青岛科技大学纳米电催化课题组
当前位置: 首页>>研究成果>>期刊论文>>正文

 

79. Constructing SrTiO3-T/CdZnS heterostructure with tunable oxygen vacancies for solar-light-driven photocatalytic hydrogen evolution, Journal of Power Sources, 2019, 438, 227014
2019-08-01 18:07  

Constructing SrTiO3-T/CdZnS heterostructure with tunable oxygen vacancies for

solar-light-driven photocatalytic hydrogen evolution

Tianpeng Yu, Zunhang Lv, Kaihang Wang, Kaili Sun, Xin Liu, Guixue Wang, Luhua Jiang, Guangwen Xie*

Abstract

Heterostructure plays significant roles in many photocatalytic reactions, as it can provide more efficient route for the charge carrier separation and transferring. Herein, we report a rational design of a new kind of photocatalyst, in which SrTiO3-T/Cd0.5Zn0.5S heterostructure is prepared via a simple hydrothermal method. SrTiO3 with oxygen vacancy is prepared by a controllable solid-state reaction of NaBH4 and SrTiO3 nanocrystals. The oxygen vacancies on the surface of SrTiO3 can be used as electron traps to attract electrons from Cd0.5Zn0.5S and provide proton reduction sites for H2 production during the photocatalysis processing, thereby effectively inhibit the recombination of electron-hole pairs. It has demonstrated that SrTiO3-T/Cd0.5Zn0.5S nanocomposites can achieve the highest photocatalytic hydrogen evolution rate of 25.01 mmol g-1 h-1 under visible light, which is about 2 times than that of the original Cd0.5Zn0.5S.

 

 * Corresponding author. E-mail address: xiegw@qust.edu.cn (G. Xie).

doi: 10.1016/j.jpowsour.2019.227014


关闭窗口

姜鲁华 教授
中科院百人

泰山学者特聘教授

德国洪堡学者

     能源短缺和环境污染是当今世界面临的两大难题,研究团队围绕洁净高效新型电能源技术,聚焦电能源相关的纳米材料和电催化应用基础研究。团队已发表SCI收录论文近200篇,申请发明专利80余件。纳米材料与电催化团队负责人姜鲁华教授连续多年入选Elsevier 能源领域/材料领域“中国高被引学者”和“全球前2%顶尖科学家”榜单。主持科技部、国家基金委、山东省科技厅等省部级以上项目20余项。研究成果曾获国家自然科学二等奖、辽宁省自然科学一等奖、国防技术发明二等奖、大连市技术发明一等奖、山东省自然科学学术创新奖等多个奖项。团队教师兼任 Chemical Engineering JournalNano Materials ScineceJournal of Electrochemistry 等多个期刊的编委/编辑。团队多名研究生获得国家奖学金和各类奖助学金以及研究生创新研究计划支持,培养的本科生多人获得大学生创新研究计划支持。

    欢迎有志于新能源和环境纳米电催化研究的青年人才和优秀学子加入团队!


1. 燃料电池催化剂

2. 海水分解制氢

3. 二氧化碳电还原

4. 金属-海水电池

5. 氮的电化学转化