Gu Mingzheng, Jiang Ling, Zhao Shengrong, Wang Hao, Lin Man, Deng Xueya, Huang Xiaomin, Gao An, Liu Xudong, Sun Ping, Zhang Xiaojun
Key Laboratory of Functional Molecular Solids, Ministry of Education, Anhui Key Laboratory of Molecule-Based Materials, Anhui Provincial Engineering Laboratory of New-Energy Vehicle Battery Energy-Storage Materials, Anhui Engineering Research Center of Carbon Neutrality, College of Chemistry and Materials Science, Anhui Normal University, Wuhu 241002, P. R. China.
ACS Nano. 2022 Sep 27;16(9):15425-15439. doi: 10.1021/acsnano.2c07255. Epub 2022 Aug 29.
Space charge transfer is crucial for an efficient electrocatalytic process, especially for narrow-band-gap metal sulfides/selenides. Herein, we designed and synthesized a core-shell structure which is an ultrathin MoSe nanosheet coated CuS hollow nanoboxes (CuS@MoSe) to form an open p-n junction structure. The space charge effect in the p-n junction region will greatly improve electron mass transfer and conduction, and also have abundant active interfaces. It was used as a bifunctional electrocatalyst for water oxidation at a wide pH range. It exhibits a low overpotential of 49 mV for the HER and 236 mV for the OER at a current density of 10 mA·cm in acidic pH, 72 mV for the HER and 219 mV at 10 mA·cm for the OER in alkaline pH, and 62 mV for the HER and 230 mV at 10 mA·cm for the OER under neutral conditions. The experimental results and density functional theory calculations testify that the p-n junction in CuS@MoSe designed and synthesized has a strong space charge region with a synergistic effect. The built-in field can boost the electron transport during the electrocatalytic process and can stabilize the charged active center of the p-n junction. This will be beneficial to improve the electrocatalytic performance. This work provides the understanding of semiconductor heterojunction applications and regulating the electronic structure of active sites.
空间电荷转移对于高效的电催化过程至关重要,特别是对于窄带隙金属硫化物/硒化物而言。在此,我们设计并合成了一种核壳结构,即超薄的MoSe纳米片包覆的CuS空心纳米盒(CuS@MoSe),以形成开放的p-n结结构。p-n结区域中的空间电荷效应将极大地改善电子的传质和传导,并且还具有丰富的活性界面。它被用作宽pH范围内水氧化的双功能电催化剂。在酸性pH条件下,电流密度为10 mA·cm时,其析氢反应(HER)的过电位低至49 mV,析氧反应(OER)的过电位为236 mV;在碱性pH条件下,电流密度为10 mA·cm时,HER的过电位为72 mV,OER的过电位为219 mV;在中性条件下,电流密度为10 mA·cm时,HER的过电位为62 mV,OER的过电位为230 mV。实验结果和密度泛函理论计算证明,所设计和合成的CuS@MoSe中的p-n结具有强空间电荷区并具有协同效应。内建电场可以促进电催化过程中的电子传输,并可以稳定p-n结的带电活性中心。这将有利于提高电催化性能。这项工作有助于理解半导体异质结的应用以及调节活性位点的电子结构。