KLGHEI of Environment and Energy Chemistry, The Key Lab of Low-Carbon Chemistry & Energy Conservation of Guangdong Province, MOE of the Key Laboratory of Bioinorganic and Synthetic Chemistry, School of Chemistry, Sun Yat-sen University, 135 Xingang West Road, Guangzhou, 510275, P. R. China.
Instrumental Analysis and Research Centre, Sun Yat-sen University, Guangzhou, 510275, P. R. China.
Adv Mater. 2017 Sep;29(34). doi: 10.1002/adma.201702095. Epub 2017 Jul 6.
Water splitting into hydrogen and oxygen in order to store light or electric energy requires efficient electrocatalysts for practical application. Cost-effectiveness, abundance, and efficiency are the major challenges of the electrocatalysts. Herein, this paper reports the use of low-cost 304-type stainless steel mesh as suitable electrocatalysts for splitting of water. The commercial and self-support stainless steel mesh is subjected to exfoliation and heteroatom doping processes. The modified stainless steel electrocatalyst displays higher oxygen evolution reaction property than the commercial IrO , and comparable hydrogen evolution reaction property with that of Pt. More importantly, an all-stainless-steel-based alkaline electrolyzer (denoted as NESSP//NESS) is designed for the first time, which possesses outstanding stability along with lower overall voltage than the conventional Pt//IrO electrolyzer at increasing current densities. The remarkable electrocatalytic properties of the stainless steel electrode can be attributed to the unique exfoliated-surface morphology, heteroatom doping, and synergistic effect from the uniform distribution of the interconnected elemental compositions. This work creates prospects to the utilization of low-cost, highly active, and ultradurable electrocatalysts for electrochemical energy conversion.
为了存储光或电能而将水分解为氢气和氧气,需要高效的电催化剂才能实际应用。成本效益、丰富度和效率是电催化剂的主要挑战。本文报告了使用低成本的 304 型不锈钢网作为合适的水电解电催化剂。商用和自支撑不锈钢网经过剥离和杂原子掺杂处理。改性不锈钢电催化剂的析氧反应性能高于商用 IrO ,而析氢反应性能与 Pt 相当。更重要的是,首次设计了一种全不锈钢基碱性电解槽(表示为 NESSP//NESS),与传统的 Pt//IrO 电解槽相比,它在增加电流密度时具有出色的稳定性和更低的总电压。不锈钢电极的显著电催化性能可归因于独特的剥离表面形貌、杂原子掺杂以及相互连接的元素成分均匀分布的协同效应。这项工作为电化学能量转换中使用低成本、高活性和超耐用的电催化剂创造了前景。