Kundu Koustav, Ouyang Tianhong, Reinhard Björn M
Department of Chemistry and The Photonics Center, Boston University, Boston, MA 02215, United States of America.
Nanotechnology. 2025 May 27;36(23). doi: 10.1088/1361-6528/add93f.
Both noble metal nanoparticles (NPs) and chalcopyrite (CuFeS) nanocrystals (NCs) provide resonant absorption in the visible, albeit through different mechanisms. Coherent oscillations of free conduction band electrons give rise to localized plasmons in noble metal NPs, whereas collective oscillations of bound electrons are responsible for quasistatic resonances in CuFeSNCs. This manuscript reviews the photophysical and photocatalytic properties of both noble metal and chalcopyrite nanostructures as well as direct and indirect charge and energy transfer processes in hybrid structures containing noble metal NPs and either semiconductor NCs or molecular photosensitizers or photocatalysts. CuFeSNCs share structural similarities with conventional semiconductor NCs, but the availability of collective charge oscillations in the visible facilitates a resonant coupling to localized plasmons in NPs. Hybrid nanostructures containing both metal and chalcopyrite building blocks are examined as a platform for wavelength-dependent charge and energy transfer and bifunctional reactivity for enhanced plasmonic photocatalysis.
贵金属纳米颗粒(NPs)和黄铜矿(CuFeS)纳米晶体(NCs)都能在可见光范围内产生共振吸收,尽管其机制不同。自由传导带电子的相干振荡在贵金属纳米颗粒中产生局域等离子体,而束缚电子的集体振荡则是CuFeS纳米晶体中准静态共振的原因。本文综述了贵金属和黄铜矿纳米结构的光物理和光催化性质,以及包含贵金属纳米颗粒与半导体纳米晶体或分子光敏剂或光催化剂的混合结构中的直接和间接电荷及能量转移过程。CuFeS纳米晶体与传统半导体纳米晶体具有结构相似性,但可见光中集体电荷振荡的存在促进了与纳米颗粒中局域等离子体的共振耦合。含有金属和黄铜矿结构单元的混合纳米结构被作为一个平台进行研究,用于波长依赖的电荷和能量转移以及增强等离子体光催化的双功能反应性。