<i>N</i>‐Doped Nonalternant Nanoribbons with up to 29 Linearly‐Fused Rings and High Charge‐Carrier Mobilities
Abstract
AbstractThe synthesis of nonalternant graphene nanoribbons (GNRs)—carbon‐based nanostructures featuring fused pentagonal or heptagonal rings that disrupt hexagonal symmetry—has remained a significant challenge despite their unique electronic properties, such as tunable bandgaps and topological states. Unlike conventional alternant hydrocarbons (e.g., benzene‐derived systems), nonalternant architectures exhibit distinct electron confinement effects, making them promising for nanoscale optoelectronics and quantum materials. However, achieving precise control over their length, solubility, and structural regularity has had limited progress. Herein, we report a versatile solution‐phase synthesis of a novel family of structurally precise N‐doped nonalternant nanoribbons (NRs: NR‐11 to NR‐29) through pentagon annulation of pyrazino[2,3‐g]quinoxaline and naphthalene subunits terminated with triptycene end‐caps. The longest one comprises 29 linearly fused rings (particularly including 10 pentagonal rings), setting a new length record of 7.18 nm among the soluble nonalternant NRs reported to date. Strategic incorporation of triptycene end‐caps and alkoxyphenyl substituents into their molecular backbones confers high solubility and a unique 3D configuration, enabling comprehensive solution‐phase structural characterization and systematic investigation of length‐dependent optoelectronic properties. Employing terahertz (THz) spectroscopy, we infer high intrinsic charge carrier mobilities in nonalternant nanoribbons, reaching up to ∼2000 cm2 V−1 s−1, highlighting this novel family of nanoribbons as promising candidates for future nanoelectronic applications.
Article Details
Authors (14)
Xi He
Guangxiong Bin
Key Laboratory of Environmentally Friendly Chemistry and Application of Ministry of Education, College of Chemistry Xiangtan University Xiangtan 411105 P.R. China
Guanzhao Wen
Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany
Lingli Zhao
Ying Song
College of Physics Science and Technology
Junxiang Gao
Key Laboratory of Environmentally Friendly Chemistry and Application of Ministry of Education, College of Chemistry Xiangtan University Xiangtan 411105 P.R. China
Dongyue An
College of Smart Materials and Future Energy State Key Laboratory of Molecular Engineering of Polymers Fudan University Shanghai 200433 P.R. China
Yucheng Xu
Craig P. Yu
Cavendish Laboratory University of Cambridge 19 J J Thomson Avenue Cambridge CB3 0US UK
Xuefeng Lu
Mischa Bonn
Weixuan Zeng
Hai I. Wang
Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany
Huajie Chen
Key Laboratory of Environmentally Friendly Chemistry and Application of Ministry of Education, College of Chemistry Xiangtan University Xiangtan China