无定形碳和 CdS 与宿主 NiO HMs 共同沉积,通过水分离实现卓越的光催化 H2 生产

IF 2.1 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Hanmei Hu, Fang Ye, Tao Wang, Rui Xu, Yibin Zhu, Chonghai Deng
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引用次数: 0

摘要

光载体的高效空间分离对于光催化剂实现卓越的太阳能光催化分水制取 H2 至关重要。本研究以三维立方氧化镍空心微球(HMs)为独立支撑基体,共沉积超薄无定形碳层和钝角CdS纳米颗粒(NPs),从而获得高效的光催化制取H2系统。通过各种技术对 C@CdS/NiO 三元复合材料的晶体结构、化学成分、光学和电学性质进行了表征。结果表明,通过微波加热一锅法成功构建了具有花朵状形貌和双界面组合的集成 C@CdS/NiO 异构体。在模拟太阳光照射下,C@CdS/NiO复合材料的光催化H2进化反应(HER)效率达到了17.99 mmol∙g- 1∙h- 1,分别是二元CdS/NiO杂化材料和单一CdS的5.7倍和163.5倍。光电化学测量结果表明,双界面相互作用有利于促进光激发电荷载流子在空间的分离。具体来说,超薄碳膜在实现优异光催化活性方面发挥了以下多重作用:(i) 增加活性位点;(ii) 提高光吸收能力;(iii) 加速光载流子的分离和传输;(iv) 保护 CdS 免受光腐蚀。这项研究为构建不含惰性金属的光催化剂提供了一种面部协同修饰策略,从而实现太阳能到燃料的高效转化。 图文摘要
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Co-deposition of Amorphous Carbon and CdS with the Host NiO HMs for Superior Photocatalytic H2 Production via Water Splitting

Co-deposition of Amorphous Carbon and CdS with the Host NiO HMs for Superior Photocatalytic H2 Production via Water Splitting

Efficient spatial separation of photocarriers is crucial for photocatalyst to achieve superior solar-driven photocatalytic H2 production via water splitting. In this study, 3D cubic NiO hollow microspheres (HMs) was served as a free-standing supporting matrix for the co-deposition of ultrathin amorphous carbon layer and wurtzite CdS nanoparticles (NPs) to obtain the highly efficient photocatalysis system for H2 production. The crystal structure, chemical composition, and optical and electric properties of the ternary C@CdS/NiO composite were characterized by various techniques. The results demonstrated that integrated C@CdS/NiO heteroarchitectures with flower-like morphology and double interfacial combinations are successfully constructed through a one-pot microwave heating process. Under simulated solar illumination, the photocatalytic H2 evolution reaction (HER) efficiency of as-resulting C@CdS/NiO composite reached a remarkable 17.99 mmol∙g− 1∙h− 1, which was 5.7 and 163.5 times higher than that of binary CdS/NiO hybrid and single CdS, respectively. The photo-electrochemical measurements disclosed that the double interfacial interactions are beneficial for promoting the photoexcited charge carriers separation in space. Specifically, the ultrathin carbon film played multiple roles for achievement of exceptional photocatalytic activity as follows: (i) having increase of the active sites, (ii) promoting light absorption capacity, (iii) accelerating separation and transport of the photocarriers, and (iv) protecting CdS against photocorrosion. This study provides a facial synergistic modification strategy for the construction of noble-metal-free photocatalysts for efficient solar-to-fuel conversion.

Graphical Abstract

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来源期刊
Electronic Materials Letters
Electronic Materials Letters 工程技术-材料科学:综合
CiteScore
4.70
自引率
20.80%
发文量
52
审稿时长
2.3 months
期刊介绍: Electronic Materials Letters is an official journal of the Korean Institute of Metals and Materials. It is a peer-reviewed international journal publishing print and online version. It covers all disciplines of research and technology in electronic materials. Emphasis is placed on science, engineering and applications of advanced materials, including electronic, magnetic, optical, organic, electrochemical, mechanical, and nanoscale materials. The aspects of synthesis and processing include thin films, nanostructures, self assembly, and bulk, all related to thermodynamics, kinetics and/or modeling.
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