Literature DB >> 33372312

Chemical Bonding as a New Avenue for Controlling Excited-State Properties and Excitation Energy-Transfer Processes in Zinc Phthalocyanine-Fullerene Dyads.

Zi-Wen Li1, Jia-Jia Yang1, Xiang-Yang Liu2, Wei-Hai Fang1, Haobin Wang3, Ganglong Cui1.   

Abstract

Whether chemical bonding can regulate the excited-state and optoelectronic properties of donor-acceptor dyads has been largely elusive. In this work, we used electronic structure and nonadiabatic dynamics methods to explore the excited-state properties of covalently bonded zinc phthalocyanine (ZnPc)-fullerene (C60 ) dyads with a 6-6 (or 5-6) bonding configuration in which ZnPc is bonded to two carbon atoms shared by the two hexagonal rings (or a pentagonal and a hexagonal ring) in C60 . In both cases, the locally excited (LE) states on ZnPc are spectroscopically bright. However, their different chemical bonding differentiates the electronic interactions between ZnPc and C60 . In the 5-6 bonding configuration, the LE states on ZnPc are much higher in energy than the LE states on C60 . Thus, the excitation energy transfer from ZnPc to C60 is thermodynamically favorable. On the other hand, in the 6-6 bonding configuration, such a process is inhibited because the LE states on ZnPc are the lowest ones. More detailed mechanisms are elucidated from nonadiabatic dynamics simulations. In the 6-6 bonding configuration, no excitation energy transfer was observed. In contrast, in the 5-6 bonding configuration, several LE and charge-transfer (CT) excitons were shown to participate in the energy-transfer process. Further analysis reveals that the photoinduced energy transfer is mediated by a CT exciton, such that electron- and hole-transfer processes take place in a concerted but asynchronous manner in the excitation energy transfer. It is also found that high-level electronic structure methods including exciton effects are indispensable to accurately describe photoinduced energy- and electron-transfer processes. Furthermore, this work opens up new avenues for regulating the excited-state properties of molecular donor-acceptor dyads by means of chemical bonding.
© 2020 Wiley-VCH GmbH.

Entities:  

Keywords:  energy transfer; excited states; fullerenes; nonadiabatic dynamics; zinc phthalocyanine

Year:  2021        PMID: 33372312     DOI: 10.1002/chem.202004850

Source DB:  PubMed          Journal:  Chemistry        ISSN: 0947-6539            Impact factor:   5.236


  1 in total

1.  Exploring the Association of Electron-Donating Corroles with Phthalocyanines as Electron Acceptors.

Authors:  Benedikt Platzer; Beatrice Berionni Berna; Martina Bischetti; Daniel O Cicero; Roberto Paolesse; Sara Nardis; Tomás Torres; Dirk M Guldi
Journal:  Chemistry       Date:  2022-02-10       Impact factor: 5.020

  1 in total

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