Zhao Shuang, Liang Qian, Gao Wen, Zhou Man, Yao Chao, Xu Song, Li Zhongyu
Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, Changzhou University, Changzhou 213164, P. R. China.
Inorg Chem. 2021 Jul 5;60(13):9762-9772. doi: 10.1021/acs.inorgchem.1c01064. Epub 2021 Jun 22.
A rational design of a novel ternary-shelled nanotube is attractive in photocatalytic water splitting. Herein, ZnInS nanosheets were grown on the surface of MIL-88A-derived Ni-Fe layered double hydroxide (LDH) to fabricate ternary-shelled nanotubes (ZIS@Ni-Fe LDH) a self-assembly strategy. Characterization indicates that the ZIS@Ni-Fe LDH heterostructure exhibits a high surface area and a well-defined ternary-shelled hollow structure. The optimal heterostructure presents a remarkably improved photocatalytic hydrogen production rate (2035.81 μmol g h) compared with bare ZnInS and MIL-88A-derived Ni-Fe LDH under visible light illumination. The effect of ZnInS loading on the photocatalytic performance and stability of ZIS@Ni-Fe LDH is systematically studied. The ZIS@Ni-Fe LDH heterostructure can make better use of the inner space, provide abundant reactive sites, improve light harvesting, accelerate interfacial electron transfer, and further promote photocatalytic hydrogen evolution. Based on the electrocatalytic performance, the probable photocatalytic mechanism and the electron transfer pathway can be proposed. Our work provides a facile and efficient strategy to construct ternary-shelled heterojunction photocatalysts.
新型三元壳层纳米管的合理设计在光催化水分解方面具有吸引力。在此,通过自组装策略在源自MIL - 88A的镍铁层状双氢氧化物(LDH)表面生长硫化锌铟纳米片,以制备三元壳层纳米管(ZIS@Ni - Fe LDH)。表征表明,ZIS@Ni - Fe LDH异质结构具有高表面积和明确的三元壳层中空结构。与在可见光照射下的裸硫化锌铟和源自MIL - 88A的镍铁LDH相比,最佳异质结构的光催化产氢速率显著提高(2035.81 μmol g⁻¹ h⁻¹)。系统研究了硫化锌铟负载量对ZIS@Ni - Fe LDH光催化性能和稳定性的影响。ZIS@Ni - Fe LDH异质结构可以更好地利用内部空间,提供丰富的反应位点,改善光捕获,加速界面电子转移,并进一步促进光催化析氢。基于电催化性能,可以提出可能的光催化机理和电子转移途径。我们的工作为构建三元壳层异质结光催化剂提供了一种简便有效的策略。