Du Xinjuan, Hu Jindou, Liu Anjie, Cao Yali
Key Laboratory of Energy Materials Chemistry, Ministry of Education, Key Laboratory of Advanced Functional Materials, Autonomous Region, College of Chemistry, Xinjiang University, Urumqi, Xinjiang 830046, China.
Key Laboratory of Energy Materials Chemistry, Ministry of Education, Key Laboratory of Advanced Functional Materials, Autonomous Region, College of Chemistry, Xinjiang University, Urumqi, Xinjiang 830046, China.
J Colloid Interface Sci. 2021 Apr 15;588:670-679. doi: 10.1016/j.jcis.2020.11.061. Epub 2020 Nov 19.
Interfacial modification and band modulation to narrow the band gap and improve light-harvesting ability of TiO are promising strategies to dramatically promote photocatalytic activity. Herein, efficient Co(OH)-TiO nanocomposites were reasonably designed and constructed by a facile room temperature solid-state synthetic strategy for interfacial modification and matched band gap to achieve the conversion of solar energy to hydrogen. Modifying transition metal hydroxide Co(OH) on commercial TiO can effectively narrow the band gap and accelerate the separation and migration of photo-induced carriers, which will extend light absorption range and facilitate more electrons transferring to the surface of photocatalyst, therefore the reducibility of photocatalysts is enhanced. The modified photocatalyst exhibits high photocatalytic hydrogen evolution activity and stability. Specifically, the obtained TCO-0.6 shows excellent photocatalytic hydrogen evolution rate of 21343.01 μmol g and is 23 times superior to commercial TiO. This work not only emphasizes a facile strategy for interfacial modification and band modulation under mild condition, but also provides a novel avenue for improving the performance of photocatalytic hydrogen evolution.
界面修饰和能带调制以缩小带隙并提高TiO的光捕获能力是显著提高光催化活性的有前景的策略。在此,通过简便的室温固态合成策略合理设计并构建了高效的Co(OH)-TiO纳米复合材料,用于界面修饰和匹配带隙以实现太阳能到氢能的转化。在商用TiO上修饰过渡金属氢氧化物Co(OH)可以有效缩小带隙并加速光生载流子的分离和迁移,这将扩展光吸收范围并促进更多电子转移到光催化剂表面,从而增强光催化剂的还原性。修饰后的光催化剂表现出高光催化析氢活性和稳定性。具体而言,所制备的TCO-0.6展现出21343.01 μmol g的优异光催化析氢速率,比商用TiO高出23倍。这项工作不仅强调了在温和条件下进行界面修饰和能带调制的简便策略,也为提高光催化析氢性能提供了一条新途径。