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通过解耦电解质实现直接海水电解高效合成高附加值活性氯并同时产氢的节能电合成方法。

Energy-Efficient Electrosynthesis of High Value-Added Active Chlorine Coupled with H Generation from Direct Seawater Electrolysis through Decoupling Electrolytes.

作者信息

Zhu Wenxin, Wei Ziyi, Ma Yiyue, Ren Meirong, Fu Xue, Li Min, Zhang Chunling, Wang Jianlong, Guo Shaojun

机构信息

College of Food Science and Engineering, Northwest A&F University, Yangling, 712100, Shaanxi, China.

Department of Agrotechnology and Food Sciences, Wageningen University & Research, Droevendaalsesteeg 2, 6708, PB Wageningen, The Netherlands.

出版信息

Angew Chem Int Ed Engl. 2024 Apr 8;63(15):e202319798. doi: 10.1002/anie.202319798. Epub 2024 Feb 28.

Abstract

Direct saline (seawater) electrolysis is a well-recognized system to generate active chlorine species for the chloride-mediated electrosynthesis, environmental remediation and sterilization over the past few decades. However, the large energy consumption originated from the high cell voltage of traditional direct saline electrolysis system, greatly restricts its practical application. Here, we report an acid-saline hybrid electrolysis system for energy-saving co-electrosynthesis of active chlorine and H. We demonstrate that this system just requires a low cell voltage of 1.59 V to attain 10 mA cm with a large energy consumption decrease of 27.7 % compared to direct saline electrolysis system (2.20 V). We further demonstrate that such acid-saline hybrid electrolysis system could be extended to realize energy-saving and sustainable seawater electrolysis. The acidified seawater in this system can absolutely avoid the formation of Ca/Mg-based sediments that always form in the seawater electrolysis system. We also prove that this system in the half-flow mode can realize real-time preparation of active chlorine used for sterilization and pea sprout production.

摘要

在过去几十年里,直接盐水(海水)电解是一种广为人知的系统,用于通过氯化物介导的电合成、环境修复和杀菌来生成活性氯物种。然而,传统直接盐水电解系统由于电池电压高而导致的高能耗,极大地限制了其实际应用。在此,我们报道了一种用于活性氯和氢气节能共电合成的酸 - 盐水混合电解系统。我们证明,该系统仅需1.59 V的低电池电压即可达到10 mA/cm²,与直接盐水电解系统(2.20 V)相比,能耗大幅降低了27.7%。我们进一步证明,这种酸 - 盐水混合电解系统可扩展以实现节能和可持续的海水电解。该系统中的酸化海水能够完全避免在海水电解系统中总是会形成的钙/镁基沉积物。我们还证明,该系统在半流动模式下能够实现用于杀菌和豌豆芽生产的活性氯的实时制备。

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