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Tuning Effective Conjugation via B←N Orientation: High-Mobility n-Type Isoindigo Polymers for Organic Field-Effect Transistors

Tian, Jingshu ; Sun, Haofeng ; Li, Jiarui ; Wang, Cheng ; Yang, Kun ; Zhou, Qinqi LU orcid ; Liu, Kai-Kai ; Liu, Maning LU orcid and Zhang, Haichang (2026) In Chinese Journal of Structural Chemistry
Abstract
The incorporation of electron-withdrawing B←N coordination units has emerged as an effective strategy to enhance n-type charge transport in conjugated polymers. However, the orientation of these units, whether perpendicular or parallel to the polymer backbone, profoundly influences effective conjugation, molecular packing, and ultimately charge transport properties. To address this structure-property relationship systematically, we designed the IIDG-AB chromophore with precisely controlled polymerization sites, yielding two isomeric polymers: P1 with perpendicular B←N orientation and P2 with parallel orientation. Integrated theoretical and experimental investigations reveal that P1, despite having a shorter geometric conjugation length,... (More)
The incorporation of electron-withdrawing B←N coordination units has emerged as an effective strategy to enhance n-type charge transport in conjugated polymers. However, the orientation of these units, whether perpendicular or parallel to the polymer backbone, profoundly influences effective conjugation, molecular packing, and ultimately charge transport properties. To address this structure-property relationship systematically, we designed the IIDG-AB chromophore with precisely controlled polymerization sites, yielding two isomeric polymers: P1 with perpendicular B←N orientation and P2 with parallel orientation. Integrated theoretical and experimental investigations reveal that P1, despite having a shorter geometric conjugation length, achieves a more extended effective π-system, stronger intramolecular charge transfer (ICT), tighter solution-phase aggregation, closer π-π stacking, and more delocalized electron excitation. These collective attributes result in a deeper lowest unoccupied molecular orbital level and superior electron transport, with P1 exhibiting an electron mobility of 1.77 cm2 V−1 s−1 in organic field-effect transistors,substantially exceeding that of P2 (0.86 cm2 V−1 s−1). This work demonstrates that chromophore twist and intrinsic dihedral angles can distort backbone conformation, limit effective conjugation and weaken packing efficiency. We highlight that orienting B←N coordination perpendicular to the backbone is critical, establishing a key design principle for high-performance n-type polymers. The concept of “conformation-driven performance” offers a valuable paradigm for the rational development of organic electronic materials. (Less)
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author
; ; ; ; ; ; ; and
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publishing date
type
Contribution to journal
publication status
epub
subject
in
Chinese Journal of Structural Chemistry
article number
100943
pages
11 pages
publisher
Elsevier
ISSN
2949-768X
DOI
10.1016/j.cjsc.2026.100943
language
English
LU publication?
yes
id
583bce5c-5ef5-4618-a075-2e6c974a3faf
date added to LUP
2026-06-23 09:54:10
date last changed
2026-06-23 10:49:49
@article{583bce5c-5ef5-4618-a075-2e6c974a3faf,
  abstract     = {{The incorporation of electron-withdrawing B←N coordination units has emerged as an effective strategy to enhance n-type charge transport in conjugated polymers. However, the orientation of these units, whether perpendicular or parallel to the polymer backbone, profoundly influences effective conjugation, molecular packing, and ultimately charge transport properties. To address this structure-property relationship systematically, we designed the IIDG-AB chromophore with precisely controlled polymerization sites, yielding two isomeric polymers: P1 with perpendicular B←N orientation and P2 with parallel orientation. Integrated theoretical and experimental investigations reveal that P1, despite having a shorter geometric conjugation length, achieves a more extended effective π-system, stronger intramolecular charge transfer (ICT), tighter solution-phase aggregation, closer π-π stacking, and more delocalized electron excitation. These collective attributes result in a deeper lowest unoccupied molecular orbital level and superior electron transport, with P1 exhibiting an electron mobility of 1.77 cm<sup>2</sup> V<sup>−1</sup> s<sup>−1</sup> in organic field-effect transistors,substantially exceeding that of P2 (0.86 cm<sup>2</sup> V<sup>−1</sup> s<sup>−1</sup>). This work demonstrates that chromophore twist and intrinsic dihedral angles can distort backbone conformation, limit effective conjugation and weaken packing efficiency. We highlight that orienting B←N coordination perpendicular to the backbone is critical, establishing a key design principle for high-performance n-type polymers. The concept of “conformation-driven performance” offers a valuable paradigm for the rational development of organic electronic materials.}},
  author       = {{Tian, Jingshu and Sun, Haofeng and Li, Jiarui and Wang, Cheng and Yang, Kun and Zhou, Qinqi and Liu, Kai-Kai and Liu, Maning and Zhang, Haichang}},
  issn         = {{2949-768X}},
  language     = {{eng}},
  month        = {{04}},
  publisher    = {{Elsevier}},
  series       = {{Chinese Journal of Structural Chemistry}},
  title        = {{Tuning Effective Conjugation via B←N Orientation: High-Mobility n-Type Isoindigo Polymers for Organic Field-Effect Transistors}},
  url          = {{http://dx.doi.org/10.1016/j.cjsc.2026.100943}},
  doi          = {{10.1016/j.cjsc.2026.100943}},
  year         = {{2026}},
}