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使用铅硫属化物纳米晶体作为自旋混合器:对近红外到可见上转换的展望。

Using lead chalcogenide nanocrystals as spin mixers: a perspective on near-infrared-to-visible upconversion.

机构信息

Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Dalton Trans. 2018 Jul 3;47(26):8509-8516. doi: 10.1039/c8dt00419f.

Abstract

The process of upconversion leads to emission of photons higher in energy than the incident photons. Near-infrared-to-visible upconversion, in particular, shows promise in sub-bandgap sensitization of silicon and other optoelectronic materials, resulting in potential applications ranging from photovoltaics that exceed the Shockley-Queisser limit to infrared imaging. A feasible mechanism for near-infrared-to-visible upconversion is triplet-triplet annihilation (TTA) sensitized by colloidal nanocrystals (NCs). Here, the long lifetime of spin-triplet excitons in the organic materials that undergo TTA makes upconversion possible under incoherent excitation at relatively low photon fluxes. Since this process relies on optically inactive triplet states, semiconductor NCs are utilized as efficient spin mixers, absorbing the incident light and sensitizing the triplet states of the TTA material. The state-of-the-art system uses rubrene with a triplet energy of 1.14 eV as the TTA medium, and thus allows upconversion of light with photon energies above ∼1.1 eV. In this perspective, we review the field of lead sulfide (PbS) NC-sensitized near-infrared-to-visible upconversion, discuss solution-based upconversion, and highlight progress made on solid-state upconversion devices.

摘要

上转换过程导致发射的光子能量高于入射光子。特别是近红外到可见的上转换,在亚带隙敏化硅和其他光电材料方面显示出了前景,潜在应用范围从超过肖克利-奎塞尔限制的光伏到红外成像。近红外到可见上转换的一种可行机制是通过胶体纳米晶体(NCs)敏化的三重态-三重态湮灭(TTA)。在这里,在相对低的光子通量下,经历 TTA 的有机材料中自旋三重态激子的长寿命使得在非相干激发下实现上转换成为可能。由于这个过程依赖于非光学活性的三重态,因此半导体 NCs 被用作有效的自旋混合器,吸收入射光并敏化 TTA 材料的三重态。最先进的系统使用三重态能量为 1.14eV 的并五苯作为 TTA 介质,因此允许将光子能量大于约 1.1eV 的光进行上转换。在这篇观点文章中,我们回顾了硫化铅(PbS)NC 敏化的近红外到可见上转换领域,讨论了基于溶液的上转换,并强调了固态上转换器件方面的进展。

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