Pulsed Electrolysis of Boron-Doped Carbon Dramatically Improves Impurity Tolerance and Longevity of H 2 O 2 Production

Импульсный электролиз углерода, легированного бором, значительно повышает устойчивость к примесям и долговечность производства H₂O₂
David J. Kim, Yuanzuo Gao, Kali Rigby, Aidan Francis Meese, Hyun Jeong Lim, Hailiang Wang, Jin Hyun Kim, Jae‐Hong Kim, Jae-Hong Kim
2023-04-24

boron-doped carboncatalyst impurity toleranceelectrocatalytic water treatmenthydrogen peroxide electrosynthesispulsed electrolysis
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 H 2 O 2 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 2+ and Zn 2+ 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 H 2 O 2 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.
1
A comprehensive framework optimizes pulsed electrolysis parameters to improve catalyst impurity tolerance and operational longevity.
2
A strategy transfers pulse settings from three-electrode tests to practical two-electrode operation while preserving desired catalyst-interface potentials.
3
Boron-doped carbon outperforms state-of-the-art oxidized carbon for cathodic H₂O₂ electrosynthesis, maintaining over 75% selectivity with near-complete overpotential recovery.
4
Optimized pulsing substantially mitigates the effects of highly detrimental Ni²⁺ and Zn²⁺ impurities.
5
Pulsed electrolysis extends H₂O₂ production to 287 hours, 35 times longer than conventional electrolysis across varying impurity concentrations.

boron-doped carbon cathodes for electrocatalytic H2O2 production in wastewater containing Ni2+ and Zn2+ impurities

the effects of pulsed electrolysis parameters on impurity tolerance, electrocatalytic performance, and operational longevity of cathodic H2O2 production

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2023-04-24
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Authors
David J. Kim
Yuanzuo Gao
Kali Rigby
Aidan Francis Meese
Hyun Jeong Lim
Hailiang Wang
Jin Hyun Kim
Jae‐Hong Kim
Jae-Hong Kim
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