Optimizing TTA-UC performance by chemically tuning sensitizers and orderly organizing sensitizers and annihilators

IF 4.2 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Lingling Wei , Cheng Yang , Wanhua Wu
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引用次数: 0

Abstract

Triplet–triplet annihilation upconversion (TTA-UC), which can efficiently convert low-energy light into high-energy light, has received extensive attention in cutting-edge fields such as photovoltaics, bioimaging, and photopolymerization. Currently, optimizing the performance of upconversion materials is a key issue in expanding the application scope of TTA-UC and an important driving force for promoting the progress of this field. This review summarizes recent advancements in enhancing TTA-UC performance through two primary strategies: (1) molecular design: chemical modification of sensitizers to optimize their photophysical properties. By optimizing their molecular structures, the energy difference between the singlet and triplet states of molecules was precisely adjusted, thus the energy losses in intersystem crossing (ISC) and triplet–triplet energy transfer (TTET) processes were effectively reduced, and the anti-Stokes shift was significantly expanded; (2) molecular organization: implementing strategies to control the spatial arrangement of sensitizers and annihilators at the molecular level. This includes the utilization of supramolecular host–guest systems. For example, by taking advantage of the special cavities of host molecules such as cyclodextrins and pillararenes, sensitizers or annihilators can be accurately encapsulated. Through supramolecular host–guest interactions, the intermolecular distance is reduced, thereby facilitating energy transfer between the sensitizers and annihilators. In addition, through co-crystallization, forming frameworks, introducing multiple hydrogen bonds, or leveraging organic/inorganic hybrid materials, the long-range ordered arrangement of annihilators has been realized, opening up new avenues for improving the efficiency of TTA-UC. Furthermore, this review also explores the existing challenges and future development directions. It aims to provide comprehensive guidance and new research ideas for researchers entering this field.

Abstract Image

通过化学调整敏化剂和有序组织敏化剂和湮灭剂来优化ta - uc性能
三重态-三重态湮灭上转换(TTA-UC)技术可以有效地将低能光转换为高能光,在光伏、生物成像、光聚合等前沿领域受到广泛关注。目前,优化上转换材料的性能是扩大ta - uc应用范围的关键问题,也是推动该领域发展的重要动力。本文综述了通过两种主要策略来提高ta - uc性能的最新进展:(1)分子设计:对敏化剂进行化学修饰以优化其光物理性能。通过优化分子结构,精确调节分子单线态和三重态之间的能量差,有效降低了系统间交叉(ISC)和三重态-三重态能量转移(TTET)过程中的能量损失,显著扩大了反斯托克斯位移;(2)分子组织:在分子水平上实施控制敏化剂和湮灭剂空间排列的策略。这包括利用超分子主客体系统。例如,利用宿主分子(如环糊精和柱芳烃)的特殊空腔,可以精确地封装敏化剂或湮灭剂。通过超分子间的主客体相互作用,减少了分子间的距离,从而促进了敏化剂和湮灭剂之间的能量传递。此外,通过共结晶、形成框架、引入多个氢键或利用有机/无机杂化材料,实现了湮灭子的远距离有序排列,为提高TTA-UC效率开辟了新的途径。此外,本文还探讨了存在的挑战和未来的发展方向。旨在为进入该领域的研究人员提供全面的指导和新的研究思路。
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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来源期刊
Chemical Communications
Chemical Communications 化学-化学综合
CiteScore
8.60
自引率
4.10%
发文量
2705
审稿时长
1.4 months
期刊介绍: ChemComm (Chemical Communications) is renowned as the fastest publisher of articles providing information on new avenues of research, drawn from all the world''s major areas of chemical research.
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