Chinese Journal of Chemical Engineering ›› 2022, Vol. 50 ›› Issue (10): 12-28.DOI: 10.1016/j.cjche.2022.07.032
• Review • Previous Articles Next Articles
Jiahao Wei, Fan Li, Lina Zhou, Dandan Han, Junbo Gong
Received:
2022-03-20
Revised:
2022-06-28
Online:
2023-01-04
Published:
2022-10-28
Contact:
Junbo Gong,E-mail:junbo_gong@tju.edu.cn
Supported by:
Jiahao Wei, Fan Li, Lina Zhou, Dandan Han, Junbo Gong
通讯作者:
Junbo Gong,E-mail:junbo_gong@tju.edu.cn
基金资助:
Jiahao Wei, Fan Li, Lina Zhou, Dandan Han, Junbo Gong. Strategies for enhancing peroxymonosulfate activation by heterogenous metal-based catalysis: A review[J]. Chinese Journal of Chemical Engineering, 2022, 50(10): 12-28.
Jiahao Wei, Fan Li, Lina Zhou, Dandan Han, Junbo Gong. Strategies for enhancing peroxymonosulfate activation by heterogenous metal-based catalysis: A review[J]. 中国化学工程学报, 2022, 50(10): 12-28.
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URL: https://cjche.cip.com.cn/EN/10.1016/j.cjche.2022.07.032
[1] M.S. Mauter, I. Zucker, F. Perreault, J.R. Werber, J.H. Kim, M. Elimelech, The role of nanotechnology in tackling global water challenges, Nat. Sustain. 1 (4) (2018) 166-175 [2] A. Palika, A. Armanious, A. Rahimi, C. Medaglia, M. Gasbarri, S. Handschin, A. Rossi, M.O. Pohl, I. Busnadiego, C. Gübeli, R.B. Anjanappa, S. Bolisetty, M. Peydayesh, S. Stertz, B.G. Hale, C. Tapparel, F. Stellacci, R. Mezzenga, An antiviral trap made of protein nanofibrils and iron oxyhydroxide nanoparticles, Nat. Nanotechnol. 16 (8) (2021) 918-925 [3] S. Rojas, P. Horcajada, Metal-organic frameworks for the removal of emerging organic contaminants in water, Chem. Rev. 120 (16) (2020) 8378-8415 [4] I.A. Ricardo, E.A. Alberto, A.H. Silva Jr, D.L.P. Macuvele, N. Padoin, C. Soares, H. Gracher Riella, M.C.V.M. Starling, A.G. Trovó, A critical review on microplastics, interaction with organic and inorganic pollutants, impacts and effectiveness of advanced oxidation processes applied for their removal from aqueous matrices, Chem. Eng. J. 424 (2021) 130282 [5] S.C. Wang, L. Li, S.L. Yu, B.Z. Dong, N.Y. Gao, X.Y. Wang, A review of advances in EDCs and PhACs removal by nanofiltration:Mechanisms, impact factors and the influence of organic matter, Chem. Eng. J. 406 (2021) 126722 [6] H.F. Wu, Y.H. Chao, Y. Jin, D.J. Tao, X.W. Li, J. Luo, G.H. Xia, L.H. Zhu, W.S. Zhu, Sustainable preparation of graphene-analogue boron nitride by ball-milling for adsorption of organic pollutants, Chin. J. Chem. Eng. 42 (2022) 73-81 [7] L.P. Liang, F.F. Xi, W.S. Tan, X. Meng, B.W. Hu, X.K. Wang, Review of organic and inorganic pollutants removal by biochar and biochar-based composites, Biochar 3 (3) (2021) 255-281 [8] J.J. Rueda-Marquez, I. Levchuk, P. Fernández Ibañez, M. Sillanpää, A critical review on application of photocatalysis for toxicity reduction of real wastewaters, J. Clean. Prod. 258 (2020) 120694 [9] M. Lu, M.X. Liu, C.L. Xu, Y. Yin, L. Shi, H. Wu, A.H. Yuan, X.M. Ren, S.B. Wang, H.Q. Sun, Location and size regulation of manganese oxides within mesoporous silica for enhanced antibiotic degradation, Chin. J. Chem. Eng. 48 (2022) 36-43 [10] W.H. Glaze, J.W. Kang, D.H. Chapin, The chemistry of water treatment processes involving ozone, hydrogen peroxide and ultraviolet radiation, Ozone Sci. Eng. 9 (4) (1987) 335-352 [11] M. Kohantorabi, G. Moussavi, S. Giannakis, A review of the innovations in metal- and carbon-based catalysts explored for heterogeneous peroxymonosulfate (PMS) activation, with focus on radical vs. non-radical degradation pathways of organic contaminants, Chem. Eng. J. 411 (2021) 127957 [12] H.Y. Zhou, H. Zhang, Y.L. He, B.K. Huang, C.Y. Zhou, G. Yao, B. Lai, Critical review of reductant-enhanced peroxide activation processes:Trade-off between accelerated Fe3+/Fe2+ cycle and quenching reactions, Appl. Catal. B Environ. 286 (2021) 119900 [13] H.J. Zhou, L. Kang, M. Zhou, Z.X. Zhong, W.H. Xing, Membrane enhanced COD degradation of pulp wastewater using Cu2O/H2O2 heterogeneous Fenton process, Chin. J. Chem. Eng. 26 (9) (2018) 1896-1903 [14] Y.P. Zhu, R.L. Zhu, Y.F. Xi, J.X. Zhu, G.Q. Zhu, H.P. He, Strategies for enhancing the heterogeneous Fenton catalytic reactivity:A review, Appl. Catal. B Environ. 255 (2019) 117739 [15] H. Kadji, I. Yahiaoui, Z. Garti, A. Amrane, F. Aissani-Benissad, Kinetic degradation of amoxicillin by using the electro-Fenton process in the presence of a graphite rods from used batteries, Chin. J. Chem. Eng. 32 (2021) 183-190 [16] S. Xiao, M. Cheng, H. Zhong, Z.F. Liu, Y. Liu, X. Yang, Q.H. Liang, Iron-mediated activation of persulfate and peroxymonosulfate in both homogeneous and heterogeneous ways:A review, Chem. Eng. J. 384 (2020) 123265 [17] S. Giannakis, K.Y.A. Lin, F. Ghanbari, A review of the recent advances on the treatment of industrial wastewaters by Sulfate Radical-based Advanced Oxidation Processes (SR-AOPs), Chem. Eng. J. 406 (2021) 127083 [18] J. Lee, U. von Gunten, J.H. Kim, Persulfate-based advanced oxidation:Critical assessment of opportunities and roadblocks, Environ. Sci. Technol. 54 (6) (2020) 3064-3081 [19] W.D. Oh, Z.L. Dong, T.T. Lim, Generation of sulfate radical through heterogeneous catalysis for organic contaminants removal:Current development, challenges and prospects, Appl. Catal. B Environ. 194 (2016) 169-201 [20] M.I. Kanjal, M. Muneer, A. Abdelhaleem, W. Chu, Degradation of methotrexate by UV/peroxymonosulfate:Kinetics, effect of operational parameters and mechanism, Chin. J. Chem. Eng. 28 (10) (2020) 2658-2667 [21] G.P. Anipsitakis, D.D. Dionysiou, Degradation of organic contaminants in water with sulfate radicals generated by the conjunction of peroxymonosulfate with cobalt, Environ. Sci. Technol. 37 (20) (2003) 4790-4797 [22] B. Li, Y.F. Wang, L. Zhang, H.Y. Xu, Enhancement strategies for efficient activation of persulfate by heterogeneous cobalt-containing catalysts:A review, Chemosphere 291 (2022) 132954 [23] X.X. Zheng, X.J. Niu, D.Q. Zhang, M.Y. Lv, X.Y. Ye, J.L. Ma, Z. Lin, M.L. Fu, Metal-based catalysts for persulfate and peroxymonosulfate activation in heterogeneous ways:A review, Chem. Eng. J. 429 (2022) 132323 [24] Y.T. Peng, H.M. Tang, B. Yao, X. Gao, X. Yang, Y.Y. Zhou, Activation of peroxymonosulfate (PMS) by spinel ferrite and their composites in degradation of organic pollutants:A Review, Chem. Eng. J. 414 (2021) 128800 [25] W.Q. Huang, S. Xiao, H. Zhong, M. Yan, X. Yang, Activation of persulfates by carbonaceous materials:A review, Chem. Eng. J. 418 (2021) 129297 [26] X.D. Du, M.H. Zhou, Strategies to enhance catalytic performance of metal-organic frameworks in sulfate radical-based advanced oxidation processes for organic pollutants removal, Chem. Eng. J. 403 (2021) 126346 [27] T. Do Minh, J.Z. Song, A. Deb, L.G. Cha, V. Srivastava, M. Sillanpää, Biochar based catalysts for the abatement of emerging pollutants:A review, Chem. Eng. J. 394 (2020) 124856 [28] X.G. Duan, H.Q. Sun, S.B. Wang, Metal-free carbocatalysis in advanced oxidation reactions, Acc. Chem. Res. 51 (3) (2018) 678-687 [29] S.S. Yang, Z.Y. Huang, P.X. Wu, Y.H. Li, X.B. Dong, C.Q. Li, N.Y. Zhu, X.D. Duan, D.D. Dionysiou, Rapid removal of tetrabromobisphenol A by α-Fe2O3-x@Graphene@Montmorillonite catalyst with oxygen vacancies through peroxymonosulfate activation:Role of halogen and α-hydroxyalkyl radicals, Appl. Catal. B Environ. 260 (2020) 118129 [30] Z.W. Seh, J. Kibsgaard, C.F. Dickens, I. Chorkendorff, J.K. Nørskov, T.F. Jaramillo, Combining theory and experiment in electrocatalysis:Insights into materials design, Science 355 (6321) (2017) eaad4998 [31] Y.L. Nie, H. Zhou, S. Tian, X.K. Tian, C. Yang, Y. Li, Y.Y. Tian, Y.X. Wang, Anionic ligands driven efficient ofloxacin degradation over LaMnO3 suspended particles in water due to the enhanced peroxymonosulfate activation, Chem. Eng. J. 427 (2022) 130998 [32] J. Choi, H.I. Kim, J. Lee, H. Lee, Role of nitrite ligands in enhancing sulfate radical production via catalytic peroxymonosulfate activation by cobalt complexes, Sep. Purif. Technol. 279 (2021) 119698 [33] P.J. Duan, Y.F. Qi, S.S. Feng, X.M. Peng, W. Wang, Y. Yue, Y.N. Shang, Y.W. Li, B.Y. Gao, X. Xu, Enhanced degradation of clothianidin in peroxymonosulfate/catalyst system via core-shell FeMn@N-C and phosphate surrounding, Appl. Catal. B Environ. 267 (2020) 118717 [34] P.J. Duan, X.N. Liu, B.H. Liu, M. Akram, Y.W. Li, J.W. Pan, Q.Y. Yue, B.Y. Gao, X. Xu, Effect of phosphate on peroxymonosulfate activation:Accelerating generation of sulfate radical and underlying mechanism, Appl. Catal. B Environ. 298 (2021) 120532 [35] S.Y. Zuo, D.Y. Li, F. Yang, H.M. Xu, M.Z. Huang, Z.Y. Guan, D.S. Xia, Copper oxide/graphitic carbon nitride composite for bisphenol a degradation by boosted peroxymonosulfate activation:Mechanism of Cu-O covalency governs, J. Colloid Interface Sci. 603 (2021) 85-93 [36] Y.J. Yao, H.H. Hu, H.Y. Yin, M.J. Yu, H.D. Zheng, Y.Y. Zhang, S.B. Wang, Phase change on stainless-steel mesh for promoting sulfate radical formation via peroxymonosulfate oxidation, Appl. Catal. B Environ. 278 (2020) 119333 [37] H.R. Li, P.P. Zhang, Y. Guo, J.L. Jia, S.B. Wang, X.G. Duan, F.Y. Cui, S.S. Gao, J.Y. Tian, Iron-doped cuprous oxides toward accelerated nonradical oxidation:Doping induced controlled facet transformation and optimized electronic structure, Chem. Eng. J. 407 (2021) 127172 [38] Y.X. Wang, Z.X. Chi, C.M. Chen, C. Su, D.Q. Liu, Y. Liu, X.G. Duan, S.B. Wang, Facet- and defect-dependent activity of perovskites in catalytic evolution of sulfate radicals, Appl. Catal. B Environ. 272 (2020) 118972 [39] L.P. Wu, B. Li, Y. Li, X.B. Fan, F.B. Zhang, G.L. Zhang, Q. Xia, W.C. Peng, Preferential growth of the cobalt (200) facet in Co@N-C for enhanced performance in a Fenton-like reaction, ACS Catal. 11 (9) (2021) 5532-5543 [40] K.Y.A. Lin, T. Lin, Y.C. Lu, J.T. Lin, Y.F. Lin, Electrospun nanofiber of cobalt titanate perovskite as an enhanced heterogeneous catalyst for activating peroxymonosulfate in water, Chem. Eng. Sci. 168 (2017) 372-379 [41] X.B. Dong, B.X. Ren, X.W. Zhang, X.R. Liu, Z.M. Sun, C.Q. Li, Y. Tan, S.S. Yang, S.L. Zheng, D.D. Dionysiou, Diatomite supported hierarchical 2D CoNi3O4 nanoribbons as highly efficient peroxymonosulfate catalyst for atrazine degradation, Appl. Catal. B Environ. 272 (2020) 118971 [42] Y.M. Liu, C.Q. Wang, W.C. Wang, R.Y. Guo, W. Bi, Y.J. Guo, M.S. Jin, H 2-Induced coalescence of Pt nanoparticles for the preparation of ultrathin Pt nanowires with high-density planar defects, Nanoscale 11 (31) (2019) 14828-14835 [43] F. Yang, B.B. Wang, H. Su, S.J. Zhou, Y. Kong, Thermal-induced surface defective Co/Fe-Co planar hybrid composite nanosheet with enhanced catalytic activity in the Fenton-like reaction, Mater. Chem. Front. 1 (10) (2017) 2065-2077 [44] A.Y. Zhang, N.H. Huang, Y.Y. He, P.C. Zhao, J.W. Feng, Sulfate radicals generation and refractory pollutants removal on defective facet-tailored TiO2 with reduced matrix effects, Chem. Eng. J. 358 (2019) 243-252 [45] P.T. bai, V. Manokaran, P.S. Saiprasad, S. Srinath, Studies on heat and mass transfer limitations in oxidative dehydrogenation of ethane over Cr2O3/Al2O3 catalyst, Procedia Eng. 127 (2015) 1338-1345 [46] J.H. Sun, C. Mu, Y. Li, Y.J. Zhao, S.P. Wang, X.B. Ma, The hydrotreatment of n-C16 over Pt/HPMo/SBA-15 and the investigation of diffusion effect using a novel W-P criterion, Aiche J. 67 (9) (2021) e17330 [47] S.J. Yang, X.J. Qiu, P.K. Jin, M. Dzakpasu, X.C. Wang, Q.H. Zhang, L. zhang, L. Yang, D.H. Ding, W.D. Wang, K. Wu, MOF-templated synthesis of CoFe2O4 nanocrystals and its coupling with peroxymonosulfate for degradation of bisphenol A, Chem. Eng. J. 353 (2018) 329-339 [48] Q.Q. Li, J.D. Liu, Z.J. Ren, Z.K. Wang, F.F. Mao, H. Wu, R. Zhou, Y.Q. Bu, Catalytic degradation of antibiotic by Co nanoparticles encapsulated in nitrogen-doped nanocarbon derived from Co-MOF for promoted peroxymonosulfate activation, Chem. Eng. J. 429 (2022) 132269 [49] Muhammad A, Klu P K, Wang C, et al. Metal-organic framework-derived hollow Co3O4/Carbon as efficient catalyst for peroxymonosulfate activation, Chem. Eng. J. 363 (2019) 234-246 [50] H.D. Chen, J.K. Xu, J.Q. Wei, P.F. Wang, Y.B. Han, J.C. Xu, B. Hong, H.X. Jin, D.F. Jin, X.L. Peng, J. Li, Y.T. Yang, H.L. Ge, X.Q. Wang, Mesoporous CoFe2O4 nanowires:Nanocasting synthesis, magnetic separation and enhanced catalytic degradation for ciprofloxacin, J. Phys. Chem. Solids 132 (2019) 138-144 [51] L. Li, H. Wu, H.J. Chen, J.Q. Zhang, X.Y. Xu, S.J. Wang, S.B. Wang, H.Q. Sun, Heterogeneous activation of peroxymonosulfate by hierarchically porous cobalt/iron bimetallic oxide nanosheets for degradation of phenol solutions, Chemosphere 256 (2020) 127160 [52] Q.R. Liu, X.G. Duan, H.Q. Sun, Y.X. Wang, M.O. Tade, S.B. Wang, Size-tailored porous spheres of manganese oxides for catalytic oxidation via peroxymonosulfate activation, J. Phys. Chem. C 120 (30) (2016) 16871-16878 [53] J. Cao, Z.H. Yang, W.P. Xiong, Y.Y. Zhou, Y. Wu, M.Y. Jia, H.H. Peng, Y.X. Yuan, Y.P. Xiang, C.Y. Zhou, Three-dimensional MOF-derived hierarchically porous aerogels activate peroxymonosulfate for efficient organic pollutants removal, Chem. Eng. J. 427 (2022) 130830 [54] X.B. Dong, Z.T. Chen, A.D. Tang, D.D. Dionysiou, H.M. Yang, Mineral modulated single atom catalyst for effective water treatment, Adv. Funct. Mater. 32 (16) (2022) 2111565 [55] Y. Tan, S.L. Zheng, Y.H. Di, C.Q. Li, R.Z. Bian, Z.M. Sun, Diatomite supported nano zero valent iron with 3D network for peroxymonosulfate activation in efficient degradation of bisphenol A, J. Mater. Sci. Technol. 95 (2021) 57-69 [56] C.Q. Li, Y. Huang, X.B. Dong, Z.M. Sun, X.D. Duan, B.X. Ren, S.L. Zheng, D.D. Dionysiou, Highly efficient activation of peroxymonosulfate by natural negatively-charged kaolinite with abundant hydroxyl groups for the degradation of atrazine, Appl. Catal. B Environ. 247 (2019) 10-23 [57] X.B. Dong, B.X. Ren, Z.M. Sun, C.Q. Li, X.W. Zhang, M.H. Kong, S.L. Zheng, D.D. Dionysiou, Monodispersed CuFe2O4 nanoparticles anchored on natural kaolinite as highly efficient peroxymonosulfate catalyst for bisphenol A degradation, Appl. Catal. B Environ. 253 (2019) 206-217 [58] K.Y.A. Lin, Y.C. Chen, T. Lin, H.T. Yang, Lanthanum cobaltite perovskite supported on zirconia as an efficient heterogeneous catalyst for activating Oxone in water, J. Colloid Interface Sci. 497 (2017) 325-332 [59] J.X. Wu, G. Cagnetta, B. Wang, Y.Z. Cui, S.B. Deng, Y.J. Wang, J. Huang, G. Yu, Efficient degradation of carbamazepine by organo-montmorillonite supported nCoFe2O4-activated peroxymonosulfate process, Chem. Eng. J. 368 (2019) 824-836 [60] Y. Wei, R.K. Liu, H.F. Liu, Y.T. Sun, G.G. Liu, Z.H. Wang, Y.F. Luo, X.D. Tang, X. Zhang, J.B. Hu, Controllable one-dimensional growth of metal-organic frameworks based on uncarved halloysite nanotubes as high-efficiency solar-Fenton catalysts, J. Phys. Chem. C 125 (46) (2021) 25565-25579 [61] X.C. Dou, Y.G. Chen, H.F. Shi, CuBi2O4/BiOBr composites promoted PMS activation for the degradation of tetracycline:S-scheme mechanism boosted Cu2+/Cu+ cycle, Chem. Eng. J. 431 (2022) 134054 [62] P.C. Cai, J. Zhao, X.H. Zhang, T.Y. Zhang, G.M. Yin, S. Chen, C.L. Dong, Y.C. Huang, Y.Y. Sun, D.J. Yang, B.S. Xing, Synergy between cobalt and nickel on NiCo2O4 nanosheets promotes peroxymonosulfate activation for efficient norfloxacin degradation, Appl. Catal. B Environ. 306 (2022) 121091 [63] W.X. Wang, Y. Liu, Y.F. Yue, H.H. Wang, G. Cheng, C.Y. Gao, C.L. Chen, Y.J. Ai, Z. Chen, X.K. Wang, The confined interlayer growth of ultrathin two-dimensional Fe3O4 nanosheets with enriched oxygen vacancies for peroxymonosulfate activation, ACS Catal. 11 (17) (2021) 11256-11265 [64] H. Xia, Z. Zhang, J. Liu, Y. Deng, D.X. Zhang, P.Y. Du, S.T. Zhang, X.Q. Lu, Novel Fe-Mn-O nanosheets/wood carbon hybrid with tunable surface properties as a superior catalyst for Fenton-like oxidation, Appl. Catal. B Environ. 259 (2019) 118058 [65] M. Zhang, C.M. Xiao, X. Yan, S.S. Chen, C.H. Wang, R. Luo, J.W. Qi, X.Y. Sun, L.J. Wang, J.S. Li, Efficient removal of organic pollutants by metal-organic framework derived Co/C yolk-shell nanoreactors:Size-exclusion and confinement effect, Environ. Sci. Technol. 54 (16) (2020) 10289-10300 [66] Y. Chen, G. Zhang, H.J. Liu, J.H. Qu, Confining free radicals in close vicinity to contaminants enables ultrafast Fenton-like processes in the interspacing of MoS 2 membranes, Angew. Chem. Int. Ed Engl. 58 (24) (2019) 8134-8138 [67] M. Zhang, C.H. Wang, C. Liu, R. Luo, J.S. Li, X.Y. Sun, J.Y. Shen, W.Q. Han, L.J. Wang, Metal-organic framework derived Co3O4/C@SiO2 yolk-shell nanoreactors with enhanced catalytic performance, J. Mater. Chem. A 6 (24) (2018) 11226-11235 [68] C.Q. Zhu, Y. Nie, S.F. Zhao, Z.W. Fan, F.Q. Liu, A.M. Li, Constructing surface micro-electric fields on hollow single-atom cobalt catalyst for ultrafast and anti-interference advanced oxidation, Appl. Catal. B Environ. 305 (2022) 121057 [69] L.F. Zhang, L.H. Zhang, Y.L. Sun, B. Jiang, Porous ZrO 2 encapsulated perovskite composite oxide for organic pollutants removal:Enhanced catalytic efficiency and suppressed metal leaching, J. Colloid Interface Sci. 596 (2021) 455-467 [70] S.W. Zhang, X.H. Ren, X.Z. Zhou, H.H. Gao, X. Wang, J.Z. Huang, X.J. Xu, Hierarchical multi-active component yolk-shell nanoreactors as highly active peroxymonosulfate activator for ciprofloxacin degradation, J. Colloid Interface Sci. 605 (2022) 766-778 [71] Y.H. Zhao, B.C. Huang, J. Jiang, W.J. Xia, G.F. Li, N.S. Fan, R.C. Jin, Polyphenol-metal network derived nanocomposite to catalyze peroxymonosulfate decomposition for dye degradation, Chemosphere 244 (2020) 125577 [72] Z.L. Wu, Y.P. Wang, Z.K. Xiong, Z.M. Ao, S.Y. Pu, G. Yao, B. Lai, Core-shell magnetic Fe3O4@Zn/Co-ZIFs to activate peroxymonosulfate for highly efficient degradation of carbamazepine, Appl. Catal. B Environ. 277 (2020) 119136 [73] J.S. Qian, X. Gao, B.C. Pan, Nanoconfinement-mediated water treatment:From fundamental to application, Environ. Sci. Technol. 54 (14) (2020) 8509-8526 [74] C.Q. Zhu, S.F. Zhao, Z.W. Fan, H.D. Wu, F.Q. Liu, Z.X. Chen, A.M. Li, Confinement of CoP nanoparticles in nitrogen-doped yolk-shell porous carbon polyhedron for ultrafast catalytic oxidation, Adv. Funct. Mater. 30 (49) (2020) 2003947 [75] Y.Y. Ma, B.X. Ji, X.F. Lv, D.B. Xiong, X.S. Zhao, H.J. Xie, Z.H. Zhang, Confined heterogeneous catalysis by boron nitride-Co3O4 nanosheet cluster for peroxymonosulfate oxidation toward ranitidine removal, Chem. Eng. J. 435 (2022) 135126 [76] H.R. Song, D.Y. Zu, C.P. Li, R. Zhou, Y.W. Wang, W. Zhang, S.T. Pan, Y. Cai, Z. Li, Y.M. Shen, J. Ma, Ultrafast activation of peroxymonosulfate by reduction of trace Fe3+ with Ti3C2 MXene under neutral and alkaline conditions:Reducibility and confinement effect, Chem. Eng. J. 423 (2021) 130012 [77] L. Yu, G. Zhang, C.L. Liu, H.C. Lan, H.J. Liu, J.H. Qu, Interface stabilization of undercoordinated iron centers on manganese oxides for nature-inspired peroxide activation, ACS Catal. 8 (2) (2018) 1090-1096 [78] L. Yang, R.M. Liu, L.F. Jiao, Electronic redistribution:Construction and modulation of interface engineering on CoP for enhancing overall water splitting, Adv. Funct. Mater. 30 (14) (2020) 1909618 [79] K.L. Pan, C.Z. Yang, J.P. Hu, W.L. Yang, B.C. Liu, J.K. Yang, S. Liang, K.K. Xiao, H.J. Hou, Oxygen vacancy mediated surface charge redistribution of Cu-substituted LaFeO3 for degradation of bisphenol A by efficient decomposition of H2O2, J. Hazard. Mater. 389 (2020) 122072 [80] J.H. Wei, D.D. Han, J.T. Bi, J.B. Gong, Fe-doped ilmenite CoTiO3 for antibiotic removal:Electronic modulation and enhanced activation of peroxymonosulfate, Chem. Eng. J. 423 (2021) 130165 [81] P.D. Hu, M.C. Long, Cobalt-catalyzed sulfate radical-based advanced oxidation:A review on heterogeneous catalysts and applications, Appl. Catal. B Environ. 181 (2016) 103-117 [82] S.Q. Li, Y.J. Hou, Q.M. Chen, X.D. Zhang, H.Y. Cao, Y.M. Huang, Promoting active sites in MOF-derived homobimetallic hollow nanocages as a high-performance multifunctional nanozyme catalyst for biosensing and organic pollutant degradation, ACS Appl. Mater. Interfaces 12 (2) (2020) 2581-2590 [83] P.P. Gao, X.K. Tian, W. Fu, Y.X. Wang, Y.L. Nie, C. Yang, Y. Deng, Copper in LaMnO3 to promote peroxymonosulfate activation by regulating the reactive oxygen species in sulfamethoxazole degradation, J. Hazard. Mater. 411 (2021) 125163 [84] Y.Y. Yang, P.P. Zhang, K.S. Hu, X.G. Duan, Y.X. Ren, H.Q. Sun, S.B. Wang, Sustainable redox processes induced by peroxymonosulfate and metal doping on amorphous manganese dioxide for nonradical degradation of water contaminants, Appl. Catal. B Environ. 286 (2021) 119903 [85] H.T. Li, Q. Gao, G.S. Wang, B. Han, K.S. Xia, J.P. Wu, C.G. Zhou, J. Dong, Postsynthetic incorporation of catalytically inert Al into Co3O4 for peroxymonosulfate activation and insight into the boosted catalytic performance, Chem. Eng. J. 426 (2021) 131292 [86] C. Xie, D.F. Yan, H. Li, S.Q. Du, W. Chen, Y.Y. Wang, Y.Q. Zou, R. Chen, S.Y. Wang, Defect chemistry in heterogeneous catalysis:Recognition, understanding, and utilization, ACS Catal. 10 (19) (2020) 11082-11098 [87] K. Wang, C. Han, Z.P. Shao, J.S. Qiu, S.B. Wang, S.M. Liu, Perovskite oxide catalysts for advanced oxidation reactions, Adv. Funct. Mater. 31 (30) (2021) 2102089 [88] K. Yu, L.L. Lou, S.X. Liu, W.Z. Zhou, Asymmetric oxygen vacancies:The intrinsic redox active sites in metal oxide catalysts, Adv. Sci. (Weinh) 7 (2) (2019) 1901970 [89] S. Ndayiragije, Y.F. Zhang, Y.Q. Zhou, Z. Song, N. Wang, T. Majima, L.H. Zhu, Mechanochemically tailoring oxygen vacancies of MnO2 for efficient degradation of tetrabromobisphenol A with peroxymonosulfate, Appl. Catal. B Environ. 307 (2022) 121168 [90] X.X. Long, C.P. Feng, D.H. Ding, N. Chen, S.J. Yang, H.Y. Chen, X.M. Wang, R.Z. Chen, Oxygen vacancies-enriched CoFe2O4 for peroxymonosulfate activation:The reactivity between radical-nonradical coupling way and bisphenol A, J. Hazard. Mater. 418 (2021) 126357 [91] L. Yang, Y. Jiao, D.Y. Jia, Y.Z. Li, C.H. Liao, Role of oxygen vacancies and Sr sites in SrCo0.8Fe0.2O3 perovskite on efficient activation of peroxymonosulfate towards the degradation of aqueous organic pollutants, Chin. J. Chem. Eng. 40 (2021) 269-277 [92] J. Yu, T. Zeng, H. Wang, H. Zhang, Y.P. Sun, L. Chen, S. Song, L. Li, H.X. Shi, Oxygen-defective MnO2-x rattle-type microspheres mediated singlet oxygen oxidation of organics by peroxymonosulfate activation, Chem. Eng. J. 394 (2020) 124458 [93] P. Li, Y.N. Lin, S.E. Zhao, Y. Fu, W.Q. Li, R. Chen, S.H. Tian, Defect-engineered Co3O4 with porous multishelled hollow architecture enables boosted advanced oxidation processes, Appl. Catal. B Environ. 298 (2021) 120596 [94] E.T. Yun, S.W. Park, H.J. Shin, H. Lee, D.W. Kim, J. Lee, Peroxymonosulfate activation by carbon-encapsulated metal nanoparticles:Switching the primary reaction route and increasing chemical stability, Appl. Catal. B Environ. 279 (2020) 119360 [95] Y.N. Shang, X. Xu, B.Y. Gao, S.B. Wang, X.G. Duan, Single-atom catalysis in advanced oxidation processes for environmental remediation, Chem. Soc. Rev. 50 (8) (2021) 5281-5322 [96] J. Miao, Y. Zhu, J.Y. Lang, J.Z. Zhang, S.X. Cheng, B.X. Zhou, L.Z. Zhang, P.J.J. Alvarez, M.C. Long, Spin-state-dependent peroxymonosulfate activation of single-atom M-N moieties via a radical-free pathway, ACS Catal. 11 (15) (2021) 9569-9577 [97] C. Su, X.G. Duan, J. Miao, Y.J. Zhong, W. Zhou, S.B. Wang, Z.P. Shao, Mixed conducting perovskite materials as superior catalysts for fast aqueous-phase advanced oxidation:A mechanistic study, ACS Catal. 7 (1) (2017) 388-397 [98] Q.D. Qin, T. Liu, J.X. Zhang, R. Wei, S.J. You, Y. Xu, Facile synthesis of oxygen vacancies enriched α-Fe2O3 for peroxymonosulfate activation:A non-radical process for sulfamethoxazole degradation, J. Hazard. Mater. 419 (2021) 126447 [99] J. Miao, X.G. Duan, J. Li, J. Dai, B. Liu, S.B. Wang, W. Zhou, Z.P. Shao, Boosting performance of lanthanide magnetism perovskite for advanced oxidation through lattice doping with catalytically inert element, Chem. Eng. J. 355 (2019) 721-730 [100] J. Suntivich, H.A. Gasteiger, N. Yabuuchi, H. Nakanishi, J.B. Goodenough, Y. Shao-Horn, Design principles for oxygen-reduction activity on perovskite oxide catalysts for fuel cells and metal-air batteries, Nat. Chem. 3 (7) (2011) 546-550 [101] J.H. Hu, Y. Li, Y.B. Zou, L. Lin, B. Li, X.Y. Li, Transition metal single-atom embedded on N-doped carbon as a catalyst for peroxymonosulfate activation:A DFT study, Chem. Eng. J. 437 (2022) 135428 [102] S.C. Mei, G.X. Huang, X.H. Rui, L. Li, M.K. Ke, X.Q. Pan, Z.H. Wang, X.D. Yang, H.Q. Yu, Y. Yu, Sequential assembly tailored interior of porous carbon spheres for boosted water decontamination through peroxymonosulfate activation, Adv. Funct. Mater. 32 (18) (2022) 2111184 [103] Y.J. Yao, H. Chen, C. Lian, F.Y. Wei, D.W. Zhang, G.D. Wu, B.J. Chen, S.B. Wang, Fe, Co, Ni nanocrystals encapsulated in nitrogen-doped carbon nanotubes as Fenton-like catalysts for organic pollutant removal, J. Hazard. Mater. 314 (2016) 129-139 [104] X.G. Duan, J. Kang, W.J. Tian, H.Y. Zhang, S.H. Ho, Y.A. Zhu, Z.M. Ao, H.Q. Sun, S.B. Wang, Interfacial-engineered cobalt@carbon hybrids for synergistically boosted evolution of sulfate radicals toward green oxidation, Appl. Catal. B Environ. 256 (2019) 117795 [105] Z.G. Zhu, Y. Xu, B.Y. Qi, G.F. Zeng, P. Wu, G.J. Liu, W. Wang, F.Y. Cui, Y.H. Sun, Adsorption-intensified degradation of organic pollutants over bifunctional α-Fe@carbon nanofibres, Environ. Sci.:Nano 4 (2) (2017) 302-306 [106] M.Q. Li, R. Luo, C.H. Wang, M. Zhang, W.X. Zhang, P.K. Klu, Y.B. Yan, J.W. Qi, X.Y. Sun, L.J. Wang, J.S. Li, Iron-tannic modified cotton derived Fe0/graphitized carbon with enhanced catalytic activity for bisphenol A degradation, Chem. Eng. J. 372 (2019) 774-784 [107] B.T. Qiao, A.Q. Wang, X.F. Yang, L.F. Allard, Z. Jiang, Y.T. Cui, J.Y. Liu, J. Li, T. Zhang, Single-atom catalysis of CO oxidation using Pt1/FeOx, Nat. Chem. 3 (8) (2011) 634-641 [108] X.F. Yang, A.Q. Wang, B.T. Qiao, J. Li, J.Y. Liu, T. Zhang, Single-atom catalysts:A new frontier in heterogeneous catalysis, Acc. Chem. Res. 46 (8) (2013) 1740-1748 [109] S.M. Zhou, X.B. Miao, X. Zhao, C. Ma, Y.H. Qiu, Z.P. Hu, J.Y. Zhao, L. Shi, J. Zeng, Engineering electrocatalytic activity in nanosized perovskite cobaltite through surface spin-state transition, Nat. Commun. 7 (2016) 11510 [110] W.H. Zhong, Y. Qiu, H.J. Shen, X.J. Wang, J.Y. Yuan, C.Y. Jia, S.W. Bi, J. Jiang, Electronic spin moment as a catalytic descriptor for Fe single-atom catalysts supported on C2N, J. Am. Chem. Soc. 143 (11) (2021) 4405-4413 [111] P.J. Duan, J.W. Pan, W.Y. Du, Q.Y. Yue, B.Y. Gao, X. Xu, Activation of peroxymonosulfate via mediated electron transfer mechanism on single-atom Fe catalyst for effective organic pollutants removal, Appl. Catal. B Environ. 299 (2021) 120714 [112] J. Chen, G.Q. Zou, W.T. Deng, Z.D. Huang, X. Gao, C. Liu, S.Y. Yin, H.Q. Liu, X.L. Deng, Y. Tian, J.Y. Li, C.W. Wang, D. Wang, H.W. Wu, L. Yang, H.S. Hou, X.B. Ji, Pseudo-bonding and electric-field harmony for Li-rich Mn-based oxide cathode, Adv. Funct. Mater. 30 (46) (2020) 2004302 [113] Y.J. Yao, H.Y. Yin, M.X. Gao, Y. Hu, H.H. Hu, M.J. Yu, S.B. Wang, Electronic structure modulation of covalent organic frameworks by single-atom Fe doping for enhanced oxidation of aqueous contaminants, Chem. Eng. Sci. 209 (2019) 115211 [114] X.N. Li, X. Huang, S.B. Xi, S. Miao, J. Ding, W.Z. Cai, S. Liu, X.L. Yang, H.B. Yang, J.J. Gao, J.H. Wang, Y.Q. Huang, T. Zhang, B. Liu, Single cobalt atoms anchored on porous N-doped graphene with dual reaction sites for efficient Fenton-like catalysis, J. Am. Chem. Soc. 140 (39) (2018) 12469-12475 [115] J. Li, Y.J. Wan, Y.J. Li, G. Yao, B. Lai, Surface Fe(III)/Fe(II) cycle promoted the degradation of atrazine by peroxymonosulfate activation in the presence of hydroxylamine, Appl. Catal. B Environ. 256 (2019) 117782 [116] D. Oh, C.S. Lee, Y.G. Kang, Y.S. Chang, Hydroxylamine-assisted peroxymonosulfate activation using cobalt ferrite for sulfamethoxazole degradation, Chem. Eng. J. 386 (2020) 123751 [117] C.Q. Tan, X. Lu, X.X. Cui, X.C. Jian, Z.X. Hu, Y.J. Dong, X.Y. Liu, J. Huang, L. Deng, Novel activation of peroxymonosulfate by an easily recyclable VC@Fe3O4 nanoparticles for enhanced degradation of sulfadiazine, Chem. Eng. J. 363 (2019) 318-328 [118] J.Q. Sun, L.F. Liu, F.L. Yang, A visible-light-driven photocatalytic fuel cell/peroxymonosulfate (PFC/PMS) system using blue TiO2 nanotube arrays (TNA) anode and Cu-Co-WO3 cathode for enhanced oxidation of organic pollutant and ammonium nitrogen in real seawater, Appl. Catal. B Environ. 308 (2022) 121215 [119] Y.X. He, J. Qian, P.F. Wang, J. Wu, B.H. Lu, S.J. Tang, P. Gao, Acceleration of levofloxacin degradation by combination of multiple free radicals via MoS2 anchored in manganese ferrite doped perovskite activated PMS under visible light, Chem. Eng. J. 431 (2022) 133933 [120] J. Li, W.F. Huang, L.X. Yang, G. Gou, C.Y. Zhou, L.G. Li, N.W. Li, C. Liu, B. Lai, Novel Ag3PO4 modified tubular carbon nitride with visible-light-driven peroxymonosulfate activation:A wide pH tolerance and reaction mechanism, Chem. Eng. J. 432 (2022) 133588 [121] K.X. Wei, A. Armutlulu, Y.X. Wang, G. Yao, R.Z. Xie, B. Lai, Visible-light-driven removal of atrazine by durable hollow core-shell TiO2@LaFeO3 heterojunction coupling with peroxymonosulfate via enhanced electron-transfer, Appl. Catal. B Environ. 303 (2022) 120889 [122] L.Q. Yu, Y.H. Zhao, H. Wang, F. Jin, S.L. Chen, T.E. Wen, C.S. He, B.C. Huang, R.C. Jin, Surface oxygen vacancies formation on Zn2SnO4 for bisphenol-A degradation under visible light:The tuning effect by peroxymonosulfate, J. Hazard. Mater. 426 (2022) 127828 [123] H.Y. Liu, C. Li, T. Zhang, Z.H. Xu, Y.J. Li, B. Li, S.L. Tian, UV facilitated synergistic effects of polymetals in ore catalyst on peroxymonosulfate activation:Implication for the degradation of bisphenol S, Chem. Eng. J. 431 (2022) 133989 [124] Y.X. Pang, H.Y. Lei, Degradation of p-nitrophenol through microwave-assisted heterogeneous activation of peroxymonosulfate by manganese ferrite, Chem. Eng. J. 287 (2016) 585-592 [125] Y.X. Pang, Y. Ruan, Y. Feng, Z.H. Diao, K. Shih, L.A. Hou, D.Y. Chen, L.J. Kong, Ultrasound assisted zero valent iron corrosion for peroxymonosulfate activation for Rhodamine-B degradation, Chemosphere 228 (2019) 412-417 [126] F. Miao, Z.H. Liu, X. Kang, C. Cheng, X.Y. Mao, R.M. Li, H. Lin, H. Zhang, Electro-enhanced heterogeneous activation of peroxymonosulfate via acceleration of Fe(III)/Fe(II) redox cycle on Fe-B catalyst, Electrochimica Acta 377 (2021) 138073 [127] H.R. Zhang, X.S. Wang, Y.C. Li, K.C. Zuo, C. Lyu, A novel MnOOH coated nylon membrane for efficient removal of 2, 4-dichlorophenol through peroxymonosulfate activation, J. Hazard. Mater. 414 (2021) 125526 [128] C.C. Dong, Z.X. Zheng, M.A.H. Badsha, J.H. He, I.M.C. Lo, Visible-light-driven peroxymonosulfate activation in photo-electrocatalytic system using hollow-structured Pt@CeO 2@MoS 2 photoanode for the degradation of pharmaceuticals and personal care products, Environ. Int. 154 (2021) 106572 [129] H.B. Song, L. Liu, B.X. Feng, H.Z. Wang, M. Xiao, H.J. Gai, Y.B. Tang, X.F. Qu, T.T. Huang, Modified g-C3N4 derived from ionic liquid and urea for promoting visible-light photodegradation of organic pollutants, Chin. J. Chem. Eng. 40 (2021) 293-303 [130] Q.S. Li, H. Lu, X.L. Wang, Z.Q. Hong, Z. Fu, X.X. Liu, J.T. Zhou, Visible-light-driven N and Fe co-doped carbon dots for peroxymonosulfate activation and highly efficient aminopyrine photodegradation, Chem. Eng. J. 443 (2022) 136473 [131] Z.Y. Jiang, X.Z. Liang, Y.Y. Liu, T. Jing, Z.Y. Wang, X.Y. Zhang, X.Y. Qin, Y. Dai, B.B. Huang, Enhancing visible light photocatalytic degradation performance and bactericidal activity of BiOI via ultrathin-layer structure, Appl. Catal. B Environ. 211 (2017) 252-257 [132] D. Kandi, S. Martha, A. Thirumurugan, K.M. Parida, Modification of BiOI microplates with CdS QDs for enhancing stability, optical property, electronic behavior toward rhodamine B decolorization, and photocatalytic hydrogen evolution, J. Phys. Chem. C 121 (9) (2017) 4834-4849 [133] Y.F. Lv, Y. Liu, J. Wei, M.Y. Li, D.Y. Xu, B. Lai, Bisphenol S degradation by visible light assisted peroxymonosulfate process based on BiOI/B4C photocatalysts with Z-scheme heterojunction, Chem. Eng. J. 417 (2021) 129188 [134] C.D. Qi, X.T. Liu, C.Y. Lin, H.J. Zhang, X.W. Li, J. Ma, Activation of peroxymonosulfate by microwave irradiation for degradation of organic contaminants, Chem. Eng. J. 315 (2017) 201-209 [135] Y. Qi, Q. Zuo, Y.Q. Mei, T.J. Yao, J. Wu, Porous NiCo2O4 sheet catalysts for the microwave-assisted Fenton reaction, ACS Appl. Nano Mater. 3 (7) (2020) 7152-7160 [136] H.S. Ku, E. Siores, A. Taube, J.A.R. Ball, Productivity improvement through the use of industrial microwave technologies, Comput. Ind. Eng. 42 (2-4) (2002) 281-290 [137] S. Li, G.S. Zhang, P. Wang, H.S. Zheng, Y.J. Zheng, Microwave-enhanced Mn-Fenton process for the removal of BPA in water, Chem. Eng. J. 294 (2016) 371-379 [138] S.Y. Zuo, D.Y. Li, H.M. Xu, D.S. Xia, An integrated microwave-ultraviolet catalysis process of four peroxides for wastewater treatment:Free radical generation rate and mechanism, Chem. Eng. J. 380 (2020) 122434 [139] L.M. Hu, G.S. Zhang, M. Liu, Q. Wang, P. Wang, Optimization of the catalytic activity of a ZnCo2O4 catalyst in peroxymonosulfate activation for bisphenol A removal using response surface methodology, Chemosphere 212 (2018) 152-161 [140] H. Einaga, Y. Nasu, M. Oda, H. Saito, Catalytic performances of perovskite oxides for CO oxidation under microwave irradiation, Chem. Eng. J. 283 (2016) 97-104 [141] X.H. Lu, W. Qiu, J.L. Peng, H.D. Xu, da Wang, Y. Cao, W. Zhang, J. Ma, A review on additives-assisted ultrasound for organic pollutants degradation, J. Hazard. Mater. 403 (2021) 123915 [142] L.J. Xu, W. Chu, P.H. Lee, J. Wang, The mechanism study of efficient degradation of hydrophobic nonylphenol in solution by a chemical-free technology of sonophotolysis, J. Hazard. Mater. 308 (2016) 386-393 [143] Y.G. Adewuyi, Sonochemistry:Environmental science and engineering applications, Ind. Eng. Chem. Res. 40 (22) (2001) 4681-4715 [144] J. Liu, J.H. Zhou, Z.X. Ding, Z.W. Zhao, X. Xu, Z.D. Fang, Ultrasound irritation enhanced heterogeneous activation of peroxymonosulfate with Fe3O4 for degradation of azo dye, Ultrason. Sonochem. 34 (2017) 953-959 [145] L.J. Xu, X.T. Wang, Y. Sun, H. Gong, M.Z. Guo, X.M. Zhang, L. Meng, L. Gan, Mechanistic study on the combination of ultrasound and peroxymonosulfate for the decomposition of endocrine disrupting compounds, Ultrason. Sonochemistry 60 (2020) 104749 [146] L.Y. Xu, X. Zhou, G.L. Wang, L. Zhou, X.K. Sun, Catalytic degradation of acid red B in the system of ultrasound/peroxymonosulfate/Fe3O4, Sep. Purif. Technol. 276 (2021) 119417 [147] W. Li, R.L. Xiao, H. Lin, K. Yang, W. Li, K.C. He, L.H. Yang, M.J. Pu, M.Y. Li, S.H. Lv, Electro-activation of peroxymonosulfate by a graphene oxide/iron oxide nanoparticle-doped Ti4O7 ceramic membrane:Mechanism of singlet oxygen generation in the removal of 1, 4-dioxane, J. Hazard. Mater. 424 (2022) 127342 [148] J. Yao, Y. Zhang, Z.K. Dong, Enhanced degradation of contaminants of emerging concern by electrochemically activated peroxymonosulfate:Performance, mechanism, and influencing factors, Chem. Eng. J. 415 (2021) 128938 [149] J. Li, L.X. Yang, B. Lai, C. Liu, Y.X. He, G. Yao, N.W. Li, Recent progress on heterogeneous Fe-based materials induced persulfate activation for organics removal, Chem. Eng. J. 414 (2021) 128674 [150] Z. Liu, H.J. Ding, C. Zhao, T. Wang, P. Wang, D.D. Dionysiou, Electrochemical activation of peroxymonosulfate with ACF cathode:Kinetics, influencing factors, mechanism, and application potential, Water Res. 159 (2019) 111-121 [151] B.C. Hodges, E.L. Cates, J.H. Kim, Challenges and prospects of advanced oxidation water treatment processes using catalytic nanomaterials, Nat. Nanotechnol. 13 (8) (2018) 642-650 [152] Y.P. Bao, W.J. Lee, T.T. Lim, R. Wang, X. Hu, Pore-functionalized ceramic membrane with isotropically impregnated cobalt oxide for sulfamethoxazole degradation and membrane fouling elimination:Synergistic effect between catalytic oxidation and membrane separation, Appl. Catal. B Environ. 254 (2019) 37-46 [153] N. Li, G.Y. Chen, J.H. Zhao, B.B. Yan, Z.J. Cheng, L.J. Meng, V. Chen, Self-cleaning PDA/ZIF-67@PP membrane for dye wastewater remediation with peroxymonosulfate and visible light activation, J. Membr. Sci. 591 (2019) 117341 [154] S.X. Wang, J.Y. Tian, Q. Wang, F. Xiao, S.S. Gao, W.X. Shi, F.Y. Cui, Development of CuO coated ceramic hollow fiber membrane for peroxymonosulfate activation:A highly efficient singlet oxygen-dominated oxidation process for bisphenol a degradation, Appl. Catal. B Environ. 256 (2019) 117783 [155] C.X. Yu, Z.K. Xiong, H.Y. Zhou, P. Zhou, H. Zhang, R.F. Huang, G. Yao, B. Lai, Marriage of membrane filtration and sulfate radical-advanced oxidation processes (SR-AOPs) for water purification:Current developments, challenges and prospects, Chem. Eng. J. 433 (2022) 133802 [156] W.T. Zheng, Y.B. Liu, W. Liu, H.D. Ji, F. Li, C.S. Shen, X.F. Fang, X. Li, X.G. Duan, A novel electrocatalytic filtration system with carbon nanotube supported nanoscale zerovalent copper toward ultrafast oxidation of organic pollutants, Water Res. 194 (2021) 116961 [157] Y.F. Gao, N. Yan, C.X. Jiang, C.Y. Xu, S.Y. Yu, P. Liang, X.Y. Zhang, S. Liang, X. Huang, Filtration-enhanced highly efficient photocatalytic degradation with a novel electrospun rGO@TiO2 nanofibrous membrane:Implication for improving photocatalytic efficiency, Appl. Catal. B Environ. 268 (2020) 118737 [158] N. Ma, Y.B. Zhang, X. Quan, X.F. Fan, H.M. Zhao, Performing a microfiltration integrated with photocatalysis using an Ag-TiO2/HAP/Al2O3 composite membrane for water treatment:Evaluating effectiveness for humic acid removal and anti-fouling properties, Water Res. 44 (20) (2010) 6104-6114 [159] L.M. Jin, S.J. You, X.G. Duan, Y. Yao, J.M. Yang, Y.B. Liu, Peroxymonosulfate activation by Fe3O4-MnO2/CNT nanohybrid electroactive filter towards ultrafast micropollutants decontamination:Performance and mechanism, J. Hazard. Mater. 423 (2022) 127111 [160] J.H. Wei, J.T. Bi, L.F. Zhang, D.D. Han, J.B. Gong, Gravity-driven Fe-doped CoTiO3/SiO2 fiber membrane with open catalytic network:Activation of peroxymonosulfate and efficient pollutants removal, Sep. Purif. Technol. 280 (2022) 119975 [161] N. Li, X.K. Lu, M.T. He, X.G. Duan, B.B. Yan, G.Y. Chen, S.B. Wang, Catalytic membrane-based oxidation-filtration systems for organic wastewater purification:A review, J. Hazard. Mater. 414 (2021) 125478 [162] X.D. Zhuang, Y.Y. Mai, D.Q. Wu, F. Zhang, X.L. Feng, Two-dimensional soft nanomaterials:A fascinating world of materials, Adv. Mater. 27 (3) (2015) 403-427 [163] J. Shen, G.P. Liu, Y. Han, W.Q. Jin, Artificial channels for confined mass transport at the sub-nanometre scale, Nat. Rev. Mater. 6 (4) (2021) 294-312 [164] Z. Wang, C.C. Meng, W. Zhang, S.Z. Zhang, B. Yang, Z.H. Zhang, Honeycomb-like holey Co3O4 membrane triggered peroxymonosulfate activation for rapid degradation of organic contaminants, Sci. Total. Environ. 814 (2022) 152698 [165] Y.T. Liu, Q. Lin, Y.Q. Guo, J. Zhao, X.S. Luo, H. Zhang, G.B. Li, H. Liang, The nitrogen-doped multi-walled carbon nanotubes modified membrane activated peroxymonosulfate for enhanced degradation of organics and membrane fouling mitigation in natural waters treatment, Water Res. 209 (2022) 117960 [166] E. Appiani, S.E. Page, K. McNeill, On the use of hydroxyl radical kinetics to assess the number-average molecular weight of dissolved organic matter, Environ. Sci. Technol. 48 (20) (2014) 11794-11802 [167] S.N. Zhang, V. Rouge, L. Gutierrez, J.P. Croue, Reactivity of chromophoric dissolved organic matter (CDOM) to sulfate radicals:Reaction kinetics and structural transformation, Water Res. 163 (2019) 114846 [168] X.H. Wu, K. Rigby, D.H. Huang, T. Hedtke, X.X. Wang, M.W. Chung, S. Weon, E. Stavitski, J.H. Kim, Single-atom cobalt incorporated in a 2D graphene oxide membrane for catalytic pollutant degradation, Environ. Sci. Technol. 56 (2) (2022) 1341-1351 |
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