Carrie Yang   Associate professor

杨晓红,东北大学冶金学院副教授,博士生导师。2014年毕业于澳大利亚新南威尔士大学材料科学与工程学院获工学博士学位,2015年5月回国任职于东北大学冶金学院,在冶金工程博士后流动站从事博士后研究工作,2017年起任东北大学冶金学院讲师、副教授。主要研究方向为光电催化能量转换技术,高级氧化技术与工艺,固废资源的提纯与回收等。作为项目负责人先后主持中国博士后基金,东北大学博士后基金,青年教师科研创新基金,中国自...Detials

MoS2/CdS rod-like nanocomposites as high-performance visible light photocatalyst for water splitting photocatalytic hydrogen production

Release time:2024-03-18  Hits:

  • Journal:International Journal of Hydrogen Energy
  • Abstract:This study demonstrates a high-performance visible-light-driven photocatalyst for water splitting H2 production. CdS nanorods (30 nm in diameters) with shorter radial transfer paths and fewer defects were prepared by a solvothermal method. To mitigate the recombination of electrons and holes, MoS2 nanosheets with rich active sites were modified on the surface of CdS nanorods by a room-temperature sonication treatment. The photocatalytic water splitting tests show that the MoS2/CdS nanocomposites exhibit excellent H2 evolution rates. The highest H2 evolution rates (63.71 and 71.24 mmol g−1h−1 in visible light and simulated solar light irradiation) was found at the 6% MoS2/CdS nanocomposites, which was 14.61 times and 13.39 times higher than those of the corresponding pristine CdS nanorods in visible light and simulate solar light irradiation, respectively. The apparent quantum efficiency (AQE) of the 6% MoS2/CdS nanocomposites at 420 nm was calculated to be 33.62%. The electrochemistry tests reveal that the enhanced photocatalytic activity is a result of extra photogenerated charge carries, greatly enhanced charge separation and transfer ability of the MoS2/CdS composites. This study may give new insights for the rational design and facile synthesis of high-performance and cost-effective bimetallic sulfide photocatalysts for solar-hydrogen energy conversion.
  • Key Words:Photocatalysts;MoS2/CdS nanorods;Hydrogen production;Water splitting
  • Document Code:https://doi.org/10.1016/j.ijhydene.2021.12.171
  • Translation or Not:no