Position:Home >> Abstract

Preparation and performance of nanosheet decorated copper membranes for phenol degradation via electro-Fenton process
Authors: Shi Yongxuan, Yu Hongtao, Dong Yingchao
Units: Key Laboratory of Industrial Ecology and Environmental Engineering, School of Environmental Science and Technology, Dalian University of Technology, 116000
KeyWords: Membrane separation; Metallic membrane; Electro-enhanced membrane process;Contaminants
ClassificationCode:TQ028.8
year,volume(issue):pagination: 2022,42(1):10-17

Abstract:
 Porous copper metallic hollow fiber membrane was prepared via dry-wetting spinning and atmosphere-sintering technique and followed by anodic oxidation for the construction of nanosheet copper oxide. Then the degradation performance for phenol was studied via electro-Fenton process. The effects of spinning parameters (ethanol content in external coagulation bath and nitrogen pressure) and sintering temperature on the structure, pore size and mechanical strength were investigated for copper hollow fiber membranes. The effects of oxidation time, current density and surfactant concentration on the morphology of nanosheet copper oxide was then investigated. The results showed that the optimized copper hollow fiber membranes were obtained with good permeability, which was higher than other ceramic membranes. Dense and regular nanosheets were produced at anodic oxidation time of 60 s, the current density of 15 A·cm-2 and 0.5 g·L-1 PEG. Compared to unmodified copper membranes, the mineralization efficiency increased from 5% to 60%,while the current efficiency increased from 3% to 8.6% after the construction of copper oxide nanosheets.

Funds:
国家重点研发专项(No. 2019YFA0705803)、兴辽英才项目(No. XLYC1807250)、国家自然科学基金(No. 21876020和No. 52070033)和企业横向课题(No.HX20190810)

AuthorIntro:
史咏玄(1996-03),男,辽宁,丹东,硕士,研究方向电增强膜分离

Reference:
 [1] Logan B E, Elimelech M. Membrane-based processes for sustainable power generation using water[J]. Nature, 2012, 488(7411): 313-319.
[2] Godri Pollitt K J, Kim J-H, Peccia J, et al. 1,4-Dioxane as an emerging water contaminant: State of the science and evaluation of research needs[J]. Science of The Total Environment, 2019, 690: 853-866.
[3] Liu Y, Gao G, Vecitis C D. Prospects of an electroactive carbon nanotube membrane toward environmental applications[J]. Acc Chem Res, 2020, 53(12): 2892-2902.
[4] Feng Y, Yang L, Liu J, et al. Electrochemical technologies for wastewater treatment and resource reclamation[J]. Environ Sci : Water Res Technol, 2016, 2(5): 800-831.
[5] Mao R, Li N, Lan H, et al. Dechlorination of trichloroacetic acid using a noble metal-free graphene–Cu foam electrode via direct cathodic reduction and atomic H*[J]. Environ Sci Technol, 2016, 50(7): 3829-3837.
[6] Duan W, Ronen A, Walker S, et al. Polyaniline-coated carbon nanotube ultrafiltration membranes: Enhanced anodic stability for in situ cleaning and electro-oxidation processes[J]. ACS Appl Mater Interfaces, 2016, 8(34): 22574.
[7] Chen S, Wang G, Li S, et al. Porous carbon membrane with enhanced selectivity and antifouling capability for water treatment under electrochemical assistance[J]. J Colloid Interface Sci, 2020, 560: 59-68.
[8] Trellu C, Péchaud Y, Oturan N, et al. Comparative study on the removal of humic acids from drinking water by anodic oxidation and electro-Fenton processes: Mineralization efficiency and modelling[J]. Appl Catal B, 2016, 194: 32-41.
[9] Perry S C, Pangotra D, Vieira L, et al. Electrochemical synthesis of hydrogen peroxide from water and oxygen[J]. Nat Rev Chem, 2019, 3(7): 442-458.
[10] Olvera-Vargas H, Rouch J-C, Coetsier C, et al. Dynamic cross-flow electro-Fenton process coupled to anodic oxidation for wastewater treatment: Application to the degradation of acetaminophen[J]. Sep Purif Technol, 2018, 203: 143-151.
[11] Zhu Q, Hinkle M, Kim D J, et al. Modular hydrogen peroxide electrosynthesis cell with anthraquinone-modified polyaniline electrocatalyst[J]. ACS ES&T Engg, 2021, 1(3): 446-455.
[12] Han Y-F, Chen F, Ramesh K, et al. Preparation of nanosized Mn3O4/SBA-15 catalyst for complete oxidation of low concentration EtOH in aqueous solution with H2O2[J]. Appl Catal B, 2007, 76(3): 227-234.
[13] Saputra E, Muhammad S, Sun H, et al. A comparative study of spinel structured Mn3O4, Co3O4 and Fe3O4 nanoparticles in catalytic oxidation of phenolic contaminants in aqueous solutions[J]. J Colloid Interface Sci, 2013, 407: 467-473.
[14] Nieto-Juarez J I, Pierzch?a K, Sienkiewicz A, et al. Inactivation of MS2 coliphage in Fenton and Fenton-like systems: role of transition metals, hydrogen peroxide and sunlight[J]. Environ Sci Technol, 2010, 44(9): 3351-3356.
[15] Si Y, Sun C, Li D, et al. Flexible Superhydrophobic Metal-Based Carbon Nanotube Membrane for Electrochemically Enhanced Water Treatment[J]. Environ Sci Technol, 2020, 54(14): 9074-9082.
[16] Chen M, Zhu L, Dong Y, et al. Waste-to-resource strategy to fabricate highly porous whisker-structured mullite ceramic membrane for simulated oil-in-water emulsion wastewater treatment[J]. ACS Sustainable Chem Eng, 2016, 4(4): 2098-2106.
[17] Dong Y, Ma L, Tang C, et al. Stable Superhydrophobic Ceramic-Based Carbon Nanotube Composite Desalination Membranes[J], Nano Lett, 2018, 18(9): 5514-5521.
[18] Li L, Chen M, Dong Y, et al. A low-cost alumina-mullite composite hollow fiber ceramic membrane fabricated via phase-inversion and sintering method[J], J Eur Ceram Soc 2018, 36(8): 2057-2066.

Service:
Download】【Collect

《膜科学与技术》编辑部 Address: Bluestar building, 19 east beisanhuan road, chaoyang district, Beijing; 100029 Postal code; Telephone:010-80492417/010-80485372; Fax:010-80485372 ; Email:mkxyjs@163.com

京公网安备11011302000819号