Precise Synthesis of Donor–Acceptor [17]Helicenes Exhibiting Circularly Polarized Emission

J Jieyu Li Z Zekang Ma (Department of Materials Science and Engineering and Research Center For Industries of the Future Westlake University Hangzhou China) R Ruonan Yu (Department of Materials Science and Engineering and Research Center For Industries of the Future Westlake University Hangzhou China) X Xiaohe Miao C Chang Tang (School of Materials Science and Engineering) Q Qiancheng Sun (Department of Materials Science and Engineering and Research Center For Industries of the Future Westlake University Hangzhou China) Z Zexin Jin (Department of Materials Science and Engineering and Research Center for Industries of the Future)

Abstract

ABSTRACT Here we present a five‐step synthesis of two circular polarized light emitting donor–acceptor (D–A) [17]helicenes. The concise yet high‐yielding synthetic strategy was achieved by dedicated precursor design, with bond‐order control and substitution effects, for photocyclization. The structures and chiroptical properties of D–A [17]helicenes were comprehensively characterized by NMR, HRMS, UV–vis, CD, fluorescence and CPL spectroscopies, as well as single‐crystal X‐ray diffraction. By introducing D–A system into helicene scaffold, we demonstrate a nearly 10‐fold increase in fluorescence quantum yield compared to the unsubstituted [14]helicene, due to an enhanced fluorescence emission rate ( k f ). The emission wavelength can be tuned by introducing different functional groups. D–A [17]helicenes emitting circularly polarized light with a dissymmetry factor ( g lum ) of up to 1 × 10 −2 . DFT calculations reveal that D–A functionalization increases the oscillator strengths ( f ) thereby increasing k f . This highly efficient synthetic strategy not only facilitates the synthesis of the longest chiral helicene reported to date but also establishes design principles for developing chiral long helicenes with circularly polarized light emission.

Article Details

Volume / Issue Vol. 65, Issue 20
Published May 11, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

J

Jieyu Li

Z

Zekang Ma

Department of Materials Science and Engineering and Research Center For Industries of the Future Westlake University Hangzhou China

R

Ruonan Yu

Department of Materials Science and Engineering and Research Center For Industries of the Future Westlake University Hangzhou China

X

Xiaohe Miao

C

Chang Tang

School of Materials Science and Engineering

Q

Qiancheng Sun

Department of Materials Science and Engineering and Research Center For Industries of the Future Westlake University Hangzhou China

Z

Zexin Jin

Department of Materials Science and Engineering and Research Center for Industries of the Future