Liu Shuang, Li Yong, Yu Xiaojuan, Han Shaobo, Zhou Yan, Yang Yuqi, Zhang Hao, Jiang Zheng, Zhu Chuwei, Li Wei-Xue, Wöll Christof, Wang Yuemin, Shen Wenjie
State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, China.
Institute of Functional Interfaces, Karlsruhe Institute of Technology, Eggenstein-Leopoldshafen, Germany.
Nat Commun. 2022 Aug 5;13(1):4559. doi: 10.1038/s41467-022-32274-4.
Bimetallic nanoparticles afford geometric variation and electron redistribution via strong metal-metal interactions that substantially promote the activity and selectivity in catalysis. Quantitatively describing the atomic configuration of the catalytically active sites, however, is experimentally challenged by the averaging ensemble effect that is caused by the interplay between particle size and crystal-phase at elevated temperatures and under reactive gases. Here, we report that the intrinsic activity of the body-centered cubic PdCu nanoparticle, for acetylene hydrogenation, is one order of magnitude greater than that of the face-centered cubic one. This finding is based on precisely identifying the atomic structures of the active sites over the same-sized but crystal-phase-varied single-particles. The densely-populated Pd-Cu bond on the chemically ordered nanoparticle possesses isolated Pd site with a lower coordination number and a high-lying valence d-band center, and thus greatly expedites the dissociation of H over Pd atom and efficiently accommodates the activated H atoms on the particle top/subsurfaces.
双金属纳米粒子通过强大的金属-金属相互作用实现几何结构变化和电子重新分布,这极大地促进了催化反应中的活性和选择性。然而,在高温和反应性气体条件下,由于粒径与晶相之间的相互作用导致的平均系综效应,从实验上定量描述催化活性位点的原子构型具有挑战性。在此,我们报道体心立方结构的PdCu纳米粒子对乙炔加氢的本征活性比面心立方结构的PdCu纳米粒子高一个数量级。这一发现基于精确识别相同尺寸但晶相不同的单粒子上活性位点的原子结构。化学有序纳米粒子上密集的Pd-Cu键拥有配位数较低且价d带中心较高的孤立Pd位点,因此极大地加速了H在Pd原子上的解离,并有效地容纳了粒子顶部/亚表面上的活化H原子。