Liu Jian-Jia, Jiang Zhi-Wu, Hsu Su-Wen
Department of Chemical Engineering, Nation Cheng Kung University, No. 1 University Road, East Dist., Tainan City 70101, Taiwan (R.O.C.).
ACS Appl Mater Interfaces. 2023 Feb 8;15(5):6716-6725. doi: 10.1021/acsami.2c18510. Epub 2023 Jan 27.
Here, we fabricated two different heterogeneous nanocomposites, core-shell MOF-AgNC and corner MOF-AgNC, as photocatalysts for CO conversion by generating metal-organic frameworks (MOFs) on silver nanocube templates. These MOF-AgNC nanocomposites showed good CO adsorption features and high CO reduction reactivity. The performances of these MOF-AgNC nanocomposites in CO adsorption and CO reduction reactions can be characterized by in situ Raman spectrum measurement. The corner MOF-AgNC nanocomposite exhibited a faster CO adsorption rate than the core-shell MOF-AgNC nanocomposite, which was due to the higher surface area/volume ratio of the MOF in corner MOF-AgNC. The CO reaction reactivity and mechanisms (products of the reaction) of CO reduction also depended on the morphologies of MOF-AgNC nanocomposites, which were caused by different reaction environments at the interface between the MOF and AgNCs. The CO reduction reactivity of MOF-AgNC nanocomposites also exhibited high sensitivity to the irradiation intensity and wavelength, which was caused by the variation of the number of hot electrons and their positions in AgNCs with the irradiation intensity and irradiation wavelength, respectively. This method for the synthesis of heterogeneous nanocomposites should make it possible to design photocatalysts for various reactions by carefully designing the morphology and composition of nanocomposites.
在此,我们制备了两种不同的异质纳米复合材料,即核壳型MOF-AgNC和角型MOF-AgNC,通过在银纳米立方体模板上生成金属有机框架(MOF)作为光催化剂用于CO转化。这些MOF-AgNC纳米复合材料表现出良好的CO吸附特性和高的CO还原反应活性。这些MOF-AgNC纳米复合材料在CO吸附和CO还原反应中的性能可以通过原位拉曼光谱测量来表征。角型MOF-AgNC纳米复合材料表现出比核壳型MOF-AgNC纳米复合材料更快的CO吸附速率,这是由于角型MOF-AgNC中MOF的表面积/体积比更高。CO还原反应的反应活性和机理(反应产物)也取决于MOF-AgNC纳米复合材料的形态,这是由MOF与AgNCs界面处不同的反应环境引起的。MOF-AgNC纳米复合材料的CO还原反应活性对辐照强度和波长也表现出高灵敏度,这分别是由AgNCs中热电子数量及其位置随辐照强度和辐照波长的变化引起的。这种合成异质纳米复合材料的方法应该能够通过精心设计纳米复合材料的形态和组成来设计用于各种反应的光催化剂。