掺杂剂
材料科学
纳米晶
等离子体子
表面等离子共振
载流子
兴奋剂
局域表面等离子体子
氧化物
纳米技术
金属
共振(粒子物理)
红外线的
光电子学
纳米颗粒
化学物理
光学
化学
原子物理学
冶金
物理
作者
Ankit Agrawal,Robert W. Johns,Delia J. Milliron
标识
DOI:10.1146/annurev-matsci-070616-124259
摘要
Metal oxides, when electronically doped with oxygen vacancies, aliovalent dopants, or interstitial dopants, can exhibit metallic behavior due to the stabilization of a substantial charge carrier concentration within the material. As a result, localized surface plasmon resonances (LSPRs) occur in nanocrystals of conducting metal oxides. Through deliberate choice of both the host material and the defect, these resonances can be tuned across the entirety of the near- and mid-infrared regions of the electromagnetic spectrum. Optical modeling has revealed that the defects present have profound impacts on charge carrier mobility and electronic structure, and in some cases, choosing one dopant over another is an important trade-off for optimizing plasmonic performance. These materials are distinct from classical metals in that one can tune their LSPR in energy and intensity through their elemental composition independently of any particular size or nanocrystal morphology. In addition, the LSPR in these materials is highly modulable through external stimuli over substantial spectral windows. As a result, these materials uniquely provide a responsive plasmonic material that can offer optimal nanocrystal arrangements and morphology without compromising the intended resonance frequency for light concentration at any infrared wavelength.
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