[1] H.Y. Zhou, Q. Sun, X. Wang, L.L. Wang, J. Chen, J.D. Zhang, X.H. Lu, Removal of 2,4-dichlorophenol from contaminated soil by a heterogeneous ZVI/EDTA/Air Fenton-like system, Sep. Purif. Technol. 132 (2014) 346-353 [2] F. Han, V.S.R. Kambala, M. Srinivasan, D. Rajarathnam, R. Naidu, Tailored titanium dioxide photocatalysts for the degradation of organic dyes in wastewater treatment:A review, Appl. Catal. A:Gen. 359 (1-2) (2009) 25-40 [3] N. Tripathy, R. Ahmad, J. Eun Song, H. Ah Ko, Y.B. Hahn, G. Khang, Photocatalytic degradation of methyl orange dye by ZnO nanoneedle under UV irradiation, Mater. Lett. 136 (2014) 171-174 [4] T. Bao, M.M. Damtie, K. Wu, X.L. Wei, Y. Zhang, J. Chen, C.X. Deng, J. Jin, Z.M. Yu, L. Wang, R.L. Frost, Rectorite-supported nano-Fe3O4 composite materials as catalyst for P-chlorophenol degradation:Preparation, characterization, and mechanism, Appl. Clay Sci. 176 (2019) 66-77 [5] Y.B. Yang, Z.T. Liu, M.H. Zheng, Z. Fang, J.J. Ren, The joint toxicity in juvenile Carassius auratus exposed to 2-chlorophenol and 2, 4-dichlorophenol, Fresenius Environ. Bull. 18 (1) (2009) 21-25 [6] G.X. Song, Z.Y. Chu, W.Q. Jin, H.Q. Sun, Enhanced performance of g-C3N4/TiO2 photocatalysts for degradation of organic pollutants under visible light, Chin. J. Chem. Eng. 23 (8) (2015) 1326-1334 [7] J.J. Yu, T.H. Wang, S. Rtimi, Magnetically separable TiO2/FeOx/POM accelerating the photocatalytic removal of the emerging endocrine disruptor:2, 4-dichlorophenol, Appl. Catal. B:Environ. 254 (2019) 66-75 [8] Z.L. Pan, C.W. Song, L. Li, H. Wang, Y.Q. Pan, C.L. Wang, J.X. Li, T.H. Wang, X.S. Feng, Membrane technology coupled with electrochemical advanced oxidation processes for organic wastewater treatment:Recent advances and future prospects, Chem. Eng. J. 376 (2019) 120909 [9] E. Brillas, A review on the photoelectro-Fenton process as efficient electrochemical advanced oxidation for wastewater remediation. Treatment with UV light, sunlight, and coupling with conventional and other photo-assisted advanced technologies, Chemosphere 250 (2020) 126198 [10] Q. Yang, Y.H. Ma, F. Chen, F.B. Yao, J. Sun, S.N. Wang, K.X. Yi, L.H. Hou, X.M. Li, D.B. Wang, Recent advances in photo-activated sulfate radical-advanced oxidation process (SR-AOP) for refractory organic pollutants removal in water, Chem. Eng. J. 378 (2019) 122149 [11] 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 [12] H.Y. Niu, Y. Zheng, S.H. Wang, L.X. Zhao, S.P. Yang, Y.Q. Cai, Continuous generation of hydroxyl radicals for highly efficient elimination of chlorophenols and phenols catalyzed by heterogeneous Fenton-like catalysts yolk/shell Pd@Fe3O4@metal organic frameworks, J Hazard Mater 346 (2018) 174-183 [13] L.P. Fang, C.H. Xu, W.B. Zhang, L.Z. Huang, The important role of polyvinylpyrrolidone and Cu on enhancing dechlorination of 2, 4-dichlorophenol by Cu/Fe nanoparticles:Performance and mechanism study, Appl. Surf. Sci. 435 (2018) 55-64 [14] U. Ushani, X.Q. Lu, J.H. Wang, Z.Y. Zhang, J.J. Dai, Y.J. Tan, S.S. Wang, W.J. Li, C.X. Niu, T. Cai, N. Wang, G.Y. Zhen, Sulfate radicals-based advanced oxidation technology in various environmental remediation:A state-of-the-art review, Chem. Eng. J. 402 (2020) 126232 [15] V.C. Mora, J.A. Rosso, D.O. Mártire, M.C. Gonzalez, Phenol depletion by thermally activated peroxydisulfate at 70℃, Chemosphere 84 (9) (2011) 1270-1275 [16] C. Kim, J.Y. Ahn, T.Y. Kim, W.S. Shin, I. Hwang, Activation of persulfate by nanosized zero-valent iron (NZVI):Mechanisms and transformation products of NZVI, Environ Sci Technol 52 (6) (2018) 3625-3633 [17] D.Y. Yan, I.M. Lo, Removal effectiveness and mechanisms of naphthalene and heavy metals from artificially contaminated soil by iron chelate-activated persulfate, Environ Pollut 178 (2013) 15-22 [18] C.J. Liang, C.J. Bruell, M.C. Marley, K.L. Sperry, Persulfate oxidation for in situ remediation of TCE. II. Activated by chelated ferrous ion, Chemosphere 55 (9) (2004) 1225-1233 [19] 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 [20] J. Saien, S. Seyyedan, High performance homogeneous photo-activated persulfate for nicotinic acid removal, intensified with copper ions and ultrasonic waves, Process. Saf. Environ. Prot. 131 (2019) 300-306 [21] L.P. Fang, K. Liu, F.B. Li, W.B. Zeng, Z.B. Hong, L. Xu, Q.T. Shi, Y.B. Ma, New insights into stoichiometric efficiency and synergistic mechanism of persulfate activation by zero-valent bimetal (Iron/Copper) for organic pollutant degradation, J Hazard Mater 403 (2021) 123669 [22] J.W. Liu, Y.F. Du, W.Y. Sun, Q.C. Chang, C.S. Peng, A granular adsorbent-supported Fe/Ni nanoparticles activating persulfate system for simultaneous adsorption and degradation of ciprofloxacin, Chin. J. Chem. Eng. 28 (4) (2020) 1077-1084 [23] Y.F. Wei, H. Liu, C.B. Liu, S.L. Luo, Y.T. Liu, X.W. Yu, J.H. Ma, K. Yin, H.P. Feng, Fast and efficient removal of As(III) from water by CuFe2O4 with peroxymonosulfate:Effects of oxidation and adsorption, Water Res 150 (2019) 182-190 [24] M.J. Zhuang, D.J. Ren, H.W. Guo, Z.B. Wang, S.Q. Zhang, X.Q. Zhang, X.Y. Gong, Degradation of 2, 4-dichlorophenol contaminated soil by ultrasound-enhanced laccase, Environ Technol 42 (9) (2021) 1428-1437 [25] Z.H. Diao, L. Yan, F.X. Dong, W. Qian, Q.H. Deng, L.J. Kong, J.W. Yang, Z.X. Lei, J.J. Du, W. Chu, Degradation of 2, 4-dichlorophenol by a novel iron based system and its synergism with Cd(II) immobilization in a contaminated soil, Chem. Eng. J. 379 (2020) 122313 [26] M. Cheng, G.M. Zeng, D.L. Huang, C.P. Yang, C. Lai, C. Zhang, Y. Liu, Advantages and challenges of Tween 80 surfactant-enhanced technologies for the remediation of soils contaminated with hydrophobic organic compounds, Chem. Eng. J. 314 (2017) 98-113 [27] C. Trellu, O. Ganzenko, S. Papirio, Y. Pechaud, N. Oturan, D. Huguenot, E.D. van Hullebusch, G. Esposito, M.A. Oturan, Combination of anodic oxidation and biological treatment for the removal of phenanthrene and Tween 80 from soil washing solution, Chem. Eng. J. 306 (2016) 588-596 [28] S. Dhara, N.L. Misra, Elemental characterization of nuclear materials using total reflection X-ray fluorescence spectrometry, Trac Trends Anal. Chem. 116 (2019) 31-43 [29] Y.H. Guan, J. Ma, X.C. Li, J.Y. Fang, L.W. Chen, Influence of pH on the formation of sulfate and hydroxyl radicals in the UV/peroxymonosulfate system, Environ Sci Technol 45 (21) (2011) 9308-9314 [30] H.Y. Dong, J. Chen, L.Y. Feng, W.X. Zhang, X.H. Guan, T.J. Strathmann, Degradation of organic contaminants through activating bisulfite by cerium(IV):A sulfate radical-predominant oxidation process, Chem. Eng. J. 357 (2019) 328-336 [31] O. Eljamal, R. Mokete, N. Matsunaga, Y. Sugihara, Chemical pathways of Nanoscale Zero-Valent Iron (NZVI) during its transformation in aqueous solutions, J. Environ. Chem. Eng. 6 (5) (2018) 6207-6220 [32] C.C. Huang, S.L. Lo, H.L. Lien, Zero-valent copper nanoparticles for effective dechlorination of dichloromethane using sodium borohydride as a reductant, Chem. Eng. J. 203 (2012) 95-100 [33] G. Li, Q.Y. Xu, X.Y. Jin, R.C. Li, R. Dharmarajan, Z.L. Chen, Enhanced adsorption and Fenton oxidation of 2, 4-dichlorophenol in aqueous solution using organobentonite supported nZVI, Sep. Purif. Technol. 197 (2018) 401-406 [34] K. Liu, F.B. Li, J.H. Cui, S.Y. Yang, L.P. Fang, Simultaneous removal of Cd(II) and As(III) by graphene-like biochar-supported zero-valent iron from irrigation waters under aerobic conditions:Synergistic effects and mechanisms, J Hazard Mater 395 (2020) 122623 [35] C. Noubactep, Metallic Iron for Safe Drinking Water Production, FOG-Freiberg Online Geoscience, 27 (2011) [36] J. Deng, M.Y. Xu, Y.J. Chen, J. Li, C.G. Qiu, X.Y. Li, S.Q. Zhou, Highly-efficient removal of norfloxacin with nanoscale zero-valent copper activated persulfate at mild temperature, Chem. Eng. J. 366 (2019) 491-503 [37] A. Vinder, M. Simonic, P.Z. NOVAK, Influence of surfactants on the removal of AOX using micellar-enhanced ultrafiltration, Int. J. Environ. Res. 2014, 205-212 [38] S.G. Liao, D.W. Li, Review of contaminated sites remediation technology, Adv. Mater. Res. 414 (2011) 1-4 [39] A. Moutsatsou, M. Gregou, D. Matsas, V. Protonotarios, Washing as a remediation technology applicable in soils heavily polluted by mining-metallurgical activities, Chemosphere 63 (10) (2006) 1632-1640 [40] A. Karthick, B. Roy, P. Chattopadhyay, A review on the application of chemical surfactant and surfactant foam for remediation of petroleum oil contaminated soil, J Environ Manage 243 (2019) 187-205 [41] B. Petkova, S. Tcholakova, M. Chenkova, K. Golemanov, N. Denkov, D. Thorley, S. Stoyanov, Foamability of aqueous solutions:Role of surfactant type and concentration, Adv Colloid Interface Sci 276 (2020) 102084 [42] S. Rebello, A.K. Asok, S. Mundayoor, M.S. Jisha, Surfactants:Toxicity, remediation and green surfactants, Environ. Chem. Lett. 12 (2) (2014) 275-287 [43] J.W. Liu, K.H. Wei, S.W. Xu, J. Cui, J. Ma, X.L. Xiao, B.D. Xi, X.S. He, Surfactant-enhanced remediation of oil-contaminated soil and groundwater:A review, Sci Total Environ 756 (2021) 144142 [44] E.V. Lau, S.Y. Gan, H.K. Ng, P.E. Poh, Extraction agents for the removal of polycyclic aromatic hydrocarbons (PAHs) from soil in soil washing technologies, Environ Pollut 184 (2014) 640-649 [45] H.L. Li, R.H. Qu, C. Li, W.L. Guo, X.M. Han, F. He, Y.B. Ma, B.S. Xing, Selective removal of polycyclic aromatic hydrocarbons (PAHs) from soil washing effluents using biochars produced at different pyrolytic temperatures, Bioresour Technol 163 (2014) 193-198 [46] C.Y. Zhu, F.X. Zhu, C. Liu, N. Chen, D.M. Zhou, G.D. Fang, J. Gao, Reductive hexachloroethane degradation by S2O8-·with thermal activation of persulfate under anaerobic conditions, Environ Sci Technol 52 (15) (2018) 8548-8557 [47] X.D. Du, Y.Q. Zhang, F. Si, C.H. Yao, M.M. Du, I. Hussain, H. Kim, S.B. Huang, Z. Lin, W. Hayat, Persulfate non-radical activation by nano-CuO for efficient removal of chlorinated organic compounds:Reduced graphene oxide-assisted and CuO (0 0 1) facet-dependent, Chem. Eng. J. 356 (2019) 178-189 [48] Y.C. Zhang, Q. Zhang, Z.Y. Dong, L.Y. Wu, J.M. Hong, Degradation of acetaminophen with ferrous/copperoxide activate persulfate:Synergism of iron and copper, Water Res 146 (2018) 232-243 [49] K. Liu, M.R. Li, Z.L. Zhu, B.L. Gao, H.C. Zeng, Y.B. Ma, L.P. Fang, Emerging investigator series:3D graphene anchored zerovalent Fe/Cu aerogel activating persulfate for efficiently 2, 4 dichlorophenol degradation over a broad pH range, Environ. Sci.:Water Res. Technol. 7 (4) (2021) 714-725 [50] H.R. Dong, Q. He, G.M. Zeng, L. Tang, L.H. Zhang, Y.K. Xie, Y.L. Zeng, F. Zhao, Degradation of trichloroethene by nanoscale zero-valent iron (nZVI) and nZVI activated persulfate in the absence and presence of EDTA, Chem. Eng. J. 316 (2017) 410-418 [51] Q.Q. Ji, J. Li, Z.K. Xiong, B. Lai, Enhanced reactivity of microscale Fe/Cu bimetallic particles (mFe/Cu) with persulfate (PS) for p-nitrophenol (PNP) removal in aqueous solution, Chemosphere 172 (2017) 10-20 [52] R.C. Li, X.Y. Jin, M. Megharaj, R. Naidu, Z.L. Chen, Heterogeneous Fenton oxidation of 2, 4-dichlorophenol using iron-based nanoparticles and persulfate system, Chem. Eng. J. 264 (2015) 587-594 [53] P. Zhou, J. Zhang, Y.L. Zhang, G.C. Zhang, W.S. Li, C.M. Wei, J. Liang, Y. Liu, S.H. Shu, Degradation of 2, 4-dichlorophenol by activating persulfate and peroxomonosulfate using micron or nanoscale zero-valent copper, J Hazard Mater 344 (2018) 1209-1219 |