Zhou Yuanbo, Wang Mengfan, Zhang Lifang, Li Najun, Qian Tao, Yan Chenglin, Lu Jianmei
College of Chemistry Chemical Engineering and Materials Science, Soochow University, Suzhou 215123, P. R. China.
School of Optical and Electronic Information, Suzhou City University, Suzhou 215104, P. R. China.
ACS Nano. 2025 Feb 25;19(7):7273-7282. doi: 10.1021/acsnano.4c17546. Epub 2025 Feb 14.
Electrochemical urea synthesis via the coreduction of CO and NO is a sustainable alternative to the traditional Bosch-Meiser process. However, the sluggish reaction kinetics usually result in a low efficiency. Herein, we designed a kind of quaternary PdCuCoZn medium-entropy alloy (MEA) metallene for highly selective urea electrosynthesis. The random occupation of Cu, Co, and Zn with lower electronegativity in the face-centered cubic lattice of Pd-based metallene enables abundant electron donation from transition metals to adjacent Pd atoms, leading to the formation of charge-polarized Pd-Cu/Co/Zn sites. Considering that the pivotal C- and N-intermediates, namely, *CO and *NH, are electrophilic and nucleophilic, respectively, such strong charge polarization would greatly benefit their respective formation and stabilization. The stable adsorption with *CO bonded to electron-rich Pd-based sites and *NH bonded to electron-deficient Cu/Co/Zn-based sites is demonstrated by the combination of in situ characterizations and theoretical calculations. The proof-of-concept PdCuCoZn MEA metallene achieves a maximum urea yield rate of 1840 μg h mg and a high Faradaic efficiency of 70.2%, surpassing most of the reported state-of-the-arts. Our strategy proposed in this work is believed to enlighten the design of an effective catalyst used for multistep reactions.
通过CO和NO的共还原进行电化学尿素合成是传统博施-迈泽尔工艺的一种可持续替代方法。然而,缓慢的反应动力学通常导致效率低下。在此,我们设计了一种用于高选择性尿素电合成的四元PdCuCoZn中熵合金(MEA)金属烯。在Pd基金属烯的面心立方晶格中,电负性较低的Cu、Co和Zn的随机占据使得过渡金属能够向相邻的Pd原子大量供电子,从而导致形成电荷极化的Pd-Cu/Co/Zn位点。考虑到关键的C和N中间体,即CO和NH,分别是亲电的和亲核的,这种强电荷极化将极大地有利于它们各自的形成和稳定。原位表征和理论计算相结合证明了CO与富电子的Pd基位点结合以及NH与缺电子的Cu/Co/Zn基位点结合的稳定吸附。概念验证的PdCuCoZn MEA金属烯实现了1840 μg h mg的最大尿素产率和70.2%的高法拉第效率,超过了大多数已报道的先进水平。我们在这项工作中提出的策略有望为用于多步反应的有效催化剂的设计提供启示。