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用于染料吸附和超级电容器应用的氮掺杂多孔碳纳米片的大规模制备。

Large-scale fabrication of N-doped porous carbon nanosheets for dye adsorption and supercapacitor applications.

作者信息

Wang Zhiwei, Wang Kai, Wang Yahuan, Wang Shaomin, Chen Zhimin, Chen Jiafu, Fu Jianwei

机构信息

School of Materials Science and Engineering, Zhengzhou University, Zhengzhou, 450052, P R China.

出版信息

Nanoscale. 2019 May 9;11(18):8785-8797. doi: 10.1039/c9nr01777a.

Abstract

The development of novel large-scale synthesis protocols for heteroatom-doped porous carbon nanosheets is highly imperative for wastewater purification and high-performance electrode materials. In the present work, we propose a simple and feasible explosion-assisted activation strategy to fabricate a kind of N-doped porous carbon nanosheet (N-PCNS) at a large scale, in which only lactose and zinc nitrate were used as raw materials. The obtained N-PCNS possesses hierarchical micro- and mesopore nanostructures with a high specific surface area of 879 m2 g-1 while keeping a high nitrogen content of 3.73 at%. The adsorption properties of the N-PCNS were systematically evaluated through adsorption of neutral red (NR) dye. The adsorption capacity of the N-PCNS was as high as 439.6 mg g-1, meanwhile the adsorption process exhibited fine correlation with the Langmuir isotherm and pseudo-second-order kinetic models. As an electrode material for supercapacitors, the specific capacitance of the N-PCNS is up to 263 F g-1 at 1 A g-1 and 194 F g-1 at 20 A g-1, revealing superior rate performance. The capacitance retention after 10 000 cycles at 20 A g-1 is 96%, demonstrating excellent cycling stability. Our work provides an effective approach to achieve the large-scale preparation of high-performance doped carbon materials.

摘要

开发用于杂原子掺杂多孔碳纳米片的新型大规模合成方案对于废水净化和高性能电极材料来说至关重要。在本工作中,我们提出了一种简单可行的爆炸辅助活化策略,以大规模制备一种氮掺杂多孔碳纳米片(N-PCNS),其中仅使用乳糖和硝酸锌作为原料。所获得的N-PCNS具有分级的微孔和介孔纳米结构,比表面积高达879 m2 g-1,同时保持3.73 at%的高氮含量。通过吸附中性红(NR)染料系统地评估了N-PCNS的吸附性能。N-PCNS的吸附容量高达439.6 mg g-1,同时吸附过程与朗缪尔等温线和准二级动力学模型表现出良好的相关性。作为超级电容器的电极材料,N-PCNS在1 A g-1时的比电容高达263 F g-1,在20 A g-1时为194 F g-1,显示出优异的倍率性能。在20 A g-1下10000次循环后的电容保持率为96%,证明了出色的循环稳定性。我们的工作为实现高性能掺杂碳材料的大规模制备提供了一种有效方法。

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