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Fangfang Zhong

Researcher at Dalian University of Technology

Publications -  15
Citations -  1054

Fangfang Zhong is an academic researcher from Dalian University of Technology. The author has contributed to research in topics: Triplet state & Excited state. The author has an hindex of 12, co-authored 14 publications receiving 844 citations.

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Journal ArticleDOI

The triplet excited state of Bodipy: formation, modulation and application

TL;DR: The methods for switching (or modulation) of the triplet excited state of Bodipy were discussed, such as those based on the photo-induced electron transfer (PET), by controlling the competing Förster-resonance-energy-transfer (FRET), or the intermolecular charge transfer (ICT).
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Efficient Enhancement of the Visible-Light Absorption of Cyclometalated Ir(III) Complexes Triplet Photosensitizers with Bodipy and Applications in Photooxidation and Triplet–Triplet Annihilation Upconversion

TL;DR: These results are useful for designing transition metal complexes that show effective strong visible-light absorption and long-lived triplet excited states, which can be used as ideal triplet photosensitizers in photocatalysis and TTA upconversion.
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Different Quenching Effect of Intramolecular Rotation on the Singlet and Triplet Excited States of Bodipy

TL;DR: In this article, it was shown that the triplet excited state of the Bodipy chromophore is not quenched by intramolecular rotation (IMR) by using steady state and time-resolved transient absorption/emission spectroscopies.
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Observation of the long-lived triplet excited state of perylenebisimide (PBI) in C^N cyclometalated Ir(III) complexes and application in photocatalytic oxidation

TL;DR: The results are useful for preparation of transition metal complexes that show strong absorption of visible light and long-lived triplet excited state and for the application of these complexes in photocatalysis.
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Enhancement of two photon absorption properties and intersystem crossing by charge transfer in pentaaryl boron-dipyrromethene (BODIPY) derivatives

TL;DR: Strong two-photon absorption properties in the near infrared region, efficient intersystem crossing and heavy atom free nature of the investigated compounds make them good candidates for two photon photodynamic therapy applications.