Yu Guiyun, Zhang Yulong, Du Xinyi, Wu Jiaxin, Liu Chao, Zou Zhigang
School of Chemistry & Chemical Engineering, Yancheng Institute of Technology, Yancheng 224051, PR China.
School of Materials Science and Engineering, Yancheng Institute of Technology, Yancheng 224051, PR China.
J Colloid Interface Sci. 2022 Oct;623:205-215. doi: 10.1016/j.jcis.2022.05.040. Epub 2022 May 10.
Coupling with bimetallic nanoparticles (NPs) has been considered as a promising strategy to enhance photocatalytic hydrogen evolution (PHE) efficiency of semiconductor photocatalysts and simultaneously minimize the use of expensive noble metals. Herein, we firstly synthesized spherical-like ZnInS (ZIS) by a solvothermal method, and then combined with nickel/palladium (denoted as NiPd) bimetallic NPs to form NiPd bimetal/ZIS Schottky heterojunction. The chemical states of NiPd NPs were confirmed in the form of NiPd bimetal rather than Ni-Pd alloy. The detailed characterization results demonstrated that the deposition of NiPd bimetal played a major role in increasing light harvesting capacity, accelerating charge carrier (electrons and holes) separation and facilitating photogenerated electrons transfer, leading to the boosted PHE performance in NiPd-ZIS photocatalysts. By adjusting Ni:Pd molar ratio in NixPdy-ZIS photocatalysts, the desired sample of Ni3Pd7-ZIS exhibited the highest PHE efficiency (106.6 µmol/h) and apparent quantum yield (AQY) value of 40.22% at 400 nm under visible light as compared to ZIS, Ni-ZIS and Pd-ZIS. The multiple techniques were performed to deeply investigate the photogenerated charge carrier separation, transfer and recombination. The possible mechanism over Ni3Pd7-ZIS sample for boosting PHE performance was presented based on characterization results. On the whole, this work would provide some insights into the development of cost-effective and high-efficiency bimetallic cocatalyst-based photocatalysts.
与双金属纳米颗粒(NPs)耦合被认为是一种很有前景的策略,可提高半导体光催化剂的光催化析氢(PHE)效率,同时尽量减少昂贵贵金属的使用。在此,我们首先通过溶剂热法合成了类球形的ZnInS(ZIS),然后与镍/钯(记为NiPd)双金属NPs结合,形成NiPd双金属/ZIS肖特基异质结。证实了NiPd NPs是以NiPd双金属形式而非Ni-Pd合金形式存在。详细的表征结果表明,NiPd双金属的沉积在提高光捕获能力、加速电荷载流子(电子和空穴)分离以及促进光生电子转移方面起主要作用,从而提高了NiPd-ZIS光催化剂的PHE性能。通过调整NixPdy-ZIS光催化剂中的Ni:Pd摩尔比,与ZIS、Ni-ZIS和Pd-ZIS相比,所需的Ni3Pd7-ZIS样品在可见光下400 nm处表现出最高的PHE效率(106.6 µmol/h)和40.22%的表观量子产率(AQY)值。采用多种技术深入研究光生电荷载流子的分离、转移和复合。基于表征结果,提出了Ni3Pd7-ZIS样品提高PHE性能的可能机理。总体而言,这项工作将为开发具有成本效益和高效的双金属助催化剂基光催化剂提供一些见解。