An Shanna, Zhang Luming, Ding Xiaoyan, Xue Yanjun, Tian Jian, Qin Yingying, You Junhua, Wang Xiaoxue, Zhang Hangzhou
School of Materials Science and Engineering, Shandong University of Science and Technology, Qingdao 266590, China.
School of Materials Science and Engineering, Shandong University of Science and Technology, Qingdao 266590, China.
J Colloid Interface Sci. 2024 Jun 15;664:848-856. doi: 10.1016/j.jcis.2024.03.087. Epub 2024 Mar 12.
In this work, we report a series of noble metal (Ag, Au, Pt, etc.) sulfides that act as co-catalysts anchoring on CdS nanorods (NRs) obtained via a cation exchange strategy to promote photocatalytic hydrogen evolution. CdS NRs are first generated via a hydrothermal routine, noble metal sulfides are then in-situ grown on CdS NRs by a cation exchange method. CdS/AgS, CdS/AuS and CdS/PtS NRs show improved hydrogen production rates (2506.88, 1513.17 and 1004.54 μmol gh, respectively), approximately 18, 11 and 7 times higher than CdS NRs (138.27 μmol gh). Among CdS/noble metal sulfide NRs, CdS/AgS NRs present the best H production performance. The apparent quantum efficiency (AQE) of CdS/AgS NRs achieves 3.11 % at λ = 370 nm. The improved photocatalytic performance of CdS/noble metal sulfide NRs dues to the following points: i) Noble metal sulfides on CdS NRs are beneficial for elevating light-absorbing and light-utilizing capacities, contributing to generating more photoexcited charges; ii) Noble metal sulfides are in-situ grown on CdS NRs as electron acceptors by a cation exchange method, thus the photoexcited electrons generated by CdS NRs rapidly migrate to the surface of noble metal sulfides, successfully accelerating the carriers separation efficiency. This series of noble metal sulfides acting as co-catalysts anchoring on CdS NRs offer new insights into the construction principles of high-performance photocatalytic hydrogen evolution catalysts.
在本工作中,我们报道了一系列贵金属(银、金、铂等)硫化物,它们作为助催化剂,通过阳离子交换策略锚定在硫化镉纳米棒(NRs)上,以促进光催化析氢。首先通过水热法制备硫化镉纳米棒,然后通过阳离子交换法在硫化镉纳米棒上原位生长贵金属硫化物。硫化镉/硫化银、硫化镉/硫化金和硫化镉/硫化铂纳米棒显示出提高的产氢速率(分别为2506.88、1513.17和1004.54 μmol g h),比硫化镉纳米棒(138.27 μmol g h)高出约18、11和7倍。在硫化镉/贵金属硫化物纳米棒中,硫化镉/硫化银纳米棒表现出最佳的产氢性能。硫化镉/硫化银纳米棒在λ = 370 nm时的表观量子效率(AQE)达到3.11%。硫化镉/贵金属硫化物纳米棒光催化性能的提高归因于以下几点:i)硫化镉纳米棒上的贵金属硫化物有利于提高光吸收和光利用能力,有助于产生更多的光生电荷;ii)贵金属硫化物通过阳离子交换法作为电子受体原位生长在硫化镉纳米棒上,因此硫化镉纳米棒产生的光生电子迅速迁移到贵金属硫化物表面,成功提高了载流子分离效率。这一系列作为助催化剂锚定在硫化镉纳米棒上的贵金属硫化物为高性能光催化析氢催化剂的构建原理提供了新的见解。