Reddy Kasala Prabhakar, Kim Daeho, Hong Seunghwa, Kim Ki-Jeong, Ryoo Ryong, Park Jeong Young
Center for Nanomaterials and Chemical Reactions, Institute for Basic Science (IBS), Daejeon 34141, Republic of Korea.
Department of Chemistry, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Republic of Korea.
ACS Appl Mater Interfaces. 2023 Feb 10. doi: 10.1021/acsami.2c20832.
Tuning the selectivity of CO hydrogenation is of significant scientific interest, especially using nickel-based catalysts. Fundamental insights into CO hydrogenation on Ni-based catalysts demonstrate that CO is a primary intermediate, and product selectivity is strongly dependent on the oxidation state of Ni. Therefore, modifying the electronic structure of the nickel surface is a compelling strategy for tuning product selectivity. Herein, we synthesized well dispersed Cu-Ni bimetallic nanoparticles (NPs) using a simple hydrothermal method for CO selective CO hydrogenation. A detailed study on the monometallic (Ni and Cu) and bimetallic (CuNi) catalysts supported on γ-AlO was performed to increase CO selectivity while maintaining the high reaction rate. The CuNi/γ-AlO catalyst shows a high CO conversion and more CO product selectivity than its monometallic counterparts. The surface electronic and geometric structure of CuNi bimetallic NPs was studied using ambient pressure X-ray photoelectron spectroscopy (AP-XPS) and in situ diffuse reflectance infrared Fourier-transform spectroscopy under reaction conditions. The Cu core atoms migrate toward the surface, resulting in the restructuring of the Cu@Ni core-shell structure to a Cu-Ni alloy during the reaction and functioning as the active site by enhancing CO desorption. A systematic correlation is obtained between catalytic activity from a continuous fixed-bed flow reactor and the surface electronic structural details derived from AP-XPS results, establishing the structure-activity relationship. This investigation contributes to providing a strategy for controlling CO hydrogenation selectivity by modifying the surface structure of bimetallic NP catalysts.
调节CO加氢的选择性具有重大的科学意义,尤其是使用镍基催化剂时。对镍基催化剂上CO加氢的基本认识表明,CO是主要中间体,产物选择性强烈依赖于Ni的氧化态。因此,改变镍表面的电子结构是调节产物选择性的一个有吸引力的策略。在此,我们采用简单的水热法合成了分散良好的Cu-Ni双金属纳米颗粒(NPs)用于CO选择性加氢。对负载在γ-AlO上的单金属(Ni和Cu)和双金属(CuNi)催化剂进行了详细研究,以在保持高反应速率的同时提高CO选择性。与单金属催化剂相比,CuNi/γ-AlO催化剂表现出高CO转化率和更高的CO产物选择性。利用常压X射线光电子能谱(AP-XPS)和反应条件下的原位漫反射红外傅里叶变换光谱研究了CuNi双金属NPs的表面电子和几何结构。Cu核心原子向表面迁移,导致反应过程中Cu@Ni核壳结构重组为Cu-Ni合金,并通过增强CO脱附作为活性位点。在连续固定床流动反应器的催化活性与从AP-XPS结果得出的表面电子结构细节之间获得了系统的相关性,建立了结构-活性关系。这项研究有助于提供一种通过改变双金属NP催化剂的表面结构来控制CO加氢选择性的策略。