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原位合成CdS/石墨炔异质结以增强光催化产氢活性

In Situ Synthesis of CdS/Graphdiyne Heterojunction for Enhanced Photocatalytic Activity of Hydrogen Production.

作者信息

Lv Jia-Xin, Zhang Zhi-Ming, Wang Juan, Lu Xiu-Li, Zhang Wen, Lu Tong-Bu

机构信息

Institute for New Energy Materials and Low Carbon Technologies, School of Materials Science and Engineering , Tianjin University of Technology , Tianjin 300384 , China.

出版信息

ACS Appl Mater Interfaces. 2019 Jan 23;11(3):2655-2661. doi: 10.1021/acsami.8b03326. Epub 2018 Apr 26.

Abstract

Hydrogen production through artificial photosynthesis has been regarded as a promising strategy for dealing with energy shortage and environmental problems. In this work, graphdiyne (GD) was first introduced to the visible-light catalytic system for hydrogen production, in which a CdS/GD heterojunction was prepared through a simple in situ growth process by adding Cd(AcO) into a dimethyl sulfoxide (DMSO) solution containing GD substrate. The as-prepared CdS/GD heterojunction exhibits much higher performance for photocatalytic hydrogen evolution compared to that of pristine GD and CdS nanoparticles. The photocatalytic performance of CdS/GD heterostructure containing 2.5 wt % of GD (GD2.5) is 2.6 times higher than that of the pristine CdS nanoparticles. The enhanced catalytic performance can be ascribed to the formation of CdS/GD heterojunction, in which the presence of GD can not only stabilize CdS nanoparticles by preventing the agglomeration of CdS nanoparticles but also act as a photogenerated hole transfer material for efficiently separating photogenerated electron-hole pairs in CdS. Accordingly, this work provides the potential of GD-derived materials for solar energy conversion and storage.

摘要

通过人工光合作用制氢被认为是应对能源短缺和环境问题的一种有前景的策略。在这项工作中,首次将石墨炔(GD)引入到可见光催化制氢体系中,通过将醋酸镉(Cd(AcO))加入到含有GD基底的二甲基亚砜(DMSO)溶液中,通过简单的原位生长过程制备了CdS/GD异质结。与原始的GD和CdS纳米颗粒相比,所制备的CdS/GD异质结对光催化析氢表现出更高的性能。含有2.5 wt% GD(GD2.5)的CdS/GD异质结构的光催化性能比原始CdS纳米颗粒高2.6倍。催化性能的增强可归因于CdS/GD异质结的形成,其中GD的存在不仅可以通过防止CdS纳米颗粒的团聚来稳定CdS纳米颗粒,还可以作为光生空穴转移材料,有效地分离CdS中的光生电子-空穴对。因此,这项工作为GD衍生材料在太阳能转换和存储方面提供了潜力。

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