法拉第效率
电解
电化学
硫黄
无机化学
阳极
有机硫化合物
亚硫酸盐
甲醇
硫化氢
化学
硫化物
多硫化物
废水
化学工程
材料科学
工业废水处理
电催化剂
工业废物
催化作用
甲醛
流出物
钨酸盐
合成气
阴极
传质
氢
电解水
部分氧化
作者
Chunyu Zhang,Haozhe Sun,Xiang Liu,Kejian Kong,T N Zhou,Xi Wang,Haohong Duan
标识
DOI:10.1038/s41467-026-75547-y
摘要
Electrochemical C–S bond construction represents an attractive route to produce valuable organosulfur compounds, yet current approaches suffer from low reaction efficiency and rely on sulfites (SO32−) as the sulfur source. Here we report a paired electrolysis for hydroxymethanesulfonate synthesis from widespread industrial-waste sulfides (HS−). Specifically, HS− is oxidized to SO32− by in-situ generated H2O2 at cathode, and methanol is oxidized to formaldehyde at anode, with following C–S coupling to form hydroxymethanesulfonate. By matching HS− concentration with current density and strengthening convective mass transfer between intermediates, we achieve efficient hydroxymethanesulfonate production with Faradaic efficiency of 102.8% and productivity of 282 μmol h−1 in a membrane-free H-cell under optimized conditions (50 mA cm−2, 0.05 M HS−, stirring in anodic chamber). By constructing a flow reactor, this paired electrolysis enables conversion of HS−-contaminated wastewater (from <10 ppm to 3000 ppm) with Faradaic efficiencies exceeding 100%, while tolerating coexisting anions and heavy metals in real effluents. It also converts waste H2S gas with >87% conversion and >74% hydroxymethanesulfonate selectivity over 102 hours of stable operation, demonstrating more cost-effective economics to both industrial and previous electrochemical methods. Conventional organosulfur synthesis relies on sulfite feedstocks and suffers from low efficiency. Here, the authors report a paired electrolysis strategy that converts waste sulfides and methanol into hydroxymethanesulfonate, enabling cost-effective wastewater treatment and hydrogen sulfide utilization.
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