Wang Jing, Feng Tao, Chen Jiaxin, He Jr-Hau, Fang Xiaosheng
Department of Materials Science, Fudan University, Shanghai 200433, China.
School of Chemical and Environmental Engineering, Shanghai Institute of Technology, Shanghai 201418, China.
Research (Wash D C). 2022 May 30;2022:9837012. doi: 10.34133/2022/9837012. eCollection 2022.
Electrocatalytic nitrate reduction to ammonia (ENRA) is an effective strategy to resolve environmental and energy crisis, but there are still great challenges to achieve high activity and stability synergistically for practical application in a fluid environment. The flexible film electrode may solve the abovementioned problem of practical catalytic application owing to the advantages of low cost, light weight, eco-friendliness, simple and scalable fabrication, extensive structural stability, and electrocatalytic reliability. Herein, 2D hybridization copper 1,4-benzenedi-carboxylate (CuBDC) has been grown on electronegative MXene nanosheets (TiCT) seamlessly to prepare a 2D flexible CuBDC@TiCT electrode for ENRA. The flexible electrode simultaneously exhibits high Faradaic efficiency (86.5%) and excellent stability for NH synthesis, which are comparable to previously reported nanomaterials toward ENRA. Especially, the flexible electrode maintains outstanding toward ENRA after the bending, twisting, folding, and crumpling tests, indicating excellent electroconductibility, high stability, and durability. This work not only provides mild permeation-mediated strategy to fabricate a flexible electrode but also explores the practical applications of the electrode with effectively environmental adaptability in solving global environmental contamination and energy crisis by effective ENRA.
电催化硝酸盐还原制氨(ENRA)是解决环境和能源危机的有效策略,但在流体环境中实现高活性和稳定性协同以用于实际应用仍面临巨大挑战。柔性薄膜电极由于具有低成本、重量轻、环保、制备简单且可扩展、结构稳定性高以及电催化可靠性强等优点,可能解决上述实际催化应用问题。在此,二维杂化的1,4 - 苯二甲酸铜(CuBDC)已无缝生长在带负电的MXene纳米片(TiCT)上,以制备用于ENRA的二维柔性CuBDC@TiCT电极。该柔性电极同时展现出高法拉第效率(86.5%)以及用于氨合成的优异稳定性,这与先前报道的用于ENRA的纳米材料相当。特别是,经过弯曲、扭转、折叠和揉皱测试后,该柔性电极对ENRA仍保持出色性能,表明其具有优异的导电性、高稳定性和耐久性。这项工作不仅提供了一种温和的渗透介导策略来制备柔性电极,还探索了具有有效环境适应性的电极在通过高效ENRA解决全球环境污染和能源危机方面的实际应用。