Abstract
Singlet fission (SF), a process that involves the conversion of one singlet exciton (S1) into a pair of triplet excitons (T1), holds great technological promise for photovoltaics. Typical SF materials necessitate that the singlet energy (ES1) be at least twice that of the triplet energy (ET1) or that, equivalently, ES1 be less than twice the singlet-triplet energy splitting (ΔES1−T1). Based on these design principles, we have developed a series of linearly arranged pyrene-fused azaacenes with varying conjugation lengths, featuring four, five, and six aromatic rings. These molecules exhibit distinct excited-state dynamics in both solution and films. With increasing conjugation length, the Es1 values decrease correspondingly from 2.51 to 2.09 eV. Time-resolved spectroscopy and quantum chemistry calculations reveal that ΔES1-T1 increases from 0.38 to 1.13 eV, which is attributed to the increasing molecular frontier orbital overlaps. These systematic trends result in an intersystem crossing in the short-conjugated backbone (four aromatic rings). Conversely, the long-conjugated backbone of six aromatic rings exhibits an ultrafast intermolecular SF process. These findings regarding this newest addition to the collection of SF materials provide guidance on the construction of molecules for desired optoelectronic properties. © 2023 American Chemical Society.
| Original language | English |
|---|---|
| Pages (from-to) | 9040-9049 |
| Journal | Chemistry of Materials |
| Volume | 35 |
| Issue number | 21 |
| Online published | 19 Oct 2023 |
| DOIs | |
| Publication status | Published - 14 Nov 2023 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
Publisher's Copyright Statement
- COPYRIGHT TERMS OF DEPOSITED POSTPRINT FILE: This document is the Accepted Manuscript version of a Published Work that appeared in final form in Chemistry of Materials, copyright © 2023 American Chemical Society after peer review and technical editing by the publisher. To access the final edited and published work see https://doi.org/10.1021/acs.chemmater.3c01703.
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