Facultad de Ciencias Químicas, Universidad Autónoma de Chihuahua, Chihuahua, Chihuahua 31125, Mexico.
Department of Chemistry, The University of Texas at Austin, Austin, Texas 78712, United States.
Environ Sci Technol. 2020 Oct 6;54(19):12511-12520. doi: 10.1021/acs.est.0c04190. Epub 2020 Sep 22.
The electrochemical oxidation of sulfite ions offers encouraging advantages for large-scale hydrogen production, while sulfur dioxide emissions can be effectively used to obtain value-added byproducts. Herein, the performance and stability during sulfite electrolysis under alkaline conditions are evaluated. Nickel foam (NF) substrates were functionalized as the anode and cathode through electrochemical deposition of palladium and chemical oxidation to carry out the sulfite electro-oxidation and hydrogen evolution reactions, respectively. A combined analytical approach in which a robust electrochemical flow cell was coupled to different and measurements was successfully implemented to monitor the activity and stability during electrolysis. Overall, satisfactory sulfite conversion and hydrogen production efficiencies (>90%) at 10 mA·cm were mainly attributed to the use of NF in three-dimensional electrodes with a large surface area and enhanced mass transfer. Furthermore, stabilization processes associated with electrochemical dissolution and sulfur crossover through the membrane induced specific changes in the chemical and physical properties of the electrodes after electrolysis. This study demonstrates that NF-based electrocatalysts can be incorporated in an efficient electrochemical flow cell system for sulfite electrolysis and hydrogen production, with potential applications at a large scale.
亚硫酸盐离子的电化学氧化为大规模制氢提供了令人鼓舞的优势,同时可以有效利用二氧化硫排放来获得增值副产品。本文评价了碱性条件下亚硫酸盐电解过程中的性能和稳定性。通过电化学沉积钯和化学氧化,将泡沫镍 (NF) 基底功能化作为阳极和阴极,分别进行亚硫酸盐电氧化和析氢反应。成功实施了一种组合分析方法,将强大的电化学流动池与不同的 和 测量相结合,以监测电解过程中的活性和稳定性。总的来说,在 10 mA·cm 时,亚硫酸盐的转化率和氢气的产率均超过 90%,主要归因于使用 NF 作为具有大表面积和增强传质的三维电极。此外,电化学溶解和通过膜的硫交叉引起的稳定过程在电解后导致电极的化学和物理性质发生特定变化。这项研究表明,基于 NF 的电催化剂可以被整合到高效的电化学流动池系统中用于亚硫酸盐电解和氢气生产,具有大规模应用的潜力。