References
- A.-M. Galan, I. Calinescu, A. Trifan, C. Winkworth-Smith, M.
Calvo-Carrascal, C. Dodds, E. Binner, New insights into the
role of selective and volumetric heating during microwave
extraction: investigation of the extraction of polyphenolic
compounds from sea buckthorn leaves using microwaveassisted
extraction and conventional solvent extraction, Chem.
Eng. Process., 116 (2017) 29–39.
- J. Li, J. Dai, G. Liu, H. Zhang, Z. Gao, J. Fu, Y. He, Y. Huang,
Biochar from microwave pyrolysis of biomass: a review,
Biomass Bioenergy, 94 (2016) 228–244.
- Y. Avsar, U. Kurt, Thermotechnical comparison of conventional
heating and microwave radiation method for dewatering of
sewage sludge, Desal. Wat. Treat., 72 (2017) 274–280.
- P.M. Mawioo, H.A. Garcia, C.M. Hooijmans, K. Velkushanova,
M. Simonič, I. Mijatović, D. Brdjanovic, A pilot-scale microwave
technology for sludge sanitization and drying, Sci. Total
Environ., 601–602 (2017) 1437–1448.
- A.H. Jawad, M.A.M. Ishak, A.M. Farhan, K. Ismail, Response
surface methodology approach for optimization of color
removal and COD reduction of methylene blue using
microwave-induced NaOH activated carbon from biomass
waste, Desal. Wat. Treat., 62 (2017) 208–220.
- H. Carrere, G. Antonopoulou, R. Affes, F. Passos, A. Battimelli, G.
Lyberatos, I. Ferrer, Review of feedstock pretreatment strategies
for improved anaerobic digestion: from lab-scale research to
full-scale application, Bioresour. Technol., 199 (2016) 386–397.
- L. Peng, D. Deng, F. Ye, Efficient oxidation of high levels of
soil-sorbed phenanthrene by microwave-activated persulfate:
implication for in situ subsurface remediation engineering, J.
Soils Sediments, 16 (2015) 28–37.
- F. Mushtaq, T.A.T. Abdullah, R. Mat, F.N. Ani, Optimization
and characterization of bio-oil produced by microwave assisted
pyrolysis of oil palm shell waste biomass with microwave
absorber, Bioresour. Technol., 190 (2015) 442–450.
- J.-K. Koo, S.-I. Jeong, Sustainability and shared smart and
mutual – green growth (SSaM-GG) in Korean medical waste
management, Waste Manage. Res., 33 (2015) 410–418.
- H. Djahaniani, L. Aghadadashi-Abhari, B. Mohtat,
N-Methylimidazole-mediated synthesis of aryl alkyl ethers
under microwave irradiation and solvent free conditions, J.
Serb. Chem. Soc., 80 (2015) 459–464.
- A. Tsukui, C.M. Rezende, Microwave assisted extraction and
green chemistry, Rev. Virtual Quim., 6 (2014) 1713–1725.
- V.G. Karayannis, A.K. Moutsatsou, E.L. Katsika, Synthesis of
microwave-sintered ceramics from lignite fly and bottom ashes,
J. Ceram. Process. Res., 14 (2013) 45–50.
- S. Horikoshi, Microwave technology in environmental
chemistry, J. Inst. Electr. Eng. Jpn., 132 (2012) 23–25.
- K. Loganathan, Ozone-based advanced oxidation processes
for the removal of harmful algal bloom (HAB) toxins: a review,
Desal. Wat. Treat., 59 (2017) 65–71.
- J.R. Alvarez-Corena, J.A. Bergendahl, F.L. Hart, Advanced
oxidation of five contaminants in water by UV/TiO2: reaction
kinetics and byproducts identification, J. Environ. Manage., 181
(2016) 544–551.
- Z. Frontistis, M. Kouramanos, S. Moraitis, E. Chatzisymeon,
E. Hapeshi, D. Fatta-Kassinos, N.P. Xekoukoulotakis, D.
Mantzavinos, UV and simulated solar photodegradation of
17α-ethynylestradiol in secondary-treated wastewater by
hydrogen peroxide or iron addition, Catal. Today, 252 (2015)
84–92.
- K. Soutsas, V. Karayannis, I. Poulios, A. Riga, K. Ntampegliotis,
X. Spiliotis, G. Papapolymerou, Decolorization and degradation
of reactive azo dyes via heterogeneous photocatalytic processes,
Desalination, 250 (2010) 345–350.
- I. Fatimah, I. Sumarlan, T. Alawiyah, Fe(III)/TiO2-montmorillonite
photocatalyst in photo-Fenton-like degradation of methylene
blue, Int. J. Chem. Eng., 2015 (2015) 1–9.
- N. Philippidis, S. Sotiropoulos, A. Efstathiou, I. Poulios,
Photoelectrocatalytic degradation of the insecticide
imidacloprid using TiO2/Ti electrodes, J. Photochem. Photobiol.,
A, 204 (2009) 129–136.
- E. Katsika, A. Moutsatsou, V. Karayannis, A. Ntziouni,
Preparation and characterization of lignite ashes coated with
TiO2 for environmental application, J. Chem. Technol. Metall.,
52 (2017) 940–949.
- K. Moustakas, S. Malamis, Water Is Necessary For Life –
WIN4Life, Conference 19–21 September 2013, Tinos Island,
Greece, Desal. Wat. Treat., 53 (2015) 3149–3150.
- I.K. Kalavrouziotis, E. Kostakioti, P.H. Koukoulakis, A.H.
Papadopoulos, M. Leotsinidis, E. Sakazli, The impact of Cl ×
Cd interrelationship on planning wastewater reuse in cabbage,
Water Air Soil Pollut., 214 (2011) 565–573.
- N.-C. Shang, Y.-H. Yu, H.-W. Ma, C.-H. Chang, M.-L. Liou,
Toxicity measurements in aqueous solution during ozonation
of mono-chlorophenols, J. Environ. Manage., 78 (2006) 216–222.
- N. Wang, P. Wang, Study and application status of microwave
in organic wastewater treatment – a review, Chem. Eng. J., 283
(2016) 193–214.
- S. Horikoshi, N. Serpone, Coupled microwave/photoassisted
methods for environmental remediation, Molecules, 19 (2014)
18102–18128.
- A. Srinivasan, P.H. Liao, K.V. Lo, Microwave treatment of dairy
manure for resource recovery: reaction kinetics and energy
analysis, J. Environ. Sci. Health, Part B, 51 (2016) 840–846.
- P.P. Mehta, P. Mane, Microwave chemistry: a review, Int. J.
Pharm. Technol., 7 (2015) 3210–3226.
- J. Liu, G. Jia, Non-thermal effects of microwave in sodium
chloride aqueous solution: insights from molecular dynamics
simulations, J. Mol. Liq., 227 (2017) 31–36.
- S. Duhan, A. Kar, L. Nain, A.S. Patel, S.K. Dash, Development
of continuous flow microwave and hot water bath system for
destruction of spoilage microorganisms in food, Indian J. Agric.
Sci., 87 (2017) 210–214.
- S. Horikoshi, N. Serpone, On the influence of the microwaves’
thermal and non-thermal effects in titania photoassisted
reactions, Catal. Today, 224 (2014) 225–235.
- S. Horikoshi, Y. Minatodani, H. Tsutsumi, H. Uchida, M. Abe,
N. Serpone, Influence of lattice distortion and oxygen vacancies
on the UV-driven/microwave-assisted TiO2 photocatalysis, J.
Photochem. Photobiol., A, 265 (2013) 20–28.
- F. Parolin, U.M. Nascimento, E.B. Azevedo, Microwaveenhanced
UV/H2O2 degradation of an azo dye (tartrazine):
optimization, colour removal, mineralization and ecotoxicity,
Environ. Technol., 34 (2013) 1247–1253.
- Z. Zhang, J. Jiatieli, D. Liu, F. Yu, S. Xue, W. Gao, Y. Li, D.D.
Dionysiou, Microwave induced degradation of parathion in the
presence of supported anatase- and rutile-TiO2/AC and comparison
of their catalytic activity, Chem. Eng. J., 231 (2013) 84–93.
- H. Lee, S.H. Park, Y.-K. Park, S.-J. Kim, S.-G. Seo, S.J. Ki, S.-C.
Jing, Photocatalytic reactions of 2,4-dichlorophenoxyacetic acid
using a microwave-assisted photocatalysis system, Chem. Eng.
J., 278 (2015) 259–264.
- J. Wang, X. Sun, Y. Yuan, H. Chen, H. Wang, D. Hou, A novel
microwave assisted photo-catalytic membrane distillation
process for treating the organic wastewater containing inorganic
ions, J. Water Process Eng., 9 (2016) 1–8.
- P. Xu, W. Ma, B. Hou, Z. Shi, A novel integration of microwave
catalytic oxidation and MBBR process and its application
in advanced treatment of biologically pretreated Lurgi coal
gasification wastewater, Sep. Purif. Technol., 177 (2017) 233–238.
- N. Amjed, I.A. Bhatti, A. Nazir, M. Iqbal, Microwave-assisted
desulfurization of coal by photo-catalytic oxidation treatment,
Energy Sources Part A, 39 (2017) 1043–1049.
- D. Zhang, B. Sun, L. Duan, Y. Tao, A. Xu, X. Li, Photooxidation
of guaiacol to organic acids with hydrogen peroxide by
microwave discharge electrodeless lamps, Chem. Eng. Technol.,
39 (2016) 97–101.
- V. Homem, A. Alves, L. Santos, Microwave-assisted Fenton’s
oxidation of amoxicillin, Chem. Eng. J., 220 (2013) 35–44.
- X. Qi, Z. Li, Efficiency optimization of a microwave-assisted
Fenton-like process for the pretreatment of chemical synthetic
pharmaceutical wastewater, Desal. Wat. Treat., 57 (2016)
11756–11764.
- S.-T. Liu, J. Huang, Y. Ye, A.-B. Zhang, L. Pan, X.-G. Chen,
Microwave enhanced Fenton process for the removal of
methylene blue from aqueous solution, Chem. Eng. J., 215–216
(2013) 586–590.
- K.-F. You, J.-H. Fang, Q.-L. Qian, Treatment of the weak acid
brilliant red B dyeing wastewater by microwave enhanced
Fenton oxidation, Wool Textile J., 41 (2013) 53–56.
- G. Zhang, B. Yang, X. Xu, Y. Cui, Research on synergistic
effect of microwave irradiation-Fenton oxidation coupling
coagulation process to treat dye wastewater, Adv. Mater. Res.,
610–613 (2013) 2028–2032.
- A. Domopoulou, K. Moustakas, A. Baklavaridis, N. Koukouzas,
V. Karayannis, Wastewater treatment for reuse employing
industrial by-products as alternative coagulants, Desal. Wat.
Treat., (2017). doi:10.5004/dwt.2017.20698.
- Q. Lin, H. Pan, K. Yao, Y. Pan, W. Long, Competitive removal
of Cu-EDTA and Ni-EDTA via microwave-enhanced Fenton
oxidation with hydroxide precipitation, Water Sci. Technol., 72
(2016) 1184–1190.
- O.A. Zalat, M.A. Elsayed, A study on microwave removal of
pyridine from wastewater, J. Environ. Chem. Eng., 1 (2013)
137–143.
- E. Hu, H. Cheng, Impact of surface chemistry on microwaveinduced
degradation of atrazine in mineral micropores,
Environ. Sci. Technol., 47 (2013) 533–541.
- U.M. Nascimento, E.B. Azevedo, Microwaves and their coupling
to advanced oxidation processes: enhanced performance in
pollutants degradation, J. Environ. Sci. Health, Part A, 48 (2013)
1056–1072.
- X. Miao, N. Wang, S. Zhao, W. Pan, and P. Wang, Treatment of
PNP wastewater by microwave assisted Cu(II)-Fenton catalytic
oxidation process, Chin. J. Environ. Eng., 8 (2014) 2299–2305.
- W.-Q. Pan, G.-S. Zhang, T. Zheng, J. Zhang, P. Wang, Treatment of
p-nitrophenol in water by Fenton-like reaction with microwave
coupling, Zhongguo Huanjing Kexue/China Environ. Sci., 34
(2014) 3112–3118.
- M.-Q. Cai, Y.-Z. Zhu, Z.-S. Wei, J.-Q. Hu, S.-D. Pan, R.-Y. Xiao,
C.-Y. Dong, M.-C. Jin, Rapid decolorization of dye Orange G by
microwave enhanced Fenton-like reaction with delafossite-type
CuFeO2, Sci. Total Environ., 580 (2017) 966–973.
- H. Iboukhoulef, A. Amrane, H. Kadi, Microwave-enhanced
Fenton-like system, Cu(II)/H2O2, for olive mill wastewater
treatment, Environ. Technol., 34 (2013) 853–860.
- S. Li, G. Zhang, P. Wang, H. Zheng, Y. Zheng, Microwaveenhanced
Mn-Fenton process for the removal of BPA in water,
Chem. Eng. J., 294 (2016) 371–379.
- J. Zhang, K. Yang, H. Wang, L. Zheng, F. Ma, B. Lv, Impact
of microwave treatment on dewaterability of sludge during
Fenton oxidation, Desal. Wat. Treat., 57 (2016) 14424–14432.
- J.-H. Jang, J.-H. Ahn, Evaluation of a microwave-heating
anaerobic digester treating municipal secondary sludge,
Environ. Technol., 34 (2013) 885–889.
- S.N. Mehdizadeh, C. Eskicioglu, J. Bobowski, T. Johnson,
Conductive heating and microwave hydrolysis under identical
heating profiles for advanced anaerobic digestion of municipal
sludge, Water Res., 47 (2013) 5040–5051.
- V.K. Tyagi, S.-L. Lo, Microwave irradiation: a sustainable way
for sludge treatment and resource recovery, Renew. Sustain.
Energy Rev., 18 (2013) 288–305.
- N. Bilgin Oncu, I. Akmehmet Balcioglu, Microwave-assisted
chemical oxidation of biological waste sludge: simultaneous
micropollutant degradation and sludge solubilisation,
Bioresour. Technol., 146 (2013) 126–134.
- D. Sun, X. Yan, W. Xue, Oxidative degradation of dimethyl
phthalate (DMP) by persulfate catalyzed by Ag+ combined
with microwave irradiation, Adv. Mater. Res., 610–613 (2013)
1209–1212.
- Y.-C. Chou, S.-L. Lo, J. Kuo, C.-J. Yeh, A study on microwave
oxidation of landfill leachate—contributions of microwavespecific
effects, J. Hazard. Mater., 246–247 (2013) 79–86.
- Y.-C. Chou, S.-L. Lo, J. Kuo, C.-J. Yeh, Derivative mechanisms
of organic acids in microwave oxidation of landfill leachate, J.
Hazard. Mater., 254–255 (2013) 293–300.
- C.J. Li, Y. Li, H. Zhang, L.Y. Tian, J. Lv, Activated carbon in
environment pollution abatement based on microwave catalysis
technology, Appl. Mech. Mater., 329 (2013) 13–17.
- G. Qin, D. Gong, Pretreatment of petroleum refinery wastewater
by microwave-enhanced Fe0/GAC micro-electrolysis, Desal.
Wat. Treat., 52 (2014) 2512–2518.
- H. Shang, H. Zhang, W. Du, Z. Liu, Development of microwave
assisted oxidative desulfurization of petroleum oils: a review, J.
Ind. Eng. Chem., 19 (2013) 1426–1432.
- B. Nammalwar, C. Fortenberry, R.A. Bunce, S.K., Lageshetty,
K.D. Ausman, Efficient oxidation of arylmethylene compounds
using nano-MnO2, Tetrahedron Lett., 54 (2013) 2010–2013.
- Z.-R. Lin, L. Zhao, Y.-H. Dong, Application of microwaveirradiated
manganese dioxide in the removal of polychlorinated
biphenyls from soil contaminated by capacitor oil, Environ.
Technol., 34 (2013) 637–644.
- Y.-Y. Peng, J. Tao, J.-W. Feng, X.-Y. Wang, L.-B. Liao, G.-C. Lv,
Degradation of tetracycline in water by microwave induced
catalytic oxidation of akhtenskite, Rengong Jingti Xuebao/J.
Synth. Cryst., 43 (2014) 1651–1656.
- C. Yin, J. Cai, L. Gao, J. Yin, J. Zhou, Highly efficient degradation
of 4-nitrophenol over the catalyst of Mn2O3/AC by microwave
catalytic oxidation degradation method, J. Hazard. Mater., 305
(2016) 15–20.
- Y. Qiu, J. Zhou, J. Cai, W. Xu, Z. You, C. Yin, Highly efficient
microwave catalytic oxidation degradation of p-nitrophenol
over microwave catalyst of pristine α-Bi2O3, Chem. Eng. J., 306
(2016) 667–675.
- D.-Y. Xu, Q.-Z. Lu, P. Dai, and M.-L. Li, Microwave assisted
catalytic oxidation of methyl orange in aqueous solution by
using Pt/resin catalyst, J. Chem. Eng. Chin. Univ., 28 (2014)
195–200.
- M. Srivastava, A. Srivastava, A. Goyal, A. Mishra, P. Tomer, J.
Dwivedi, D. Kishore, One-pot oxidation of aromatic and cyclic
hydrocarbons using the Au (III) and Pd (II) catalyst under
microwave irradiation, J. Phys. Org. Chem., 30 (2017) e3602.
- B. Zhang, H. You, F. Wang, Z. Yang, Influence of nickel
incorporation on the structure and catalytic behavior of
Cu-catalyst for heterogeneous catalytic wet peroxide oxidation
of quinoline under microwave irradiation, Catal. Commun., 88
(2017) 56–59.
- B. Zhang, H. You, F. Wang, Microwave-enhanced catalytic wet
peroxide oxidation of quinoline: the influence of pH and H2O2
dosage and identification of reactive oxygen species, RSC Adv.,
7 (2017) 14769–14775.
- S. Dong, M. Sartaj, Statistical analysis of thermal and
nonthermal effects of sequential microwave/aeration process
for the removal of ammonia from aqueous solution, Desal. Wat.
Treat., 57 (2016) 20005–20015.