Dr. Yunchang Liang, Dr. Sofia O. Parreiras, Dr. Seunghwa Lee, Karla Banjac, Dr. Victor Boureau, Dr. José M. Gallego, Prof. Xile Hu, Prof. David Écija, Dr. Magalí Lingenfelder
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引用次数: 0
摘要
高效催化水分离需要先进的催化剂来改善氧进化反应(OER)的缓慢动力学。地球上丰富的过渡金属氧化物在碱性介质中显示出良好的氧演化活性。然而,现有的大部分实验信息要么来自死后研究,要么来自微米范围内的原位空间平均 X 射线技术。因此,在操作条件下活性中心的组成仍存在争议。在这项工作中,我们将分子束外延 (MBE) 制备的镍和镍铁氧化物纳米岛羟基化的纳米测量和光谱测量与 OER 条件下镍和镍铁氢氧化物电催化剂的操作性局部研究相结合,揭示了二维 OER 催化剂中活性中心的性质。我们的研究结果表明,掺杂铁元素可通过岛状破碎增加活性表面积,并通过创建由镍和铁原子组成的优化活性中心提高固有活性。此外,我们的研究结果表明,纳米尺度的操作表征对于揭示二维催化剂在反应条件下界面的动态性质至关重要。
Operando Nanoscale Characterization Reveals Fe Doping of Ni Oxide Enhances Oxygen Evolution Reaction via Fragmentation and Formation of Dual Active Sites
Efficient catalytic water splitting demands advanced catalysts to improve the slow kinetics of the oxygen evolution reaction (OER). Earth-abundant transition metal oxides show promising OER activity in alkaline media. However, most experimental information available is either from post-mortem studies or in situ space-averaged X-ray techniques in the micrometer range. Therefore, the composition of the active centers under operando conditions is still under debate. In this work, we combine nanoscopic and spectroscopic measurements on the hydroxylation of molecular beam epitaxy (MBE)-prepared Ni and NiFe oxides nanoislands with operando local investigations of Ni and NiFe hydroxide electrocatalysts under OER conditions to reveal the nature of the active centers in 2D OER catalysts. Our results reveal that Fe doping increases the active surface area by island fragmentation, and boosts the intrinsic activity by creating optimized active centers consisting of both Ni and Fe atoms. In addition, our findings show that operando characterization at the nanoscale is crucial to reveal the dynamic nature of the interface of 2D catalysts under reaction conditions.