Beijing Advanced Innovation Center for Materials Genome Engineering, University of Science and Technology Beijing, Beijing 100083, China.
Institute for Advanced Material and Technology, University of Science and Technology Beijing, Beijing 100083, China.
Nanoscale. 2023 Feb 2;15(5):2425-2434. doi: 10.1039/d2nr07017k.
Metal-organic frameworks (MOFs), as a class of semiconductor-like materials, are widely used in photocatalysis. However, the limited visible light absorption and poor charge separation efficiency are the main challenges restricting their photocatalytic performance. Herein, the type II heterojunction MIL-68(In)@ZIS was successfully fabricated by growth of ZnInS (ZIS) on the surface of a representative MOF, MIL-68(In). After composition optimization, MIL-68(In)-20@ZIS shows an extraordinary photocatalytic hydrogen production efficiency of 9.09 mmol g h and good photochemical stability, which far exceeds those of most photocatalysts. The hierarchical loose structure of MIL-68(In)-20@ZIS is conducive to the adsorption of reactants and mass transfer. Meanwhile, a large number of tight 2D contact interfaces significantly reduce the obstruction of charge transfer, paving the way for high-perform photocatalytic hydrogen evolution. The experimental results demonstrate that the MIL-68(In)@ZIS heterojunction achieves intensive photoresponse and effective charge separation and transfer benefiting from unique charge transport paths of a type II heterojunction. This study opens an avenue toward MOF-based heterojunctions for solar energy conversion.
金属-有机骨架(MOFs)作为一类类似半导体的材料,被广泛应用于光催化领域。然而,其可见光吸收有限和电荷分离效率差是限制其光催化性能的主要挑战。在此,通过在代表性 MOF MIL-68(In)的表面生长 ZnInS(ZIS),成功制备了 II 型异质结 MIL-68(In)@ZIS。经过组成优化,MIL-68(In)-20@ZIS 表现出非凡的光催化制氢效率 9.09 mmol g h 和良好的光化学稳定性,远远超过大多数光催化剂。MIL-68(In)-20@ZIS 的分级疏松结构有利于反应物的吸附和质量传递。同时,大量紧密的 2D 接触界面显著减少了电荷转移的阻碍,为高效光催化制氢铺平了道路。实验结果表明,MIL-68(In)@ZIS 异质结通过 II 型异质结的独特电荷输运途径实现了强烈的光响应和有效的电荷分离和转移。本研究为基于 MOF 的异质结在太阳能转化方面开辟了一条新途径。