BIC-ESAT, College of Engineering, Peking University, Beijing, 100871, China.
Department of Materials Science and Engineering, College of Engineering, Peking University, Beijing, 100871, China.
Adv Mater. 2019 Jan;31(2):e1805541. doi: 10.1002/adma.201805541. Epub 2018 Nov 12.
Designing non-precious-metal catalysts with comparable mass activity to state-of-the-art noble-metal catalysts for the hydrogen evolution reaction (HER) in alkaline solution still remains a significant challenge. Herein a new strongly coupled nickel-cobalt nitrides/carbon complex nanocage (NiCoNzocage) is rationally designed via chemical etching of ZIF-67 nanocubes with Ni(NO ) under sonication at room temperature, following nitridation. The as-prepared strongly coupled NiCoN/C nanocages exhibit a mass activity of 0.204 mA µg at an overpotential of 200 mV for the HER in alkaline solution, which is comparable to that of commercial Pt/C (0.451 mA µg ). The strongly coupled NiCoN/C nanocages also possess superior stability for the HER with negligible current loss under the overpotentials of 200 mV for 10 h. Density functional theory (DFT) calculations reveal that the excellent HER performance under alkaline condition arises from the robust Co →Co transformation achieved by strong (Ni, Co)N-bonding-induced efficient d-p-d coupled electron transfer, which is a key for optimal initial water adsorption and splitting. The high degree of amorphization urges the C-sites to be an electron-pushing bath to promote the inter-layer/sites electron-transfer with loss of the orbital-selection-forbidden-rule, which uniformly boosts the surface catalytic activities up to a high level independent of the individual surface active sites.
在碱性溶液中,设计质量活性可与最先进的贵金属催化剂相媲美的非贵金属催化剂用于析氢反应(HER)仍然是一个重大挑战。在此,通过在室温下超声条件下用 Ni(NO ) 对 ZIF-67 纳米立方体进行化学蚀刻,合理设计了一种新型强耦合镍-钴氮化物/碳复合纳米笼(NiCoNzocage),随后进行氮化。所制备的强耦合 NiCoN/C 纳米笼在碱性溶液中 HER 的过电势为 200 mV 时,其质量活性为 0.204 mA µg ,可与商业 Pt/C(0.451 mA µg )相媲美。强耦合 NiCoN/C 纳米笼在 200 mV 的过电势下具有 10 h 的优异 HER 稳定性,电流损失可忽略不计。密度泛函理论(DFT)计算表明,在碱性条件下优异的 HER 性能源于通过强(Ni,Co)N 键合诱导的高效 d-p-d 耦合电子转移实现的稳健 Co →Co 转变,这是优化初始水吸附和分裂的关键。高非晶度促使 C 位成为电子推动浴,以促进层间/位电子转移,从而失去轨道选择禁止规则,从而均匀地将表面催化活性提高到高水平,而与单个表面活性位无关。