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掺硼碳的脉冲电解极大地提高了 HO 生产的杂质容忍度和寿命。

Pulsed Electrolysis of Boron-Doped Carbon Dramatically Improves Impurity Tolerance and Longevity of HO Production.

机构信息

Department of Chemical and Environmental Engineering, Yale University, New Haven, Connecticut 06520, United States.

Department of Chemistry, Yale University, New Haven, Connecticut 06520, United States.

出版信息

Environ Sci Technol. 2023 May 9;57(18):7309-7320. doi: 10.1021/acs.est.3c00305. Epub 2023 Apr 24.

Abstract

Electrocatalytic water treatment has emerged in the limelight of scientific interest, yet its long-term viability remains largely in the dark. Herein, we present for the first time a comprehensive framework on how to optimize pulsed electrolysis to bolster catalyst impurity tolerance and overall longevity. By examining real wastewater constituents and assessing different catalyst designs, we deconvolute the complexities associated with key pulsing parameters to formulate optimal sequences that maximize operational lifetime. We showcase our approach for cathodic HO electrosynthesis, selected for its widespread importance to wastewater treatment. Our results unveil superior performance for a boron-doped carbon catalyst over state-of-the-art oxidized carbon, with high selectivity (>75%) and near complete recoveries in overpotentials even in the presence of highly detrimental Ni and Zn impurities. We then adapt these fine-tuned settings, obtained under a three-electrode arrangement, for practical two-electrode operation using a novel strategy that conserves the desired electrochemical potentials at the catalytic interface. Even under various impurity concentrations, our pulses substantially improve long-term HO production to 287 h and 35 times that attainable via conventional electrolysis. Our findings underscore the versatility of pulsed electrolysis necessary for developing more practical water treatment technologies.

摘要

电催化水处理在科学研究中备受关注,但它的长期可行性在很大程度上仍不为人知。本文首次提出了一个全面的框架,探讨如何优化脉冲电解以提高催化剂杂质容忍度和整体寿命。通过研究实际废水成分和评估不同的催化剂设计,我们分解了与关键脉冲参数相关的复杂性,制定了最优序列,最大限度地提高了运行寿命。我们展示了我们在阴极 HO 电合成方面的方法,选择它是因为它对废水处理具有广泛的重要性。我们的结果表明,掺硼碳催化剂的性能优于最先进的氧化碳催化剂,即使在存在高危害性的 Ni 和 Zn 杂质的情况下,其具有高选择性(>75%)和近乎完全的过电势回收。然后,我们使用一种新策略,根据三电极装置获得的这些微调设置,在实际的两电极操作中进行调整,该策略在催化界面上保持所需的电化学势。即使在各种杂质浓度下,我们的脉冲也能显著提高长期 HO 产量,达到 287 小时,是传统电解法的 35 倍。我们的研究结果强调了脉冲电解在开发更实用的水处理技术方面的多功能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aed0/10174061/f7bb6d4ed0ab/es3c00305_0002.jpg

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