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Simple and Large Scale Construction of MoS2-g-C3N4 Heterostructures Using Mechanochemistry for High Performance Electrochemical Supercapacitor and Visible Light Photocatalytic Applications

机译:MOS2-G-C3N4异质结构简单,大规模施工,采用高性能电化学超级电容器和可见光光催化应用

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The design of heterojunctions for efficient electrochemical energy storage and environmental remediation are promising for future energy and environment applications. In this study, a molybdenum disulfide-graphitic carbon nitride (MoS2-g-C3N4) heterojunction was designed by applying simple mechanochemistry, which can be scaled up for mass production. The physical-chemical and photophysical properties of the as-prepared MoS2-g-C3N4 heterojunction were analyzed using a range of characterization techniques. The supercapacitance performance was determined by electrochemical half-cell measurements, and visible light-induced photoelectrochemical and photocatalytic performance was studied using photocurrent and model organic pollutant degradation experiments. The resulting MoS2-g-C3N4 under the optimized experimental conditions showed significantly higher photocatalytic activity and photoelectrochemical performance under similar visible photoirradiation conditions compared to the bare materials. The resulting heterostructure electrode delivered a higher capacitance of 240.85?F/g than the bare material (48.77?F/g) with good capacitance retention. The superior performance was attributed mainly to the robust light harvesting ability, improved charge separation, high surface area, increased mass transfer, and capacitive and conductive behavior. The convenient and mass production of heterojunctions using a simple and cost-effective method will provide a good example for the efficient design of visible light active photocatalysts and capacitor electrode materials for environmental remediation and energy storage device applications.
机译:有效电化学能量存储和环境修复的异电功能的设计对未来的能量和环境应用有望。在该研究中,通过应用简单的机械化学设计,设计了一种二硫化钼 - 石墨碳氮化物(MOS2-G-C3N4)异质结,其可以缩放批量生产。使用一系列表征技术分析了由制备的MOS2-G-C3N4异质结的物理化学和光学性质。通过电化学半电池测量确定超级电容性能,使用光电流和模型有机污染物降解实验研究了可见光诱导的光电化学和光催化性能。与裸料相比,优化的实验条件下的所得MOS2-G-C3N4在优化的实验条件下显示出显着较高的光催化活性和光电化学性能。所得的异质结构电极比具有良好电容保留的裸料(48.77×f / g)输送了240.85·f / g的较高电容。卓越的性能主要归因于稳健的光收集能力,改善电荷分离,高表面积,增加的传质和电容性和导电行为。使用简单且成本效益的方法的简便和大规模生产的异质功能将提供用于环境修复和能量存储装置应用的可见光活性光催化剂和电容器电极材料的有效设计的一个很好的例子。

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