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等离子体纳米流体:增强朝向液体机器人的光热梯度。

Plasmonic Nanofluids: Enhancing Photothermal Gradients toward Liquid Robots.

作者信息

Bevione Matteo, Chiolerio Alessandro, Tagliabue Giulia

机构信息

Empa─Swiss Federal Laboratories for Materials Science and Technology, Ueberlandstrasse 129, 8600 Duebendorf, Switzerland.

Laboratory of Nanoscience for Energy Technology (LNET), École Polytechnique Fédérale de Lausanne, Rte Cantonale, 1015 Lausanne, Switzerland.

出版信息

ACS Appl Mater Interfaces. 2023 Nov 1;15(43):50106-50115. doi: 10.1021/acsami.3c06859. Epub 2023 Oct 18.

Abstract

In situ energy generation in soft, flexible, autonomous devices is challenging due to the need for highly stretchable and fault-resistant components. Nanofluids with pyro-, tribo-, or thermoelectric properties have recently emerged as promising solutions for realizing liquid-based energy harvesters. Yet, large thermal gradients are required for the efficient performance of these systems. In this work, we show that oil-based plasmonic nanofluids uniquely combine high photothermal efficiency with strong heat localization. In particular, we report that oleic acid-based nanofluids containing TiN nanoclusters (0.3 wt %) exhibit 89% photothermal efficiency and can realize thermal gradients as large as 15.5 K/cm under solar irradiation. We experimentally and numerically investigate the photothermal behavior of the nanofluid as a function of solid fraction concentration and irradiation wavelength, clarifying the interplay of thermal and optical properties and demonstrating a dramatic improvement compared with water-based nanofluids. Overall, these results open unprecedented opportunities for the development of liquid-based energy generation systems for soft, stand-alone devices.

摘要

在柔软、灵活的自主设备中实现原位能量产生具有挑战性,因为需要高度可拉伸且抗故障的组件。具有热释电、摩擦电或热电特性的纳米流体最近已成为实现基于液体的能量收集器的有前景的解决方案。然而,这些系统要实现高效性能需要较大的热梯度。在这项工作中,我们表明油基等离子体纳米流体独特地将高光热效率与强热局域化结合在一起。特别是,我们报告了含有TiN纳米团簇(0.3 wt%)的油酸基纳米流体表现出89%的光热效率,并且在太阳辐射下能够实现高达15.5 K/cm的热梯度。我们通过实验和数值方法研究了纳米流体的光热行为与固体分数浓度和辐照波长的函数关系,阐明了热学和光学性质之间的相互作用,并证明与水基纳米流体相比有显著改进。总体而言,这些结果为开发用于柔软、独立设备的基于液体的能量产生系统带来了前所未有的机遇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4e63/10623507/bf355b9302f8/am3c06859_0001.jpg

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