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孤立金属纳米线呼吸模式产生的可压缩粘弹性液体效应。

Compressible Viscoelastic Liquid Effects Generated by the Breathing Modes of Isolated Metal Nanowires.

机构信息

†Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, Indiana 46556-5670, United States.

‡School of Mathematics and Statistics, The University of Melbourne, Victoria 3010, Australia.

出版信息

Nano Lett. 2015 Jun 10;15(6):3964-70. doi: 10.1021/acs.nanolett.5b00853. Epub 2015 May 19.

Abstract

Transient absorption microscopy is used to examine the breathing modes of single gold nanowires in highly viscous liquids. By performing measurements on the same wire in air and liquid, the damping contribution from the liquid can be separated from the intrinsic damping of the nanowire. The results show that viscous liquids strongly reduce the vibrational lifetimes but not to the extent predicted by standard models for nanomaterial-liquid interactions. To explain these results a general theory for compressible viscoelastic fluid-structure interactions is developed. The theory results are in good agreement with experiment, which confirms that compressible non-Newtonian flow phenomena are important for vibrating nanostructures. This is the first theoretical study and experimental measurement of the compressible viscoelastic properties of simple liquids.

摘要

瞬态吸收显微镜用于研究单根金纳米线在高粘性液体中的呼吸模式。通过在空气和液体中对同一根纳米线进行测量,可以将液体的阻尼贡献与纳米线的固有阻尼分离。结果表明,粘性液体强烈地降低了振动寿命,但没有达到纳米材料-液体相互作用的标准模型所预测的程度。为了解释这些结果,发展了一种用于可压缩粘弹性流固耦合的通用理论。理论结果与实验吻合较好,证实了可压缩非牛顿流现象对振动纳米结构很重要。这是对简单液体的可压缩粘弹性性质的首次理论研究和实验测量。

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