State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xian, 710072, China.
School of Chemistry, University of Birmingham, Birmingham, B15 2TT, UK.
Small. 2017 May;13(19). doi: 10.1002/smll.201603876. Epub 2017 Mar 15.
Development of highly active and stable Pt-free oxygen reduction reaction catalysts from earth-abundant elements remains a grand challenge for highly demanded metal-air batteries. Ag-based alloys have many advantages over platinum group catalysts due to their low cost, high stability, and acceptable oxygen reduction reaction (ORR) performance in alkaline solutions. Nevertheless, compared to commercial Pt/C-20%, their catalytic activity still cannot meet the demand of commercialization. In this study, a kind of catalysts screening strategy on Ag Cu nanoalloys is reported, containing the surface modification method, studies of activity enhancement mechanism, and applied research on zinc-air batteries. The results exhibit that the role of selective dealloying (DE) or galvanic displacement (GD) is limited by the "parting limitation", and this "parting limitation" determines the surface topography, position of d-band center, and ORR performance of Ag Cu alloys. The GD-Ag Cu and DE-Ag Cu catalysts alloys present excellent ORR performance that is comparable to Pt/C-20%. The relationship between electronic perturbation and specific activity demonstrates that positive shift of the d-band center (≈0.12 eV, relative to Ag) for GD-Ag Cu is beneficial for ORR, which is contrary to Pt-based alloys (negative shift, ≈0.1 eV). Meanwhile, extensive electrochemical and electronic structure characterization indicates that the high work function of GD-Ag Cu (4.8 eV) is the reason behind their excellent durability for zinc-air batteries.
从丰富的元素中开发高效稳定的无铂氧还原反应催化剂仍然是对高需求的金属空气电池的一个巨大挑战。基于银的合金由于其低成本、高稳定性以及在碱性溶液中可接受的氧还原反应(ORR)性能,优于铂族催化剂。然而,与商业 Pt/C-20%相比,其催化活性仍然不能满足商业化的需求。在这项研究中,报道了一种用于 AgCu 纳米合金的催化剂筛选策略,包括表面改性方法、活性增强机制研究以及在锌空气电池中的应用研究。结果表明,选择性脱合金(DE)或电置换(GD)的作用受到“分离限制”的限制,这种“分离限制”决定了 AgCu 合金的表面形貌、d 带中心的位置和 ORR 性能。GD-AgCu 和 DE-AgCu 催化剂合金表现出与 Pt/C-20%相当的优异 ORR 性能。电子微扰与比活性的关系表明,GD-AgCu 中 d 带中心(相对于 Ag 约为 0.12eV)的正移有利于 ORR,这与基于 Pt 的合金相反(负移,约 0.1eV)。同时,广泛的电化学和电子结构表征表明,GD-AgCu 的高功函数(4.8eV)是其在锌空气电池中具有优异耐久性的原因。