Yang Meng, Yu Jiafeng, Zimina Anna, Sarma Bidyut Bikash, Pandit Lakshmi, Grunwaldt Jan-Dierk, Zhang Ling, Xu Hengyong, Sun Jian
Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Zhongshan Road 457, 116023, Dalian, China.
University of Chinese Academy of Sciences, 100049, Beijing, China.
Angew Chem Int Ed Engl. 2023 Feb 6;62(7):e202216803. doi: 10.1002/anie.202216803. Epub 2023 Jan 11.
Active Zn species in Cu-based methanol synthesis catalysts have not been clearly identified yet due to their complex nature and dynamic structural changes during reactions. Herein, atomically dispersed Zn on ZrO support is established in Cu-based catalysts by separating Zn and Zr components from Cu (Cu-ZnZr) via the double-nozzle flame spray pyrolysis (DFSP) method. It exhibits superiority in methanol selectivity and yield compared to those with Cu-ZnO interface and isolated ZnO nanoparticles. Operando X-ray absorption spectroscopy (XAS) reveals that the atomically dispersed Zn species are induced during the reaction due to the strengthened Zn-Zr interaction. They can suppress formate decomposition to CO and decrease the H dissociation energy, shifting the reaction to methanol production. This work enlightens the rational design of unique Zn species by regulating coordination environments and offers a new perspective for exploring complex interactions in multi-component catalysts.
由于铜基甲醇合成催化剂中活性锌物种的性质复杂且在反应过程中结构动态变化,其尚未被明确识别。在此,通过双喷嘴火焰喷雾热解(DFSP)方法将锌和锆组分与铜分离(Cu-ZnZr),在铜基催化剂中制备了原子分散在ZrO载体上的锌。与具有Cu-ZnO界面和孤立的ZnO纳米颗粒的催化剂相比,它在甲醇选择性和产率方面表现出优越性。原位X射线吸收光谱(XAS)表明,由于Zn-Zr相互作用增强,原子分散的锌物种在反应过程中被诱导产生。它们可以抑制甲酸盐分解为CO并降低H解离能,使反应转向甲醇生成。这项工作通过调节配位环境为独特锌物种的合理设计提供了启示,并为探索多组分催化剂中的复杂相互作用提供了新的视角。