首页> 外文期刊>International journal of hydrogen energy >Modification of the ultrasonication derived-g-C_3N_4 nanosheets/quantum dots by MoS_2 nanostructures to improve electrocatalytic hydrogen evolution reaction
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Modification of the ultrasonication derived-g-C_3N_4 nanosheets/quantum dots by MoS_2 nanostructures to improve electrocatalytic hydrogen evolution reaction

机译:MOS_2纳米结构的超声衍生 - G-C_3N_4纳米蛋白酶/量子点的修饰,改善电催化氢进化反应

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摘要

In this work, graphitic carbon nitride (g-C3N4) nanosheets/quantum dots (NS/QD) was prepared using a simple and low-cost procedure. By two steps exfoliation in a bath and tip sonicator, the g-C3N4 (NS/QD) was produced from bulk g-C3N4. To improve electrocatalytic hydrogen evolution reaction (HER), the g-C3N4 (NS/QD) were modified by the MoS2 nanostructures. Nanocomposite of the g-C3N4 (NS/QD) with MoS2 nanostructures was deposited on a flexible, conductive and three dimensional carbon cloth by a facile and binder-free electrophoretic technique. This electrode exhibited a Tafel slope of 88 mV/dec and an overpotential of 0.28 V vs RHE at -2 mA/cm(2), lower than that of the g-C3N4, and good stability after 1000 cycles and 100 days for HER. The enhanced electrocatalytic performance was attributed to the MoS2 and g-C3N4 nanostructures on three dimensional carbon cloth, leading to high surface area and more number of the exposed active sites for HER. This heterostructure improved charge transport, proton adsorption and hydrogen evolution on the electrode. This work proposes cost-effective, stable and three dimensional g-C3N4 based electrode for hydrogen evolution reaction. (c) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在这项工作中,使用简单和低成本的方法制备石墨碳氮化物(G-C3N4)纳米晶片/量子点(NS / QD)。通过两个步骤在浴槽和尖端超声器中剥离,G-C3N4(NS / QD)由甲基-C3N4制备。为了改善电催化氢进化反应(她),通过MOS2纳米结构改性G-C3N4(NS / QD)。通过容易和无粘合剂的电泳技术沉积具有MOS2纳米结构的G-C3N4(NS / QD)的G-C3N4(NS / QD)的纳米复合物沉积在柔性,导电和三维碳布上。该电极表现出88mV / DEC的Tafel斜率,并且在-2mA / cm(2)下的0.28V Vs rHe的过电位,低于G-C3N4,并且在1000次循环后的良好稳定性和100天。增强的电催化性能归因于三维碳布上的MOS2和G-C3N4纳米结构,导致高表面积和更多的暴露活性位点。这种异质结构改善了电极上的电荷输送,质子吸附和氢气进化。这项工作提出了用于氢进化反应的经济效益,稳定和三维G-C3N4电极。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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