TY - JOUR
T1 - Coupling photoelectrochemical organic polymerization with hydrogen evolution for sustainable saline wastewater treatment
AU - Cheung, Howard Y.M.
AU - Calvillo Solís, Jonathan J.
AU - Zhang, Jin
AU - Wang, Xiaoying
AU - Wong, Nick Y.H.
AU - Guan, Xiaohong
AU - Zheng, Zexiao
AU - Lo, Irene M.C.
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/9/15
Y1 - 2026/9/15
N2 - Saline wastewater with bio-refractory organics resists biological treatment. Although mineralization-oriented advanced oxidation processes (AOPs) have been developed for saline wastewater treatment, they face drawbacks of excessive oxidant consumption and intensive toxic byproduct formation. Herein, a photoelectrochemical (PEC) system employing a BiVO4 photoanode modified with bismuth vacancies and a transition-metal hydroxide cocatalyst (namely NiFe(OH)x@BvVO) at a low peroxymonosulfate (PMS)-to-pollutant ratio of 2:1 is established to address these challenges. This novel polymerization-oriented PMS-assisted PEC chloride activation (PEC/Cl-/PMS) system converts pollutants into polymerized products, achieving 95.8% total organic carbon (TOC) removal with 84.3% polymerized product recovery, coupled with 357 µmol hydrogen evolution within 40 minutes. Mechanistically, photogenerated holes co-activate chloride ions and PMS to promote Cl2•- formation. Albeit often regarded as a weak mineralization-oriented reactive species, Cl2•- effectively initiates phenoxy radical formation for subsequent polymerization through C–O–C and C–C coupling reactions. Benefiting from polymerized product & hydrogen recovery, mild bias & low PMS dosage, and minimized greenhouse-gas emissions, the PEC/Cl-/PMS system respectively demonstrates a value-added, energy-efficient, and low-carbon treatment approach. Moreover, its potential applicability can be supported by robust performance across varying pH and wastewater compositions, reduced effluent biotoxicity, and stable 120 h continuous-flow treatment of real saline wastewater. The developed system integrates decontamination with multi-resource recovery, advancing sustainable wastewater management.
AB - Saline wastewater with bio-refractory organics resists biological treatment. Although mineralization-oriented advanced oxidation processes (AOPs) have been developed for saline wastewater treatment, they face drawbacks of excessive oxidant consumption and intensive toxic byproduct formation. Herein, a photoelectrochemical (PEC) system employing a BiVO4 photoanode modified with bismuth vacancies and a transition-metal hydroxide cocatalyst (namely NiFe(OH)x@BvVO) at a low peroxymonosulfate (PMS)-to-pollutant ratio of 2:1 is established to address these challenges. This novel polymerization-oriented PMS-assisted PEC chloride activation (PEC/Cl-/PMS) system converts pollutants into polymerized products, achieving 95.8% total organic carbon (TOC) removal with 84.3% polymerized product recovery, coupled with 357 µmol hydrogen evolution within 40 minutes. Mechanistically, photogenerated holes co-activate chloride ions and PMS to promote Cl2•- formation. Albeit often regarded as a weak mineralization-oriented reactive species, Cl2•- effectively initiates phenoxy radical formation for subsequent polymerization through C–O–C and C–C coupling reactions. Benefiting from polymerized product & hydrogen recovery, mild bias & low PMS dosage, and minimized greenhouse-gas emissions, the PEC/Cl-/PMS system respectively demonstrates a value-added, energy-efficient, and low-carbon treatment approach. Moreover, its potential applicability can be supported by robust performance across varying pH and wastewater compositions, reduced effluent biotoxicity, and stable 120 h continuous-flow treatment of real saline wastewater. The developed system integrates decontamination with multi-resource recovery, advancing sustainable wastewater management.
KW - Chloride activation
KW - Hydrogen evolution
KW - Organic polymerization
KW - Photoelectrochemical
KW - Saline wastewater
UR - https://www.scopus.com/pages/publications/105040076471
U2 - 10.1016/j.watres.2026.126187
DO - 10.1016/j.watres.2026.126187
M3 - 文章
AN - SCOPUS:105040076471
SN - 0043-1354
VL - 303
JO - Water Research
JF - Water Research
M1 - 126187
ER -