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具有由准石墨域桥接的富氮缺陷的有序-无序超薄碳纳米结构用于高性能离子捕获。

Order-in-disordered ultrathin carbon nanostructure with nitrogen-rich defects bridged by pseudographitic domains for high-performance ion capture.

作者信息

Liang Mingxing, Ren Yifan, Cui Jun, Zhang Xiaochen, Xing Siyang, Lei Jingjing, He Mengyao, Xie Haijiao, Deng Libo, Yu Fei, Ma Jie

机构信息

Research Center for Environmental Functional Materials, State Key Laboratory of Pollution Control and Resource Reuse, College of Environmental Science and Engineering, Tongji University, Shanghai, 200092, PR China.

School of Civil Engineering, Kashi University, Kashi, 844000, PR China.

出版信息

Nat Commun. 2024 Jul 31;15(1):6437. doi: 10.1038/s41467-024-50899-5.

Abstract

Carbon materials with defect-rich structure are highly demanded for various electrochemical scenes, but encountering a conflict with the deteriorative intrinsic conductivity. Herein, we build a highway-mediated nanoarchitecture that consists of the ordered pseudographitic nanodomains among disordered highly nitrogen-doped segments through a supramolecular self-assembly strategy. The "order-in-disorder" nanosheet-like carbon obtained at 800 °C (O/D NSLC-800) achieves a tradeoff with high defect degree (21.9 at% of doped nitrogen) and compensated electrical conductivity simultaneously. As expected, symmetrical O/D NSLC-800 electrodes exhibit superior capacitive deionization (CDI) performance, including brackish water desalination (≈82 mg g at a cell voltage of 1.6 V in a 1000 mg L NaCl solution) and reusage of actual refining circulating cooling water, outperforming most of the reported state-of-the-art CDI electrodes. The implanted pseudographitic nanodomains lower the resistance and activation energy of charge transfer, which motivates the synergy of hosting sites of multiple nitrogen configurations. Our findings shed light on electrically conductive nanoarchitecture design of defect-rich materials for advanced electrochemical applications based on molecular-level modulation.

摘要

具有富缺陷结构的碳材料在各种电化学场景中具有很高的需求,但却与恶化的本征电导率产生冲突。在此,我们通过超分子自组装策略构建了一种由无序的高氮掺杂段之间的有序准石墨纳米域组成的“高速公路”介导的纳米结构。在800°C下获得的“无序中有序”纳米片状碳(O/D NSLC-800)在高缺陷度(掺杂氮含量为21.9原子%)和补偿电导率之间实现了平衡。正如预期的那样,对称的O/D NSLC-800电极表现出优异的电容去离子(CDI)性能,包括微咸水脱盐(在1000 mg L NaCl溶液中,电池电压为1.6 V时,≈82 mg g)以及实际炼油循环冷却水的回用,优于大多数已报道的先进CDI电极。植入的准石墨纳米域降低了电荷转移的电阻和活化能,这促进了多种氮构型的宿主位点的协同作用。我们的研究结果为基于分子水平调控的先进电化学应用中富缺陷材料的导电纳米结构设计提供了启示。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ab06/11291722/51e1944a4ac1/41467_2024_50899_Fig1_HTML.jpg

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