TY - JOUR
T1 - Charge-Segregated Stacking Structure with Anisotropic Electric Conductivity in NIR-Absorbing and Emitting Positively Charged π-Electronic Systems
AU - Yamasumi, Kazuhisa
AU - Ueda, Kentaro
AU - Haketa, Yohei
AU - Hattori, Yusuke
AU - Suda, Masayuki
AU - Seki, Shu
AU - Sakai, Hayato
AU - Hasobe, Taku
AU - Ikemura, Ryoya
AU - Imai, Yoshitane
AU - Ishibashi, Yukihide
AU - Asahi, Tsuyoshi
AU - Nakamura, Kazuto
AU - Maeda, Hiromitsu
N1 - Funding Information:
This work was supported by JSPS KAKENHI Grant Numbers JP18H01968 and JP22H02067 for Scientific Research (B), JP19K05444 for Scientific Research (C), JP22H00314 for Scientific Research (A) and JP20H05863, JP20H05867, and JP20H05862 for Transformative Research Areas (A) “Condensed Conjugation”, and Ritsumeikan Global Innovation Research Organization (R-GIRO) project (2017–22 and 2022–27). Theoretical calculations were partially performed at the Research Center for Computational Science, Okazaki, Japan (20-IMS-C079, 21-IMS-C077, 22-IMS-C077). We thank Dr. Nobuhiro Yasuda, JASRI/SPring-8, and Prof. Kunihisa Sugimoto, Kindai University, for synchrotron radiation single-crystal X-ray analysis (BL02B1 and BL40XU at SPring-8: 2020A1688, 2021B1703), Prof. Osamu Tsutsumi, Ritsumeikan University, for single-crystal X-ray analysis, and Prof. Hitoshi Tamiaki, Ritsumeikan University, for various measurements.
Funding Information:
This work was supported by JSPS KAKENHI Grant Numbers JP18H01968 and JP22H02067 for Scientific Research (B), JP19K05444 for Scientific Research (C), JP22H00314 for Scientific Research (A) and JP20H05863, JP20H05867, and JP20H05862 for Transformative Research Areas (A) “Condensed Conjugation”, and Ritsumeikan Global Innovation Research Organization (R‐GIRO) project (2017–22 and 2022–27). Theoretical calculations were partially performed at the Research Center for Computational Science, Okazaki, Japan (20‐IMS‐C079, 21‐IMS‐C077, 22‐IMS‐C077). We thank Dr. Nobuhiro Yasuda, JASRI/SPring‐8, and Prof. Kunihisa Sugimoto, Kindai University, for synchrotron radiation single‐crystal X‐ray analysis (BL02B1 and BL40XU at SPring‐8: 2020A1688, 2021B1703), Prof. Osamu Tsutsumi, Ritsumeikan University, for single‐crystal X‐ray analysis, and Prof. Hitoshi Tamiaki, Ritsumeikan University, for various measurements.
Publisher Copyright:
© 2022 Wiley-VCH GmbH.
PY - 2023/2/13
Y1 - 2023/2/13
N2 - Squarylium-based π-electronic cation with an augmented dipole was synthesized by methylation of zwitterionic squarylium. The cation formed various ion pairs in combination with anions, and the ion pairs exhibited distinct photophysical properties in the dispersed state, ascribed to the formation of J- and H-aggregates. The ion pairs provided solid-state assemblies based on cation stacking. It is noteworthy that complete segregation of cations and anions was observed in a pseudo-polymorph of the ion pair with pentacyanocyclopentadienide as a π-electronic anion. In the crystalline state, the ion pairs exhibited photophysical properties and electric conductivity derived from cation stacking. In particular, the charge-segregated ion-pairing assembly induces an electric conductive pathway along the stacking axis. The charge-segregated mode and fascinating properties were derived from the reduced electrostatic repulsion between adjacent π-electronic cations via dipole–dipole interactions.
AB - Squarylium-based π-electronic cation with an augmented dipole was synthesized by methylation of zwitterionic squarylium. The cation formed various ion pairs in combination with anions, and the ion pairs exhibited distinct photophysical properties in the dispersed state, ascribed to the formation of J- and H-aggregates. The ion pairs provided solid-state assemblies based on cation stacking. It is noteworthy that complete segregation of cations and anions was observed in a pseudo-polymorph of the ion pair with pentacyanocyclopentadienide as a π-electronic anion. In the crystalline state, the ion pairs exhibited photophysical properties and electric conductivity derived from cation stacking. In particular, the charge-segregated ion-pairing assembly induces an electric conductive pathway along the stacking axis. The charge-segregated mode and fascinating properties were derived from the reduced electrostatic repulsion between adjacent π-electronic cations via dipole–dipole interactions.
KW - Charged π-Electronic Systems
KW - Chiroptical Properties
KW - Electric Conductivity
KW - Ion-Pairing Assemblies
KW - NIR Dyes
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U2 - 10.1002/anie.202216013
DO - 10.1002/anie.202216013
M3 - Article
C2 - 36573653
AN - SCOPUS:85146452792
SN - 1433-7851
VL - 62
JO - Angewandte Chemie - International Edition
JF - Angewandte Chemie - International Edition
IS - 8
M1 - e202216013
ER -