209
Views
0
CrossRef citations to date
0
Altmetric
Articles

Iron (II) phthalocyanine loaded tourmaline efficiently activates PMS to degrade pharmaceutical contaminants under solar light

, , , &
Pages 3491-3503 | Received 26 Nov 2021, Accepted 27 Mar 2022, Published online: 15 May 2022

References

  • Li Y, Li J, Pan Y, et al. Peroxymonosulfate activation on FeCo2S4 modified g-C3N4 (FeCo2S4-CN): mechanism of singlet oxygen evolution for nonradical efficient degradation of sulfamethoxazole. Chem Eng J. 2020;384:123361.
  • Gu Y, Xu T, Chen X, et al. High-loading single-atom tungsten anchored on graphitic carbon nitride (melon) for efficient oxidation of emerging contaminants. Chem Eng J. 2022;427:131973.
  • Yang Y, Zeng G, Huang D, et al. In situ grown single-atom Cobalt on polymeric carbon nitride with bidentate ligand for efficient photocatalytic degradation of refractory antibiotics. Small. 2020;16:2001634.
  • Rasheed T, Bilal M, Hassan AA, et al. Environmental threatening concern and efficient removal of pharmaceutically active compounds using metal-organic frameworks as adsorbents. Environ Res. 2020;185:109436.
  • Yang B, Kookana RS, Williams M, et al. Removal of carbamazepine in aqueous solutions through solar photolysis of free available chlorine. Water Res. 2016;100:413–420.
  • Kulaksiz E, Kayan B, Gozmen B, et al. Comparative degradation of 5-fluorouracil in aqueous solution by using H2O2-modified subcritical water, photocatalytic oxidation and electro-Fenton processes. Environ Res. 2021;204:111898.
  • Adil S, Maryam B, Kim EJ, et al. Individual and simultaneous degradation of sulfamethoxazole and trimethoprim by ozone, ozone/hydrogen peroxide and ozone/persulfate processes: a comparative study. Environ Res. 2020;189:109889.
  • Kummerer K. Antibiotics in the aquatic environment – a review-part I. Chemosphere. 2009;75:417–434.
  • Li J, Zhang K, Zhang H. Adsorption of antibiotics on microplastics. Environ Pollut. 2018;237:460–467.
  • Zhu G, Wang Q, Yin J, et al. Toward a better understanding of coagulation for dissolved organic nitrogen using polymeric zinc-iron-phosphate coagulant. Water Res. 2016;100:201–210.
  • Nguyen PY, Carvalho G, Reis MAM, et al. A review of the biotransformations of priority pharmaceuticals in biological wastewater treatment processes. Water Res. 2021;188:116446.
  • Yang Y, Li X, Zhou C, et al. Recent advances in application of graphitic carbon nitride-based catalysts for degrading organic contaminants in water through advanced oxidation processes beyond photocatalysis: a critical review. Water Res. 2020;184:116200.
  • Zhang C, Lai C, Zeng G, et al. Efficacy of carbonaceous nanocomposites for sorbing ionizable antibiotic sulfamethazine from aqueous solution. Water Res. 2016;95:103–112.
  • Xiong W, Zeng Z, Zeng G, et al. Metal-organic frameworks derived magnetic carbon-αFe/Fe3C composites as a highly effective adsorbent for tetracycline removal from aqueous solution. Chem Eng J. 2019;374:91–99.
  • Jia M, Yang Z, Xu H, et al. Integrating N and F co-doped TiO2 nanotubes with ZIF-8 as photoelectrode for enhanced photo-electrocatalytic degradation of sulfamethazine. Chem Eng J. 2020;388:124388.
  • Wang J, Li C, Rauf M, et al. Gas diffusion electrodes for H2O2 production and their applications for electrochemical degradation of organic pollutants in water: a review. Sci Total Environ. 2021;759:143459.
  • Liu X, He S, Yang Y, et al. A review on percarbonate-based advanced oxidation processes for remediation of organic compounds in water. Environ Res. 2021;200:111371.
  • Wang X, Lu W, Zhao Z, et al. In situ stable growth of β-FeOOH on g-C3N4 for deep oxidation of emerging contaminants by photocatalytic activation of peroxymonosulfate under solar irradiation. Chem Eng J. 2020;400:125872.
  • Hu P, Long M. Cobalt-catalyzed sulfate radical-based advanced oxidation: a review on heterogeneous catalysts and applications. Appl Catal B: Environ. 2016;181:103–117.
  • Wang J, Wang S. Activation of persulfate (PS) and peroxymonosulfate (PMS) and application for the degradation of emerging contaminants. Chem Eng J. 2018;334:1502–1517.
  • Feng Y, Wu D, Deng Y, et al. Sulfate radical-mediated degradation of sulfadiazine by CuFeO2 rhombohedral crystal-catalyzed peroxymonosulfate: synergistic effects and mechanisms. Environ Sci Technol. 2016;50:3119–3127.
  • Carra I, Sánchez Pérez JA, Malato S, et al. Application of high intensity UVC-LED for the removal of acetamiprid with the photo-Fenton process. Chem Eng J. 2015;264:690–696.
  • Zhang T, Zhu H, Croue JP. Production of sulfate radical from peroxymonosulfate induced by a magnetically separable CuFe2O4 spinel in water: efficiency, stability, and mechanism. Environ Sci Technol. 2013;47:2784–2791.
  • Ahmed MM, Chiron S. Solar photo-Fenton like using persulphate for carbamazepine removal from domestic wastewater. Water Res. 2014;48:229–236.
  • Wu F, Huang H, Xu T, et al. Visible-light-assisted peroxymonosulfate activation and mechanism for the degradation of pharmaceuticals over pyridyl-functionalized graphitic carbon nitride coordinated with iron phthalocyanine. Appl Catal B Environ. 2017;218:230–239.
  • Chen X, Deng F, Liu X, et al. Hydrothermal synthesis of MnO2/Fe(0) composites from Li-ion battery cathodes for destructing sulfadiazine by photo-Fenton process. Sci Total Environ. 2021;774:145776.
  • Zhou Y, He J, Lu J, et al. Enhanced removal of bisphenol A by cyclodextrin in photocatalytic systems: degradation intermediates and toxicity evaluation. Chinese Chem Lett. 2020;31:2623–2626.
  • Lu J, Wang T, Zhou Y, et al. Dramatic enhancement effects of l-cysteine on the degradation of sulfadiazine in Fe3+/CaO2 system. J Hazard Mater. 2020;383:121133.
  • Zheng X, Niu X, Zhang D, et al. Metal-based catalysts for persulfate and peroxymonosulfate activation in heterogeneous ways: a review. Chem Eng J. 2022;429:132323.
  • Xiao S, Cheng M, Zhong H, et al. Iron-mediated activation of persulfate and peroxymonosulfate in both homogeneous and heterogeneous ways: a review. Chem Eng J. 2020;384:123265.
  • Cai C, Kang S, Xie X, et al. Ultrasound-assisted heterogeneous peroxymonosulfate activation with Co/SBA-15 for the efficient degradation of organic contaminant in water. J Hazard Mater. 2020;385:121519.
  • Wang Z, Wang Z, Li W, et al. Performance comparison and mechanism investigation of Co3O4-modified different crystallographic MnO2 (α, β, γ, and δ) as an activator of peroxymonosulfate (PMS) for sulfisoxazole degradation. Chem Eng J. 2022;427:130888.
  • Shahzad A, Ali J, Ifthikar J, et al. Non-radical PMS activation by the nanohybrid material with periodic confinement of reduced graphene oxide (rGO) and Cu hydroxides. J Hazard Mater. 2020;392:122316.
  • Ling L, Zhang D, Fan C, et al. A Fe(II)/citrate/UV/PMS process for carbamazepine degradation at a very low Fe(II)/PMS ratio and neutral pH: the mechanisms. Water Res. 2017;124:446–453.
  • Rastogi A, Al-Abed SR, Dionysiou DD. Sulfate radical-based ferrous–peroxymonosulfate oxidative system for PCBs degradation in aqueous and sediment systems. Appl Catal B Environ. 2009;85:171–179.
  • Fan G, Yang S, Du B, et al. Sono-photo hybrid process for the synergistic degradation of levofloxacin by FeVO4/BiVO4: mechanisms and kinetics. Environ Res. 2021;204:112032.
  • Huang Y, Jiang J, Ma L, et al. Iron foam combined ozonation for enhanced treatment of pharmaceutical wastewater. Environ Res. 2020;183:109205.
  • Idowu MA, Xego S, Arslanoglu Y, et al. Photophysicochemical behaviour and antimicrobial properties of monocarboxy Mg (II) and Al (III) phthalocyanine-magnetite conjugates. Spectrochim Acta A Mol Biomol Spectrosc. 2018;193:407–414.
  • Qian H, Hou Q, Yu G, et al. Enhanced removal of dye from wastewater by Fenton process activated by core-shell NiCo2O4@FePc catalyst. J Clean Prod. 2020;273:123028.
  • Zhang Z, Dou M, Ji J, et al. Phthalocyanine tethered iron phthalocyanine on graphitized carbon black as superior electrocatalyst for oxygen reduction reaction. Nano Energy. 2017;34:338–343.
  • Sanchez-Sanchez A, Izquierdo MT, Mathieu S, et al. Structure and electrochemical properties of carbon nanostructures derived from nickel(II) and iron(II) phthalocyanines. J Adv Res. 2020;22:85–97.
  • Han X, Han Z, Li J, et al. Coordinative integration of copper (II) and iron (II) phthalocyanine into amidoximated PAN fiber for enhanced photocatalytic activity under visible light irradiation. J Colloid Interface Sci. 2019;533:333–343.
  • Zhu ZC, Gu Y, Wu F, et al. Catalytic degradation of recalcitrant pollutants by Fenton-like process using polyacrylonitrile-supported iron (II) phthalocyanine nanofibers: intermediates and pathway. Water Res. 2016;93:296–305.
  • Yan X, Xu X, Liu Q, et al. Functionalization of multi-walled carbon nanotubes with iron phthalocyanine via a liquid chemical reaction for oxygen reduction in alkaline media. J Power Sources. 2018;389:260–266.
  • Shimizu T, Wakamatsu K, Yamada Y, et al. Application of mu-nitrido- and mu-carbido-bridged iron phthalocyanine dimers as cathode-active materials for rechargeable batteries. ACS Appl Mater Inter. 2021;13:40612–40617.
  • Wang D, Xu H, Ma J, et al. Strong promoted catalytic ozonation of atrazine at low temperature using tourmaline as catalyst: influencing factors, reaction mechanisms and pathways. Chem Eng J. 2018;354:113–125.
  • Li J, Wang C, Wang D, et al. A novel technology for remediation of PBDEs contaminated soils using tourmaline-catalyzed Fenton-like oxidation combined with P. chrysosporium. Chem Eng J. 2016;296:319–328.
  • Fu L, Guo Y, Pan S, et al. Core-shell type tourmaline@ZnO composites equipped with carbon dots for high efficiency photocatalyst. Surf Coat Technol. 2019;359:190–196.
  • Zheng Y, Wang A. Removal of heavy metals using polyvinyl alcohol semi-IPN poly(acrylic acid)/tourmaline composite optimized with response surface methodology. Chem Eng J. 2010;162:186–193.
  • Tatar B, Demiroğlu D. Electrical properties of FePc organic semiconductor thin films obtained by CSP technique for photovoltaic applications. Mater Sci Semicond Process. 2015;31:644–650.
  • Shen J, Li X, Li N, et al. Facile synthesis of NiCo2O4-reduced graphene oxide nanocomposites with improved electrochemical properties. Electrochim Acta. 2014;141:126–133.
  • Sun J, Zhang X, Zhang A, et al. Preparation of Fe-Co based MOF-74 and its effective adsorption of arsenic from aqueous solution. J Environ Sci (China. 2019;80:197–207.
  • Han Z, Han X, Zhao X, et al. Iron phthalocyanine supported on amidoximated PAN fiber as effective catalyst for controllable hydrogen peroxide activation in oxidizing organic dyes. J Hazard Mater. 2016;320:27–35.
  • Zhu Z, Lu W, Li N, et al. Pyridyl-containing polymer blends stabilized iron phthalocyanine to degrade sulfonamides by enzyme-like process. Chem Eng J. 2017;321:58–66.
  • Hoffmann MR, Choi STMW, Bahnemann DW. Environmental applications of semiconductor photocatalysis. Chem Rev. 1995;95:69–96.
  • Ding Y, Tang H, Zhang S, et al. Efficient degradation of carbamazepine by easily recyclable microscaled CuFeO2 mediated heterogeneous activation of peroxymonosulfate. J Hazard Mater. 2016;317:686–694.
  • Yang Y, Zeng Z, Zhang C, et al. Construction of iodine vacancy-rich BiOI/Ag@AgI Z-scheme heterojunction photocatalysts for visible-light-driven tetracycline degradation: transformation pathways and mechanism insight. Chem Eng J. 2018;349:808–821.
  • Sun S-P, Zeng X, Lemley AT. Nano-magnetite catalyzed heterogeneous Fenton-like degradation of emerging contaminants carbamazepine and ibuprofen in aqueous suspensions and montmorillonite clay slurries at neutral pH. J Mol Catal A Chem. 2013;371:94–103.
  • Yang L, Jia Y, Peng Y, et al. Visible-light induced activation of persulfate by self-assembled EHPDI/TiO2 photocatalyst toward efficient degradation of carbamazepine. Sci Total Environ. 2021;783:146996.
  • Bo L, He K, Tan N, et al. Photocatalytic oxidation of trace carbamazepine in aqueous solution by visible-light-driven Znln2S4: performance and mechanism. J Environ Manage. 2017;190:259–265.
  • Kaiser E, Prasse C, Wagner M, et al. Transformation of oxcarbazepine and human metabolites of carbamazepine and oxcarbazepine in wastewater treatment and sand filters. Environ Sci Technol. 2014;48:10208–10216.
  • Rao YF, Chu W, Wang YR. Photocatalytic oxidation of carbamazepine in triclinic-WO3 suspension: role of alcohol and sulfate radicals in the degradation pathway. Appl Catal A Gen. 2013;468:240–249.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.