金属掺杂InP量子点增强电荷转移

IF 4.8 Q2 NANOSCIENCE & NANOTECHNOLOGY ACS Nanoscience Au Pub Date : 2023-09-07 DOI:10.1021/acsnanoscienceau.3c00029
Forrest W. Eagle, Samantha Harvey, Ryan Beck, Xiaosong Li, Daniel R. Gamelin and Brandi M. Cossairt*, 
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摘要

本文介绍了掺杂共价金属的 InP 量子点(QDs),相对于未掺杂的 QDs,它是一种增强电子传递到分子受体的平台。研究人员开发了一种制备掺杂 InP/ZnSe QDs 的合成策略。第一原理 DFT 计算表明,Ag+ 和 Cu+掺杂剂可将光激发的空穴局部化,而将电子局部化。利用这种电荷载流子波函数调制,可将电子转移到分子受体的能力提高一个数量级。对光致发光淬灭数据的研究表明,较大的电子受体(如蒽醌和甲基紫罗兰烯)通过两种方式与 QD 表面结合:直接吸附到表面,以及在弱结合表面阳离子-配体复合物发生位移后吸附到表面。与较大的受体发生反应时,掺杂和未掺杂量子点之间的电子转移增幅最大,而与较小的受体发生反应时,增幅较小。具体来说,苯醌的增幅最小,其次是萘醌,然后是甲基紫罗兰烯和蒽醌。这些结果证明了掺杂剂诱导的激发态载流子定位对光诱导电荷转移的益处,并强调了改进量子点在光氧化催化中的应用的设计原则。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Enhanced Charge Transfer from Coinage Metal Doped InP Quantum Dots

This paper describes coinage-metal-doped InP quantum dots (QDs) as a platform for enhanced electron transfer to molecular acceptors relative to undoped QDs. A synthetic strategy is developed to prepare doped InP/ZnSe QDs. First-principles DFT calculations show that Ag+ and Cu+ dopants localize photoexcited holes while leaving electrons delocalized. This charge carrier wave function modulation is leveraged to enhance electron transfer to molecular acceptors by up to an order of magnitude. Examination of photoluminescence quenching data suggests that larger electron acceptors, such as anthraquinone and methyl viologen, bind to the QD surface in two ways: by direct adsorption to the surface and by adsorption following displacement of a weakly bound surface cation-ligand complex. Reactions with larger acceptors show the greatest increases in electron transfer between doped and undoped quantum dots, while smaller acceptors show smaller enhancements. Specifically, benzoquinone shows the smallest, followed by naphthoquinone and then methyl viologen and anthraquinone. These results demonstrate the benefits of dopant-induced excited-state carrier localization on photoinduced charge transfer and highlight design principles for improved implementation of quantum dots in photoredox catalysis.

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来源期刊
ACS Nanoscience Au
ACS Nanoscience Au 材料科学、纳米科学-
CiteScore
4.20
自引率
0.00%
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0
期刊介绍: ACS Nanoscience Au is an open access journal that publishes original fundamental and applied research on nanoscience and nanotechnology research at the interfaces of chemistry biology medicine materials science physics and engineering.The journal publishes short letters comprehensive articles reviews and perspectives on all aspects of nanoscience and nanotechnology:synthesis assembly characterization theory modeling and simulation of nanostructures nanomaterials and nanoscale devicesdesign fabrication and applications of organic inorganic polymer hybrid and biological nanostructuresexperimental and theoretical studies of nanoscale chemical physical and biological phenomenamethods and tools for nanoscience and nanotechnologyself- and directed-assemblyzero- one- and two-dimensional materialsnanostructures and nano-engineered devices with advanced performancenanobiotechnologynanomedicine and nanotoxicologyACS Nanoscience Au also publishes original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials engineering physics bioscience and chemistry into important applications of nanomaterials.
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