Kong Ling-Jie, Hu Xin-Zhuo, Chen Chuan-Qi, Kulinich Sergei A, Du Xi-Wen
Hefei New-Materials Institute Co., Ltd., Hefei 238200, China.
Institute of New Energy Materials, School of Materials Science and Engineering, Tianjin University, Tianjin 300072, China.
Materials (Basel). 2023 Feb 21;16(5):1777. doi: 10.3390/ma16051777.
Single-crystal planes are ideal platforms for catalytic research. In this work, rolled copper foils with predominantly (220) planes were used as the starting material. By using temperature gradient annealing, which caused grain recrystallization in the foils, they were transformed to those with (200) planes. In acidic solution, the overpotential of such a foil (10 mA cm) was found to be 136 mV lower than that of a similar rolled copper foil. The calculation results show that hollow sites formed on the (200) plane have the highest hydrogen adsorption energy and are active centers for hydrogen evolution. Thus, this work clarifies the catalytic activity of specific sites on the copper surface and demonstrates the critical role of surface engineering in designing catalytic properties.
单晶面是催化研究的理想平台。在这项工作中,主要具有(220)面的轧制铜箔被用作起始材料。通过使用温度梯度退火,这导致箔片中的晶粒再结晶,它们被转变为具有(200)面的铜箔。在酸性溶液中,发现这种箔(10 mA cm)的过电位比类似的轧制铜箔低136 mV。计算结果表明,在(200)面上形成的空心位点具有最高的氢吸附能量,是析氢的活性中心。因此,这项工作阐明了铜表面特定位点的催化活性,并证明了表面工程在设计催化性能中的关键作用。