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在水相介质限制条件下增强双可见光光开关效应可促进三重态-三重态能量转移。

Amplifying dual-visible-light photoswitching in aqueous media confinement promoted triplet-triplet energy transfer.

作者信息

Wang Wenhui, Yang Weixin, Zhang Zhiwei, Dai Jinghong, Xu Yisheng, Zhang Junji

机构信息

Key Laboratory for Advanced Materials and Joint International Research Laboratory of Precision Chemistry and Molecular Engineering, Feringa Nobel Prize Scientist Joint Research Center, School of Chemistry and Molecular Engineering, East China University of Science & Technology 130 Meilong Road Shanghai 200237 China

State Key Laboratory of Chemical Engineering, East China University of Science & Technology 130 Meilong Road Shanghai 200237 China.

出版信息

Chem Sci. 2024 Mar 6;15(15):5539-5547. doi: 10.1039/d4sc00423j. eCollection 2024 Apr 17.

Abstract

Achieving visible-light photochromism is a long-term goal of chemists keen to exploit the opportunities of molecular photoswitches in multi-disciplinary research studies. Triplet-sensitization offers a flexible approach to building diverse visible-light photoswitches using existing photochromic scaffolds, circumventing the need for sophisticated molecular design and synthesis. Unfortunately, distance-dependence and environment-sensitivity of triplet-excited species remain as key challenges that severely impair sensitization efficiency and limit their practical availability. We present herein a nature-inspired nanoconfinement strategy in which a triplet-sensitized visible-light photoswitch/sensitizer system is assembled into nanoconfined micelles ( ∼ 40 nm). A 10-fold efficiency increase of triplet-triplet energy transfer for photochromism as well as an amplified fluorescence on/off contrast upon bi-directional visible-light excitation (470/560 nm) was achieved in full aqueous media. By virtue of this, the hybrid photoswitchable system is successfully applied for both flash information encryption and multiple dynamic cell imaging assays, further proving its versatility in materials and life science.

摘要

实现可见光光致变色是热衷于在多学科研究中利用分子光开关机遇的化学家们的长期目标。三重态敏化提供了一种灵活的方法,可利用现有的光致变色支架构建多种可见光光开关,从而无需复杂的分子设计和合成。不幸的是,三重态激发物种的距离依赖性和环境敏感性仍然是关键挑战,严重损害了敏化效率并限制了它们的实际应用。我们在此提出一种受自然启发的纳米限域策略,其中将三重态敏化的可见光光开关/敏化剂系统组装到纳米限域胶束(约40纳米)中。在完全水性介质中,光致变色的三重态-三重态能量转移效率提高了10倍,并且在双向可见光激发(470/560纳米)时荧光开/关对比度得到放大。据此,该混合光开关系统成功应用于闪存信息加密和多种动态细胞成像分析,进一步证明了其在材料和生命科学中的多功能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4512/11023046/10b8fc085cd5/d4sc00423j-f1.jpg

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