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氮掺杂介孔碳作为具有高比体积电容的超级电容器电极材料。

Nitrogen-Doped Mesoporous Carbons for Supercapacitor Electrodes with High Specific Volumetric Capacitance.

机构信息

School of Materials and Energy, Guangdong University of Technology , Guangzhou, Guangdong 510006, People's Republic of China.

出版信息

Langmuir. 2017 Apr 25;33(16):3975-3981. doi: 10.1021/acs.langmuir.7b00489. Epub 2017 Apr 17.

Abstract

To pursue the miniaturization of supercapacitors in practical use, it is critical to construct an efficient but limited porosity of a nanocarbon-based electrode for simultaneously obtaining a high utilization of energy storage places and high coating density. However, current studies dominantly focus on the enhancement of specific mass capacitance (C) by increasing the pore volume and surface area, leading to a low coating density and, thereby, resulting in a low specific volumetric capacitance (C). We report herein the fabrication of a nitrogen-doped mesoporous carbon (NNCM), whose tunable pore volume coupled with the fixed mesopore size offers us the possibility to control the coating density, thus optimizing the C and C for different application purposes. As a result, NNCM with the highest pore volume and surface area of 2.11 cm g and 663 m g demonstrates the highest C (190 F g) but lowest C (124 F cm) because the overhigh porosity reduces the coating density greatly. NNCM with moderate pore volume and surface area of 1.22 cm g and 489 m g shows the highest C of 200 F cm, although it presents a low C of 147 F g. These results may raise concerns about constructing a suitable porosity to realize a target-oriented use, particularly those targeting miniaturized devices.

摘要

为了在实际应用中追求超级电容器的微型化,构建一个高效但具有有限孔隙率的基于纳米碳的电极以同时获得高储能位利用率和高涂层密度至关重要。然而,目前的研究主要侧重于通过增加孔体积和表面积来提高比质量电容(C),从而导致低涂层密度,进而导致低比体积电容(C)。我们在此报告了一种氮掺杂介孔碳(NNCM)的制备,其可调的孔体积与固定的介孔尺寸为我们提供了控制涂层密度的可能性,从而优化了不同应用目的下的 C 和 C。结果表明,具有最高孔体积和比表面积为 2.11 cm g 和 663 m g 的 NNCM 表现出最高的 C(190 F g)但最低的 C(124 F cm),因为过高的孔隙率大大降低了涂层密度。具有中等孔体积和比表面积为 1.22 cm g 和 489 m g 的 NNCM 表现出最高的 C 为 200 F cm,尽管它的 C 为 147 F g。这些结果可能引起人们对构建合适的孔隙率以实现目标导向应用的关注,特别是针对小型化设备的应用。

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