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具有黎曼曲面的磁性π-扩展碳纳米螺线管的合成

Synthesis of a magnetic π-extended carbon nanosolenoid with Riemann surfaces.

作者信息

Wang Jinyi, Zhu Yihan, Zhuang Guilin, Wu Yayu, Wang Shengda, Huang Pingsen, Sheng Guan, Chen Muqing, Yang Shangfeng, Greber Thomas, Du Pingwu

机构信息

Hefei National Laboratory for Physical Sciences at the Microscale, iChEM (Collaborative Innovation Center of Chemistry for Energy Materials), CAS Key Laboratory of Materials for Energy Conversion, Department of Materials Science and Engineering, University of Science and Technology of China, 96 Jinzhai Road, Hefei, Anhui Province, 230026, China.

Center for Electron Microscopy, State Key Laboratory Breeding Base of Green Chemistry Synthesis Technology and College of Chemical Engineering, Zhejiang University of Technology, Hangzhou, 310014, China.

出版信息

Nat Commun. 2022 Mar 9;13(1):1239. doi: 10.1038/s41467-022-28870-z.

Abstract

Riemann surfaces are deformed versions of the complex plane in mathematics. Locally they look like patches of the complex plane, but globally, the topology may deviate from a plane. Nanostructured graphitic carbon materials resembling a Riemann surface with helicoid topology are predicted to have interesting electronic and photonic properties. However, fabrication of such processable and large π-extended nanographene systems has remained a major challenge. Here, we report a bottom-up synthesis of a metal-free carbon nanosolenoid (CNS) material with a low optical bandgap of 1.97 eV. The synthesis procedure is rapid and possible on the gram scale. The helical molecular structure of CNS can be observed by direct low-dose high-resolution imaging, using integrated differential phase contrast scanning transmission electron microscopy. Magnetic susceptibility measurements show paramagnetism with a high spin density for CNS. Such a π-conjugated CNS allows for the detailed study of its physical properties and may form the base of the development of electronic and spintronic devices containing CNS species.

摘要

黎曼曲面是数学中复平面的变形版本。局部上它们看起来像复平面的小块,但全局上,其拓扑结构可能与平面不同。预计具有螺旋面拓扑结构的类似黎曼曲面的纳米结构石墨碳材料具有有趣的电子和光子特性。然而,制备这种可加工且具有大π共轭扩展的纳米石墨烯系统仍然是一个重大挑战。在此,我们报告了一种自下而上合成的无金属碳纳米螺线管(CNS)材料,其光学带隙低至1.97 eV。合成过程快速且可在克级规模上实现。利用集成差分相衬扫描透射电子显微镜通过直接低剂量高分辨率成像可以观察到CNS的螺旋分子结构。磁化率测量表明CNS具有顺磁性且自旋密度高。这种π共轭的CNS有助于详细研究其物理性质,并可能构成包含CNS物种的电子和自旋电子器件开发的基础。

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