Long Yuanzheng, Yang Cheng, Wu Yulong, Deng Bohan, Li Ziwei, Hussain Naveed, Wang Kuangyu, Wang Ruyue, He Xian, Du Peng, Guo Zeliang, Lang Jialiang, Huang Kai, Wu Hui
State Key Lab of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing, 100084, China.
Center of Advanced Mechanics and Materials Applied Mechanics Laboratory Department of Engineering Mechanics, Tsinghua University, Beijing, 100084, China.
Adv Sci (Weinh). 2023 Sep;10(26):e2301872. doi: 10.1002/advs.202301872. Epub 2023 Jul 3.
The increasing demand for clean energy conversion and storage has increased interest in hydrogen production via electrolytic water splitting. However, the simultaneous production of hydrogen and oxygen in this process poses a challenge in extracting pure hydrogen without using ionic conducting membranes. Researchers have developed various innovative designs to overcome this issue, but continuous water splitting in separated tanks remains a desirable approach. This study presents a novel, continuous roll-to-roll process that enables fully decoupled hydrogen evaluation reaction (HER) and oxygen evolution reaction (OER) in two separate electrolyte tanks. The system utilizes specially designed "cable-car" electrodes (CCE) that cycle between the HER and OER tanks, resulting in continuous hydrogen production with a purity of over 99.9% and Coulombic efficiency of 98% for prolonged periods. This membrane-free water splitting system offers promising prospects for scaled-up industrial-scale green hydrogen production, as it reduces the cost and complexity of the system, and allows for the use of renewable energy sources to power the electrolysis process, thus reducing the carbon footprint of hydrogen production.
对清洁能源转换和存储的需求不断增加,这激发了人们对通过电解水分解制氢的兴趣。然而,在此过程中同时产生氢气和氧气,在不使用离子传导膜的情况下提取纯氢带来了挑战。研究人员已开发出各种创新设计来克服这一问题,但在分离的槽中持续进行水分解仍然是一种理想的方法。本研究提出了一种新颖的连续卷对卷工艺,该工艺能够在两个独立的电解质槽中实现氢析出反应(HER)和析氧反应(OER)的完全解耦。该系统采用了专门设计的“缆车”电极(CCE),其在HER槽和OER槽之间循环,从而能够长时间持续生产纯度超过99.9%的氢气,库仑效率达到98%。这种无膜水分解系统为扩大工业规模的绿色制氢提供了广阔前景,因为它降低了系统成本和复杂性,并允许使用可再生能源为电解过程供电,从而减少了制氢的碳足迹。