Wang Yunhao, Hao Fengkun, Sun Mingzi, Liu Meng-Ting, Zhou Jingwen, Xiong Yuecheng, Ye Chenliang, Wang Xixi, Liu Fu, Wang Juan, Lu Pengyi, Ma Yangbo, Yin Jinwen, Chen Hsiao-Chien, Zhang Qinghua, Gu Lin, Chen Hao Ming, Huang Bolong, Fan Zhanxi
Department of Chemistry, City University of Hong Kong, Hong Kong, 999077, China.
Department of Applied Biology and Chemical Technology, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong, 999077, China.
Adv Mater. 2024 Apr;36(14):e2313548. doi: 10.1002/adma.202313548. Epub 2024 Jan 26.
Electrocatalytic nitrate reduction reaction (NORR) toward ammonia synthesis is recognized as a sustainable strategy to balance the global nitrogen cycle. However, it still remains a great challenge to achieve highly efficient ammonia production due to the complex proton-coupled electron transfer process in NORR. Here, the controlled synthesis of RuMo alloy nanoflowers (NFs) with unconventional face-centered cubic (fcc) phase and hexagonal close-packed/fcc heterophase for highly efficient NORR is reported. Significantly, fcc RuMo NFs demonstrate high Faradaic efficiency of 95.2% and a large yield rate of 32.7 mg h mg toward ammonia production at 0 and -0.1 V (vs reversible hydrogen electrode), respectively. In situ characterizations and theoretical calculations have unraveled that fcc RuMo NFs possess the highest d-band center with superior electroactivity, which originates from the strong Ru─Mo interactions and the high intrinsic activity of the unconventional fcc phase. The optimal electronic structures of fcc RuMo NFs supply strong adsorption of key intermediates with suppression of the competitive hydrogen evolution, which further determines the remarkable NORR performance. The successful demonstration of high-performance zinc-nitrate batteries with fcc RuMo NFs suggests their substantial application potential in electrochemical energy supply systems.
电催化硝酸盐还原反应(NORR)合成氨被认为是平衡全球氮循环的可持续策略。然而,由于NORR中复杂的质子耦合电子转移过程,实现高效氨生产仍然是一个巨大的挑战。在此,报道了通过可控合成具有非常规面心立方(fcc)相和六方密堆积/fcc异相的RuMo合金纳米花(NFs)以实现高效NORR。值得注意的是,fcc RuMo NFs在0和-0.1 V(相对于可逆氢电极)下分别表现出95.2%的高法拉第效率和32.7 mg h mg的高氨产率。原位表征和理论计算表明,fcc RuMo NFs具有最高的d带中心,具有优异的电活性,这源于强烈的Ru─Mo相互作用和非常规fcc相的高本征活性。fcc RuMo NFs的最佳电子结构提供了对关键中间体的强吸附,同时抑制了竞争性析氢,这进一步决定了其卓越的NORR性能。使用fcc RuMo NFs的高性能硝酸锌电池的成功展示表明了它们在电化学能量供应系统中的巨大应用潜力。