Baffou Guillaume, Cichos Frank, Quidant Romain
Institut Fresnel, CNRS, Aix Marseille University, Ecole Centrale Marseille, Marseille, France.
Molecular Nanophotonics Group, Peter Debye Institute for Soft Matter Physics, Universität Leipzig, Leipzig, Germany.
Nat Mater. 2020 Sep;19(9):946-958. doi: 10.1038/s41563-020-0740-6. Epub 2020 Aug 17.
Over the past two decades, there has been a growing interest in the use of plasmonic nanoparticles as sources of heat remotely controlled by light, giving rise to the field of thermoplasmonics. The ability to release heat on the nanoscale has already impacted a broad range of research activities, from biomedicine to imaging and catalysis. Thermoplasmonics is now entering an important phase: some applications have engaged in an industrial stage, while others, originally full of promise, experience some difficulty in reaching their potential. Meanwhile, innovative fundamental areas of research are being developed. In this Review, we scrutinize the current research landscape in thermoplasmonics, with a specific focus on its applications and main challenges in many different fields of science, including nanomedicine, cell biology, photothermal and hot-electron chemistry, solar light harvesting, soft matter and nanofluidics.
在过去二十年中,人们越来越关注将等离子体纳米颗粒用作由光远程控制的热源,从而催生了热等离子体学领域。在纳米尺度上释放热量的能力已经影响了广泛的研究活动,从生物医学到成像和催化。热等离子体学目前正进入一个重要阶段:一些应用已进入工业阶段,而其他一些原本充满前景的应用在发挥其潜力方面遇到了一些困难。与此同时,正在开发创新的基础研究领域。在本综述中,我们审视了热等离子体学当前的研究状况,特别关注其在包括纳米医学、细胞生物学、光热和热电子化学、太阳能收集、软物质和纳米流体学在内的许多不同科学领域中的应用和主要挑战。