Triplet Generation Through Singlet Fission in Metal‐Organic Framework: An Alternative Route to Inefficient Singlet‐Triplet Intersystem Crossing

Author:

Surendran Rajasree Sreehari1ORCID,Yu Jierui1ORCID,Fry H. Christopher2ORCID,Anderson Ryther3,Xu Wenqian4ORCID,Krishnan Riya1ORCID,Duan Jiaxin5ORCID,Goswami Subhadip5ORCID,A. Gómez‐Gualdrón Diego3ORCID,Deria Pravas1ORCID

Affiliation:

1. School of Chemical and Biomolecular Sciences Southern Illinois University Carbondale 1245 Lincoln Dr. 62901 Carbondale IL USA

2. Center for Nanoscale Materials Argonne National Laboratory 9700 S Cass Ave 60439 Lemont IL USA

3. Department of Chemical and Biological Engineering Colorado School of Mines 1500 Illinois St 80401 Golden CO USA

4. X-ray Science Division Advanced Photon Source Argonne National Laboratory 9700 S Cass Ave 60439 Lemont IL USA

5. Department of Chemistry Northwestern University 2145 Sheridan Road 60208 Evanston IL USA

Abstract

AbstractHigh quantum yield triplets, populated by initially prepared excited singlets, are desired for various energy conversion schemes in solid working compositions like porous MOFs. However, a large disparity in the distribution of the excitonic center of mass, singlet‐triplet intersystem crossing (ISC) in such assemblies is inhibited, so much so that a carboxy‐coordinated zirconium heavy metal ion cannot effectively facilitate the ISC through spin‐orbit coupling. Circumventing this sluggish ISC, singlet fission (SF) is explored as a viable route to generating triplets in solution‐stable MOFs. Efficient SF is achieved through a high degree of interchromophoric coupling that facilitates electron super‐exchange to generate triplet pairs. Here we show that a predesigned chromophoric linker with extremely poor ISC efficiency (kISC) but form triplets in MOF in contrast to the frameworks that are built from linkers with sizable kISC but . This work opens a new photophysical and photochemical avenue in MOF chemistry and utility in energy conversion schemes.

Funder

Directorate for Mathematical and Physical Sciences

Directorate for Engineering

Publisher

Wiley

Subject

General Chemistry,Catalysis

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