Scholay

学术搜索 · AI 审稿 · LaTeX 协作

Nanoscale Control of Optical Heating in Complex Plasmonic Systems

作者:Guillaume Baffou, Romain Quidant, F. Javier Garcı́a de Abajo · 发表于:ACS Nano · 年份:2010 · DOI:10.1021/nn901144d · 被引用次数:765 · 研究领域:Thermal Radiation and Cooling Technologies、Plasmonic and Surface Plasmon Research、Gold and Silver Nanoparticles Synthesis and Applications

We introduce a numerical technique to investigate the temperature distribution in arbitrarily complex plasmonic systems subject to external illumination. We perform both electromagnetic and thermodynamic calculations based upon a time-efficient boundary element method. Two kinds of plasmonic systems are investigated in order to illustrate the potential of such a technique. First, we focus on individual particles with various morphologies. In analogy with electrostatics, we introduce the concept of thermal capacitance. This geometry-dependent quantity allows us to assess the temperature increase inside a plasmonic particle from the sole knowledge of its absorption cross section. We present universal thermal-capacitance curves for ellipsoids, rods, disks, and rings. Additionally, we investigate assemblies of nanoparticles in close proximity and show that, despite its diffusive nature, the temperature distribution can be made highly non-uniform even at the nanoscale using plasmonic systems. A significant degree of nanoscale control over the individual temperatures of neighboring particles is demonstrated, depending on the external light wavelength and direction of incidence. We illustrate this concept with simulations of gold sphere dimers and chains in water. Our work opens new possibilities for selectively controlling processes such as local melting for dynamic patterning of textured materials, chemical and metabolic thermal activation, and heat delivery for producing mechanic...