| Literature DB >> 32182060 |
Weijie Chi1, Jie Chen2, Wenjuan Liu2, Chao Wang1,2, Qingkai Qi2, Qinglong Qiao2, Tee Meng Tan1, Kangming Xiong2, Xiao Liu3, Keegan Kang1, Young-Tae Chang3,4, Zhaochao Xu2, Xiaogang Liu1.
Abstract
Photoinduced electron transfer (PET) is one of the most important mechanisms for developing fluorescent probes and biosensors. Quantitative prediction of the quantum yields of these probes and sensors is crucial to accelerate the rational development of novel PET-based functional materials. Herein, we developed a general descriptor (ΔE) for predicting the quantum yield of PET probes, with a threshold value of ∼0.6 eV. When ΔE < ∼0.6 eV, the quantum yield is low (mostly <2%) due to the substantial activation of PET in polar environments; when ΔE > ∼0.6 eV, the quantum yield is high because of the inhibition of PET. This simple yet effective descriptor is applicable to a wide range of fluorophores, such as BODIPY, fluorescein, rhodamine, and Si-rhodamine. This ΔE descriptor enables us not only to establish new applications for existing PET probes but also to quantitatively design novel PET-based fluorophores for wash-free bioimaging and AIEgen development.Entities:
Year: 2020 PMID: 32182060 DOI: 10.1021/jacs.0c01473
Source DB: PubMed Journal: J Am Chem Soc ISSN: 0002-7863 Impact factor: 15.419