Yang Jun, Cao Yifan, Zhang Shuyu, Shi Qingwen, Chen Siyu, Zhu Shengcai, Li Yunsong, Huang Jianfeng
School of Materials Science & Engineering, Shaanxi Key Laboratory of Green Preparation and Functionalization for Inorganic Materials, Shaanxi University of Science & Technology, Xi'an, Shaanxi, 710021, P. R. China.
School of Materials, Shenzhen Campus of Sun Yat-sen University, Shenzhen, 518107, P. R. China.
Small. 2023 Jul;19(29):e2207295. doi: 10.1002/smll.202207295. Epub 2023 Apr 8.
Tungsten oxide (WO ) is an appealing electrocatalyst for the hydrogen evolution reaction (HER) owing to its cost-effectiveness and structural adjustability. However, the WO electrocatalyst displays undesirable intrinsic activity for the HER, which originates from the strong hydrogen adsorption energy. Herein, for effective defect engineering, a hydrogen atom inserted into the interstitial lattice site of tungsten oxide (H WO ) is proposed to enhance the catalytic activity by adjusting the surface electronic structure and weakening the hydrogen adsorption energy. Experimentally, the H WO electrocatalyst is successfully prepared on reduced graphene oxide. It exhibits significantly improved electrocatalytic activity for HER, with a low overpotential of 33 mV to drive a current density of 10 mA cm and ultra-long catalytic stability at high-throughput hydrogen output (200 000 s, 90 mA cm ) in acidic media. Theoretically, density functional theory calculations indicate that strong interactions between interstitial hydrogen and lattice oxygen lower the electron density distributions of the d-orbitals of the active tungsten (W) centers to weaken the adsorption of hydrogen intermediates on W-sites, thereby sufficiently promoting fast desorption from the catalyst surface. This work enriches defect engineering to modulate the electron structure and provides a new pathway for the rational design of efficient catalysts for HER.
氧化钨(WO )因其成本效益和结构可调性,是一种用于析氢反应(HER)的有吸引力的电催化剂。然而,WO 电催化剂对HER表现出不理想的本征活性,这源于较强的氢吸附能。在此,为了进行有效的缺陷工程,提出将一个氢原子插入氧化钨的间隙晶格位置(H WO ),通过调整表面电子结构和减弱氢吸附能来提高催化活性。实验上,H WO 电催化剂成功制备在还原氧化石墨烯上。它对HER表现出显著提高的电催化活性,在酸性介质中驱动10 mA cm 的电流密度时过电位低至33 mV,并且在高通量氢气输出(200 000 s,90 mA cm )下具有超长的催化稳定性。理论上,密度泛函理论计算表明间隙氢与晶格氧之间的强相互作用降低了活性钨(W)中心d轨道的电子密度分布,从而减弱了氢中间体在W位点上的吸附,进而充分促进了从催化剂表面的快速脱附。这项工作丰富了用于调节电子结构的缺陷工程,并为合理设计高效的HER催化剂提供了一条新途径。