微尺度化学
材料科学
高熵合金
纳米技术
纳米尺度
合金
化学工程
冶金
数学教育
数学
工程类
作者
Lars Banko,Emmanuel Batsa Tetteh,Aleksander Kostka,Tobias H. Piotrowiak,Olga A. Krysiak,Ulrich Hagemann,Corina Andronescu,Wolfgang Schuhmann,Alfred Ludwig
标识
DOI:10.1002/adma.202207635
摘要
Polyelemental material systems, specifically high-entropy alloys, promise unprecedented properties. Due to almost unlimited combinatorial possibilities, their exploration and exploitation is hard. This challenge is addressed by co-sputtering combined with shadow masking to produce a multitude of microscale combinatorial libraries in one deposition process. These thin-film composition spreads on the microscale cover unprecedented compositional ranges of high-entropy alloy systems and enable high-throughput characterization of thousands of compositions for electrocatalytic energy conversion reactions using nanoscale scanning electrochemical cell microscopy. The exemplary exploration of the composition space of two high-entropy alloy systems provides electrocatalytic activity maps for hydrogen evolution and oxygen evolution as well as oxygen reduction reactions. Activity optima in the system Ru-Rh-Pd-Ir-Pt are identified, and active noble-metal lean compositions in the system Co-Ni-Mo-Pd-Pt are discovered. This illustrates that the proposed microlibraries are a holistic discovery platform to master the multidimensionality challenge of polyelemental systems.
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