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原位还原和分散在聚合物薄膜中的金纳米粒子:光学和热学性质。

Gold nanoparticles reduced in situ and dispersed in polymer thin films: optical and thermal properties.

机构信息

Ralph E Martin Department of Chemical Engineering, 3202 Bell Engineering Center, University of Arkansas, Fayetteville, AR 72701, USA.

出版信息

Nanotechnology. 2012 Sep 21;23(37):375703. doi: 10.1088/0957-4484/23/37/375703. Epub 2012 Aug 24.

Abstract

Optical and thermal activity of plasmon-active nanoparticles in transparent dielectric media is of growing interest in thermal therapies, photovoltaics and optoelectronic components in which localized surface plasmon resonance (LSPR) could play a significant role. This work compares a new method to embed gold nanoparticles (AuNPs) in dense, composite films with an extension of a previously introduced method. Microscopic and spectroscopic properties of the two films are related to thermal behavior induced via laser excitation of LSPR at 532 nm in the optically transparent dielectric. Gold nanoparticles were incorporated into effectively nonporous 680 μm thick polydimethylsiloxane (PDMS) films by (1) direct addition of organic-coated 16 nm nanoparticles; and (2) reduction of hydrogen tetrachloroaurate (TCA) into AuNPs. Power loss at LSPR excitation frequency and steady-state temperature maxima at 100 mW continuous laser irradiation showed corresponding increases with respect to the mass of gold introduced into the PDMS films by either method. Measured rates of temperature increase were higher for organic-coated NP, but higher gold content was achieved by reducing TCA, which resulted in larger overall temperature changes in reduced AuNP films.

摘要

在热疗、光伏和光电组件中,透明介电介质中等离子体活性纳米粒子的光学和热活性越来越受到关注,其中局域表面等离子体共振(LSPR)可能发挥重要作用。本工作比较了一种将金纳米粒子(AuNPs)嵌入致密复合膜中的新方法和一种之前引入的方法的扩展。两种薄膜的微观和光谱特性与通过在光学透明介电体中以 532nm 的激光激发 LSPR 诱导的热行为有关。金纳米粒子通过(1)直接添加有机包覆的 16nm 纳米粒子;和(2)将四氯金酸(TCA)还原为 AuNPs,被掺入到厚度为 680μm 的有效无孔聚二甲基硅氧烷(PDMS)薄膜中。在 LSPR 激发频率下的功率损耗和在 100mW 连续激光辐照下的稳态温度最大值均表现出与通过两种方法引入 PDMS 薄膜的金质量相应的增加。对于有机包覆的 NP,测量到的温度升高率较高,但通过还原 TCA 可以实现更高的金含量,从而导致还原 AuNP 薄膜中的整体温度变化更大。

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