School of Chemistry and Chemical Engineering, Chongqing Key Laboratory of Theoretical and Computational Chemistry, Chongqing University, Chongqing, 401331, P. R. China.
Small Methods. 2023 Jul;7(7):e2300276. doi: 10.1002/smtd.202300276. Epub 2023 May 1.
Bimetallic Palladium-based catalysts as an alternative of Pt-free electrocatalysts play a vital role in electrocatalysis. The doping of transition metal (M) into the ultrathin Pd nanosheets is new promising strategy to regulate the reactivity and durability of surface Pd sites. In this work, an in-depth investigation of the origin oxygen reduction reaction (ORR) activity and stability over 2D ultrathin PdM bimetallenes is presented. The M doping can greatly modify the reactivity of the Pd site by changing the local Fermi softness (S ). All PdM bimetallenes follow the dissociative 4e pathway, and a thorough screening identified several promising alternatives (PdTa, PdHf, PdZr, and PdNb) with much lower ORR overpotential than the pure Pd(111) metallene. The Pd-O bond length and the Fermi softness of surface Pd atoms are effective descriptors of the adsorption of O* key intermediates. The hetero-metal induced ligand effect plays the key role for the activity improvement, which modifies the electronic properties and surface reactivity of Pd by the Pd-M orbital hybridization and result in the decline of bonding filling between Pd 3d and O* 2p orbital. The computational insight provides useful guideline for future experimental realizations of bimetallic Pd-based nanoalloys in ORR and other electrocatalytic reactions.
双金属钯基催化剂作为无铂电催化剂的替代品,在电催化中起着至关重要的作用。将过渡金属 (M) 掺杂到超薄 Pd 纳米片中是调节表面 Pd 位点反应性和耐久性的一种新的有前途的策略。在这项工作中,深入研究了二维超薄 PdM 双金属烯的氧还原反应 (ORR) 活性和稳定性的起源。M 掺杂可以通过改变局部费米软化度 (S) 来极大地改变 Pd 位点的反应性。所有 PdM 双金属烯都遵循解离的 4e 途径,彻底筛选确定了几种有前途的替代物 (PdTa、PdHf、PdZr 和 PdNb),其 ORR 过电位远低于纯 Pd(111)双金属烯。表面 Pd 原子的 Pd-O 键长和费米软化度是 O关键中间体吸附的有效描述符。杂金属诱导的配体效应对于提高活性起着关键作用,它通过 Pd-M 轨道杂化来改变 Pd 的电子性质和表面反应性,导致 Pd 3d 和 O2p 轨道之间的键合填充下降。计算结果为未来在 ORR 和其他电催化反应中实现双金属 Pd 基纳米合金的实验提供了有用的指导。