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暴露{001}面的CuO与MoS基双功能催化剂的二维-二维纳米异质结构展现出用于阴极CO还原的优异表面化学性质和导电性。

2D-2D Nanoheterostructure of an Exposed {001}-Facet CuO and MoS Based Bifunctional Catalyst Showing Excellent Surface Chemistry and Conductivity for Cathodic CO Reduction.

作者信息

Akhond Md Rajbanul, Islam Md Jahidul, Irfan Ahmad, Sharif Ahmed

机构信息

Department of Materials and Metallurgical Engineering, Bangladesh University of Engineering & Technology, Dhaka 1000, Bangladesh.

Department of Chemistry, College of Science, King Khalid University, PO. Box 9004, Abha 61413, Saudi Arabia.

出版信息

ACS Omega. 2023 Sep 25;8(40):37353-37368. doi: 10.1021/acsomega.3c05213. eCollection 2023 Oct 10.

Abstract

A novel CuO-MoS based heterostructure catalyst model system is proposed where a CuO nanosheet with exposed {001} facet with proper termination is the active surface for the catalysis and a MoS nanosheet is the supporting layer. Density functional theory (DFT) calculations were performed to validate the model. The MoS bilayer forms a stable heterostructure with {001} faceted CuO with different terminations exposing oxygen and copper atoms (active sites) on the surface. The heterostructure active sites with a low oxidation state of the copper atoms and subsurface oxygen atoms provide a suitable chemical environment for the selective production of multicarbon products from CO electrocatalytic reduction. Furthermore, our heterostructure model exhibits good electrical conductivity, efficient electron transport to active surface sites, and less interfacial resistance compared to similar heterostructure systems. Additionally, we propose a photoenhanced electrocatalysis mechanism due to the photoactive nature of MoS. We suggest that the photogenerated carrier separation occurs because of the interface-induced dipole. Moreover, we utilized a machine learning model trained on a 2D DFT materials database to predict selected properties and compared them with the DFT results. Overall, our study provides insights into the structure-property relationship of a MoS supported 2D CuO nanosheet based bifunctional catalyst and highlights the advantages of heterostructure formation with selective morphology and properly terminated surface in tuning the catalytic performance of nanocomposite materials.

摘要

提出了一种新型的基于CuO-MoS的异质结构催化剂模型体系,其中具有适当终止的暴露{001}面的CuO纳米片是催化的活性表面,而MoS纳米片是支撑层。进行了密度泛函理论(DFT)计算以验证该模型。MoS双层与具有不同终止的{001}面CuO形成稳定的异质结构,这些终止在表面上暴露氧原子和铜原子(活性位点)。具有低氧化态的铜原子和次表面氧原子的异质结构活性位点为从CO电催化还原选择性生产多碳产物提供了合适的化学环境。此外,与类似的异质结构体系相比,我们的异质结构模型表现出良好的导电性、向活性表面位点的高效电子传输以及较小的界面电阻。此外,由于MoS的光活性性质,我们提出了一种光增强电催化机制。我们认为光生载流子的分离是由于界面诱导的偶极子引起的。此外,我们利用在二维DFT材料数据库上训练的机器学习模型来预测选定的性质,并将它们与DFT结果进行比较。总体而言,我们的研究深入了解了MoS负载的二维CuO纳米片基双功能催化剂的结构-性能关系,并突出了具有选择性形态和适当终止表面的异质结构形成在调节纳米复合材料催化性能方面的优势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3480/10568694/728e5f1e741c/ao3c05213_0001.jpg

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