Tetteh Emmanuel Batsa, Krysiak Olga A, Savan Alan, Kim Moonjoo, Zerdoumi Ridha, Chung Taek Dong, Ludwig Alfred, Schuhmann Wolfgang
Analytical Chemistry - Center for Electrochemical Sciences (CES), Faculty of Chemistry and Biochemistry, Ruhr University Bochum, Universitätsstr. 150, D-44780, Bochum, Germany.
Chair for Materials Discovery and Interfaces, Institute for Materials, Faculty of Mechanical Engineering, Ruhr University Bochum, Universitätsstr. 150, D-44780, Bochum, Germany.
Small Methods. 2024 Jul;8(7):e2301284. doi: 10.1002/smtd.202301284. Epub 2023 Dec 28.
High-entropy alloys (HEAs), especially in the form of compositional complex solid solutions (CCSS), have gained attention in the field of electrocatalysis. However, exploring their vast composition space concerning their electrocatalytic properties imposes significant challenges. Scanning electrochemical cell microscopy (SECCM) offers high-speed electrochemical analysis on surface areas with a lateral resolution down to tens of nm. However, high-precision piezo positioners often used for the motion of the tip limit the area of SECCM scans to the motion range of the piezo positioners which is typically a few tens of microns. To bridge this experimental gap, the study proposes a long-range SECCM system with a rapid gas-exchange environmental cell for high-throughput electrochemical characterization of 100 mm diameter HEA thin-film material libraries (ML) obtained by combinatorial co-sputtering. Due to the gas-liquid interface at the positioned SECCM droplet on the sample, high-throughput evaluation under industrial current density conditions becomes feasible. This allows the direct correlation between electrocatalytic activity and material composition with high statistical reliability. The multidimensional data obtained accelerates materials discovery, development, and optimization.
高熵合金(HEAs),特别是以成分复杂固溶体(CCSS)的形式,在电催化领域受到了关注。然而,探索其关于电催化性能的广阔成分空间带来了重大挑战。扫描电化学细胞显微镜(SECCM)可对横向分辨率低至数十纳米的表面区域进行高速电化学分析。然而,常用于尖端移动的高精度压电定位器将SECCM扫描区域限制在压电定位器的移动范围内,该范围通常为几十微米。为了弥补这一实验差距,该研究提出了一种带有快速气体交换环境池的远程SECCM系统,用于对通过组合共溅射获得的直径100毫米的HEA薄膜材料库(ML)进行高通量电化学表征。由于样品上定位的SECCM液滴处的气液界面,在工业电流密度条件下进行高通量评估变得可行。这使得电催化活性与材料成分之间具有高统计可靠性的直接关联成为可能。所获得的多维数据加速了材料的发现、开发和优化。