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用于太阳能制氢的光诱导自发形成还原氧化石墨烯包裹的铜-氧化铜纳米复合材料

Photoinduced Spontaneous Formation of a Reduced Graphene Oxide-Enwrapped Cu-CuO Nanocomposite for Solar Hydrogen Evolution.

作者信息

Li Na, Yan Wenjun, Niu Yu, Qu Shijie, Zuo Pingping, Bai Hongcun, Zhao Ning

机构信息

State Key Laboratory of Coal Conversion, Institute of Coal Chemistry, Chinese Academy of Sciences, Taiyuan 030001, China.

Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

ACS Appl Mater Interfaces. 2021 Mar 3;13(8):9838-9845. doi: 10.1021/acsami.0c20636. Epub 2021 Feb 17.

Abstract

The fast recombination of photogenerated charge carriers and poor stability have impeded the application of many narrow band gap semiconductors with otherwise excellent photocatalytic performance. A metal-semiconductor Schottky junction is a promising strategy to accelerate charge separation and enhance catalytic efficiency. However, the preparation of these structures often involves intricate processes and harsh conditions, which will inevitably destroy the electronic structures of the semiconductors and ruin their original properties in practical applications. In this study, a reduced graphene oxide (RGO)-enwrapped Cu-CuO nanocomposite (Cu-CuO@RGO) spontaneously evolved from an aqueous alcoholic solution containing cupric ions and graphene oxide (GO) under simulated sunlight irradiation. During this process, GO reduction and Cu-CuO nanoparticles growth occurred simultaneously in conjunction with RGO encapsulation. Benefiting from the superior intrinsic semiconductor characteristic retention under mild reaction conditions, strong component interactions, and efficient interfacial charge transfer, the distinctive Cu-CuO@RGO nanocomposite supplied multiple channels for rapid electron transfer to substantially enhance the charge carrier separation efficiency and provide perfect chemical protection to effectively prevent CuO photocorrosion. This product also greatly suppressed self-aggregation to decrease the size of nanoparticles. Based on these merits, the Cu-CuO@RGO nanocomposite offered promising advances in photoelectrochemical and photocatalytic H evolution. This work provides an innovative photoinduced strategy for constructing an RGO-enwrapped semiconductor nanocomposite with efficient charge transfer interfaces while providing novel insights for the efficient solar energy utilization.

摘要

光生载流子的快速复合以及稳定性差阻碍了许多具有优异光催化性能的窄带隙半导体的应用。金属-半导体肖特基结是加速电荷分离和提高催化效率的一种有前景的策略。然而,这些结构的制备通常涉及复杂的过程和苛刻的条件,这将不可避免地破坏半导体的电子结构并在实际应用中损害其原始性能。在本研究中,还原氧化石墨烯(RGO)包裹的Cu-CuO纳米复合材料(Cu-CuO@RGO)在模拟太阳光照射下从含有铜离子和氧化石墨烯(GO)的醇水溶液中自发形成。在此过程中,GO的还原和Cu-CuO纳米颗粒的生长与RGO的包裹同时发生。得益于在温和反应条件下优异的本征半导体特性保留、强烈的组分相互作用以及高效的界面电荷转移,独特的Cu-CuO@RGO纳米复合材料提供了多个快速电子转移通道,从而大幅提高电荷载流子分离效率,并提供完善的化学保护以有效防止CuO光腐蚀。该产物还极大地抑制了自聚集以减小纳米颗粒尺寸。基于这些优点,Cu-CuO@RGO纳米复合材料在光电化学和光催化析氢方面取得了有前景的进展。这项工作为构建具有高效电荷转移界面的RGO包裹半导体纳米复合材料提供了一种创新的光诱导策略,同时为高效太阳能利用提供了新的见解。

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