical Casimir force that arises from the confinement of electromagnetic field fluctuations. In its thermodynamic analogue, two surfaces immersed in a critical solvent mixture attract each other due to confinement of solvent concentration fluctuations. Here, we demonstrate the active assembly control of colloidal equilibrium phases using critical Casimir forces. We guide colloidal particles into analogues of molecular liquid and solid phases via exquisite control over their interactions. By measuring the critical Casimir pair potential directly from density fluctuations in the colloidal gas, we obtain insight into liquefaction at small scales. We apply the van der Waals model of molecular liquefaction and show that the colloidal gas-liquid condensation is accurately described by the van der Waals theory, even on the scale of a few particles. These results open up new possibilities in the active assembly control of micro and nanostructures.

摘要

临界 Casimir 力提供了一种热力学类比,与由于电磁场波动的限制而产生的量子力学 Casimir 力相对应。在其热力学类比中,浸入临界溶剂混合物中的两个表面由于溶剂浓度波动的限制而相互吸引。在这里,我们使用临界 Casimir 力来演示胶体平衡相的主动组装控制。我们通过对它们相互作用的精细控制,将胶体粒子引导到类似分子液体和固体的相。通过直接从胶体气体中的密度波动测量临界 Casimir 对势能,我们深入了解了小尺度下的液化过程。我们应用分子液化的范德华模型,并表明胶体气液凝聚可以通过范德华理论准确描述,即使在几个粒子的尺度上也是如此。这些结果为微纳结构的主动组装控制开辟了新的可能性。

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