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波长相关光热成像探针亚衍射耦合等离子体纳米棒之间的纳米级温差。

Wavelength-Dependent Photothermal Imaging Probes Nanoscale Temperature Differences among Subdiffraction Coupled Plasmonic Nanorods.

机构信息

Department of Electrical and Computer Engineering, Rice University, Houston, Texas 77005, United States.

Department of Chemistry, University of Washington, Seattle, Washington 98195, United States.

出版信息

Nano Lett. 2021 Jun 23;21(12):5386-5393. doi: 10.1021/acs.nanolett.1c01740. Epub 2021 Jun 1.

Abstract

Plasmonic structures confine electromagnetic energy at the nanoscale, resulting in local, inhomogeneous, controllable heating, but reading out the temperature using optical techniques poses a difficult challenge. Here, we report on the optical thermometry of individual gold nanorod trimers that exhibit multiple wavelength-dependent plasmon modes resulting in measurably different local temperature distributions. Specifically, we demonstrate how photothermal microscopy encodes different wavelength-dependent temperature profiles in the asymmetry of the photothermal image point spread function. These asymmetries are interpreted through companion numerical simulations to reveal how thermal gradients within the trimer can be controlled by exciting its hybridized plasmon modes. We also find that plasmon modes that are optically dark can be excited by focused laser beam illumination, providing another route to modify thermal profiles beyond wide-field illumination. Taken together these findings demonstrate an all-optical thermometry technique to actively create and measure nanoscale thermal gradients below the diffraction limit.

摘要

等离子体结构将电磁能限制在纳米尺度内,导致局部、不均匀、可控的加热,但使用光学技术读取温度是一个具有挑战性的难题。在这里,我们报告了单个金纳米棒三聚体的光热测量,该三聚体表现出多个与波长相关的等离子体模式,从而导致可测量的局部温度分布不同。具体来说,我们展示了如何通过光热显微镜将不同波长相关的温度分布编码在光热图像点扩展函数的不对称性中。这些不对称性通过配套的数值模拟进行解释,揭示了如何通过激发三聚体的混合等离子体模式来控制热梯度。我们还发现,通过聚焦激光束照射,可以激发光学上暗的等离子体模式,从而提供了超越宽场照明来修改热分布的另一种途径。总之,这些发现展示了一种主动创建和测量亚衍射极限下纳米尺度热梯度的全光学测温技术。

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