References
- P. Devi, A.K. Saroha, Synthesis of the magnetic biochar
composites for use as an adsorbent for the removal of
pentachlorophenol from the effluent, Bioresour. Technol., 169
(2014) 525–531.
- R.E. Baynes, J.D. Brooks, M. Mumtaz, J.E. Riviere, Effect of
chemical interactions in pentachlorophenol mixtures on skin
and membrane transport, Toxicol. Sci., 69 (2002) 295–305.
- P. Devi, A.K. Saroha, Simultaneous adsorption and
dechlorination of pentachlorophenol from effluent by Ni–ZVI
magnetic biochar composites synthesized from paper mill
sludge, Chem. Eng. J., 271 (2015) 195–203.
- A. Karci, Degradation of chlorophenols and alkylphenol
ethoxylates, two representative textile chemicals, in water
by advanced oxidation processes: the state of the art on
transformation products and toxicity, Chemosphere, 99 (2014)
1–18.
- M.H.Z. Muhamad, S.R.S. Abdullah, A. Mohamad, R.A.
Rahman, A.A.H. Kadhum, Effect of hydraulic retention time
(HRT) on pentachlorophenol (PCP) and COD removal in a pilot
GAC-SBBR system for the post-treatment of recycled paper mill
wastewater, Desal. Water Treat., 48 (2012) 50–59.
- L.A. Rodenburg, S. Du, D.E. Fennell, G.J. Cavallo, Evidence
for widespread dechlorination of polychlorinated biphenyls
in groundwater, landfills, and wastewater collection systems,
Environ. Sci. Technol., 44 (2010) 7534–7540.
- X. Song, Q. Shi, H. Wang, S. Liu, C. Tai, Z. Bian, Preparation
of Pd-Fe/graphene catalysts by photocatalytic reduction with
enhanced electrochemical oxidation-reduction properties for
chlorophenols, Appl. Catal., B, 203 (2017) 442–451.
- C. Chen, X. Geng, W. Huang, Adsorption of 4-chlorophenol
and aniline by nanosized activated carbons, Chem. Eng. J.,
327 (2017) 941–952.
- P. Van Aken, R. Van den Broeck, J. Degrève, R. Dewil, A
pilot-scale coupling of ozonation and biodegradation of
2,4-dichlorophenol-containing wastewater: the effect of biomass
acclimation towards chlorophenol and intermediate ozonation
products, J. Cleaner Prod., 161 (2017) 1432–1441.
- W. Wang, S. Wang, J. Zhang, Z. Hu, X. Zhang, J. Muñoz Sierra,
Degradation kinetics of pentachlorophenol and changes in
anaerobic microbial community with different dosing modes of
co-substrate and zero-valent iron, Int. Biodeterior. Biodegrad.,
113 (2016) 126–133.
- M.H.R.Z. Damianovic, E.M. Moraes, M. Zaiat, E. Foresti,
Pentachlorophenol (PCP) dechlorination in
horizontal-flow
anaerobic immobilized biomass (HAIB) reactors, Bioresour.
Technol., 100 (2009) 4361–4367.
- C. Kennes, W.M. Wu, L. Bhatnagar, J.G. Zeikus, Anaerobic
dechlorination and mineralization of pentachlorophenol and
2,4,6-trichlorophenol by methanogenic pentachlorophenoldegrading
granules, Appl. Microbiol. Biotechnol., 44 (1996)
801–806.
- D.-S. Shen, R. He, X.-W. Liu, Y. Long, Effect of pentachlorophenol
and chemical oxygen demand mass concentrations in influent
on operational behaviors of upflow anaerobic sludge blanket
(UASB) reactor, J. Hazard. Mater., 136 (2006) 645–653.
- B. Wu, C. He, S. Yuan, Z. Hu, W. Wang, Hydrogen enrichment
as a bioaugmentation tool to alleviate ammonia inhibition
on anaerobic digestion of phenol-containing wastewater,
Bioresour. Technol., 276 (2019) 97–102.
- J.L. Xue, G.M. Liu, D.F. Zhao, J.C.Z. Li, X.D. Su, Inhibition
effects of pentachlorophenol (PCP) on anaerobic digestion
system, Desal. Water Treat., 51 (2013) 5892–5897.
- J.A. Zimbron, K.F. Reardon, Fenton’s oxidation of
pentachlorophenol, Water Res., 43 (2009) 1831–1840.
- T. Zhang, Y. Chen, Y. Wang, J. Le Roux, Y. Yang, J.-P. Croué,
Efficient peroxydisulfate activation process not relying on
sulfate radical generation for water pollutant degradation,
Environ. Sci. Technol., 48 (2014) 5868–5875.
- X. Kong, Y. Wei, S. Xu, J. Liu, H. Li, Y. Liu, S. Yu, Inhibiting
excessive acidification using zero-valent iron in anaerobic
digestion of food waste at high organic load rates, Bioresour.
Technol., 211 (2016) 65–71.
- D. Dong, R. Wang, P. Geng, C. Li, Z. Zhao, Enhancing effects of
activated carbon supported nano zero-valent iron on anaerobic
digestion of phenol-containing organic wastewater, J. Environ.
Manage., 244 (2019) 1–12.
- S. Xu, A. Selvam, J.W.C. Wong, Optimization of micro-aeration
intensity in acidogenic reactor of a two-phase anaerobic digester
treating food waste, Waste Manage., 34 (2014) 363–369.
- Z. Ma, Y. Yang, Y. Jiang, B. Xi, T. Yang, X. Peng, X. Lian,
K. Yan, H. Liu, Enhanced degradation
of 2,4-dinitrotoluene in
groundwater by persulfate activated using iron-carbon microelectrolysis,
Chem. Eng. J., 311 (2017) 183–190.
- T. Zhou, Y. Li, T.-T. Lim, Catalytic hydrodechlorination of
chlorophenols by Pd/Fe nanoparticles: comparisons with
other bimetallic systems, kinetics and mechanism, Sep. Purif.
Technol., 76 (2010) 206–214.
- Z. Zhao, Y. Li, X. Quan, Y. Zhang, Towards engineering
application: potential mechanism for enhancing anaerobic
digestion of complex organic waste with different types of
conductive materials, Water Res., 115 (2017) 266–277.
- R. Wang, C. Li, N. Lv, X. Pan, G. Cai, J. Ning, G. Zhu, Deeper
insights into effect of activated carbon and nano-zerovalent
iron addition on acidogenesis and whole anaerobic
digestion, Bioresour. Technol., 324 (2021) 124671, doi: 10.1016/j.
biortech.2021.124671.
- S.L. Liu, X.K. Li, G.M. Zhang, J. Zhang, Optimization
of influencing factors on biomass accumulation and
5-aminolevulinic acid (ALA) yield in Rhodobacter sphaeroides wastewater treatment, J. Microbiol. Biotechnol., 25 (2015)
1920–1927.
- APHA, Standard Methods for the Examination of Water and
Wastewater, American Public Health Association, 2012.
- D. Wang, W. Ma, H. Han, K. Li, H. Xu, F. Fang, B. Hou, S. Jia,
Enhanced anaerobic degradation of Fischer-Tropsch wastewater
by integrated UASB system with Fe-C micro-electrolysis
assisted, Chemosphere, 164 (2016) 14–24.
- P. Wang, X. Chen, X. Liang, M. Cheng, L. Ren, Effects of
nanoscale zero-valent iron on the performance and the fate of
antibiotic resistance genes during thermophilic and mesophilic
anaerobic digestion of food waste, Bioresour. Technol.,
293 (2019) 122092, doi: 10.1016/j.biortech.2019.122092.
- Y. Lv, Y. Chen, W. Song, Y. Hu, Enhanced selection of microaerobic
pentachlorophenol degrading granular sludge,
J. Hazard. Mater., 280 (2014) 134–142.