Design of π-Conjugated Donor-Bridge-Acceptor Radicals for Molecular Qudit Applications

Abstract Organic radicals with spin-polarized excited-state manifolds are attractive molecular platforms for quantum information technologies. A central challenge lies in the understanding of how emissive doublet states can communicate with higher-spin quartet states while maintaining efficient luminescence. In this context, we propose here a series of donor-bridge-acceptor radicals based on anthracene or naphthalene donors coupled to the tris(trichlorophenyl)methyl (TTM•) radical acceptor. By combining excited-state electronic-structure analysis with interpolated coordinate pathways, we reveal how the locally excited (LE) states and charge-transfer (CT) states govern the accessibility of quartet manifolds and enable radical-enhanced reverse intersystem crossing (ERISC). Structural variations, including steric hindrance and donor–acceptor spatial separation, are shown to modulate the CT-state characteristics and reshape the LE-CT energy landscape. Our results identify the electronic-structure requirements and molecular design strategies for achieving both optically addressable emission and manipulation of quartet states, two key ingredients for molecular qudit architectures.

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Publication Details

Journal
ACS Central Science
Published
2026-10-10
DOI
https://doi.org/10.1021/acscentsci.6c01275
Primary Topic
Photochemistry and Electron Transfer Studies
Type
article
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article

Design of π-Conjugated Donor-Bridge-Acceptor Radicals for Molecular Qudit Applications

Jean‐Luc Brédas, Veaceslav Coropceanu, Qi Sun
ACS Central Science
Photochemistry and Electron Transfer Studies
article

Design of π-Conjugated Donor-Bridge-Acceptor Radicals for Molecular Qudit Applications

Jean‐Luc Brédas, Veaceslav Coropceanu, Qi Sun
article en

Abstract

Abstract Organic radicals with spin-polarized excited-state manifolds are attractive molecular platforms for quantum information technologies. A central challenge lies in the understanding of how emissive doublet states can communicate with higher-spin quartet states while maintaining efficient luminescence. In this context, we propose here a series of donor-bridge-acceptor radicals based on anthracene or naphthalene donors coupled to the tris(trichlorophenyl)methyl (TTM•) radical acceptor. By combining excited-state electronic-structure analysis with interpolated coordinate pathways, we reveal how the locally excited (LE) states and charge-transfer (CT) states govern the accessibility of quartet manifolds and enable radical-enhanced reverse intersystem crossing (ERISC). Structural variations, including steric hindrance and donor–acceptor spatial separation, are shown to modulate the CT-state characteristics and reshape the LE-CT energy landscape. Our results identify the electronic-structure requirements and molecular design strategies for achieving both optically addressable emission and manipulation of quartet states, two key ingredients for molecular qudit architectures.

ACS Central Science
University of Arizona (US)
Openalex Percentile: Top 18%
Photochemistry and Electron Transfer Studies
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Design of π-Conjugated Donor-Bridge-Acceptor Radicals for Molecular Qudit Applications — Jean‐Luc Brédas, Veaceslav Coropceanu, et al. · ACS Central Science (2026) | TGRS Research Map | TGRS