Journal of the Chinese Ceramic Society, Volume. 52, Issue 10, 3122(2024)
Enhanced Electro-Remediation of Cr(VI) Contamination by Magnetite/Pyrrhotite Composite Mineral and Analysis of Cr-Containing Products
[1] [1] AYANGBENRO A S, BABALOLA O O. A new strategy for heavy metal polluted environments: A review of microbial biosorbents[J]. Int J Environ Res Public Health, 2017, 14(1): 94.
[2] [2] XU S A, YU C, WANG Q, et al. Chromium contamination and health risk assessment of soil and agricultural products in a rural area in southern China[J]. Toxics, 2022, 11(1): 27.
[3] [3] JIN W, DU H, ZHENG S, et al. Electrochemical processes for the environmental remediation of toxic Cr(VI): A review [J]. Electrochim Acta, 2016, 191: 1044–55.
[4] [4] STERN C M, JEGEDE T O, HULSE V A, et al. Electrochemical reduction of Cr(VI) in water: Lessons learned from fundamental studies and applications[J]. Chem Soc Rev, 2021, 50(3): 1642–1667.
[5] [5] YAO Z, LI J H, XIE H, et al. Review on remediation technologies of soil contaminated by heavy metals[J]. Procedia Environ Sci, 2012, 16:722–729.
[6] [6] LIU L W, LI W, SONG W P, et al. Remediation techniques for heavy metal-contaminated soils: Principles and applicability[J]. Sci Total Environ, 2018, 633: 206–219.
[7] [7] DHAL B, THATOI H N, DAS N N, et al. Chemical and microbial remediation of hexavalent chromium from contaminated soil and mining/metallurgical solid waste: A review[J]. J Hazard Mater, 2013,250–251: 272–291.
[8] [8] PRASAD S, YADAV K K, KUMAR S, et al. Chromium contamination and effect on environmental health and its remediation:A sustainable approaches[J]. J Environ Manage, 2021, 285: 112174.
[9] [9] DURáN U, CORONADO-APODACA K G, MEZA-ESCALANTE E R, et al. Two combined mechanisms responsible to hexavalent chromium removal on active anaerobic granular consortium[J].Chemosphere, 2018, 198: 191–197.
[10] [10] LI C F, ZHOU K H, QIN W Q, et al. A review on heavy metals contamination in soil: Effects, sources, and remediation techniques[J].Soil Sediment Contam, 2019, 28(4): 380–394.
[13] [13] BARRERA-DíAZ C E, LUGO-LUGO V, BILYEU B. A review of chemical, electrochemical and biological methods for aqueous Cr(VI)reduction[J]. J Hazard Mater, 2012, 223–224: 1–12.
[14] [14] WEN D D, FU R B, LI Q. Removal of inorganic contaminants in soil by electrokinetic remediation technologies: A review[J]. J Hazard Mater, 2021, 401: 123345.
[16] [16] MIAO C, LIANG L X, ZHANG F, et al. Review of the fabrication and application of porous materials from silicon-rich industrial solid waste[J]. Int J Miner Metall Mater, 2022, 29(3): 424–438.
[17] [17] LU A H, ZHONG S J, CHEN J, et al. Removal of Cr(VI) and Cr(III) from aqueous solutions and industrial wastewaters by natural clino-pyrrhotite[J]. Environ Sci Technol, 2006, 40(9): 3064–3069.
[18] [18] JI X, ZHOU C Y, CHEN L X, et al. Reduction, mineralization, and magnetic removal of chromium from soil by using a natural mineral composite[J]. Environ Sci Ecotechnol, 2022, 11: 100181.
[20] [20] BISHOP M E, GLASSER P, DONG H L, et al. Reduction and immobilization of hexavalent chromium by microbially reduced Fe-bearing clay minerals[J]. Geochim. Cosmochim. Acta, 2014, 133:186–203.
[21] [21] JOE-WONG C, BROWN G E Jr, MAHER K. Kinetics and products of chromium(VI) reduction by iron(II/III)-bearing clay minerals[J]. Environ Sci Technol, 2017, 51(17): 9817–9825.
[25] [25] ZHU S S, LUO W D, MO Y J, et al. New insights into the role of natural organic matter in Fe-Cr coprecipitation: Importance of molecular selectivity[J]. Environ Sci Technol, 2023, 57(37):13991–14001.
[26] [26] CHARLET L, MANCEAU A. X-ray absorption spectroscopic study of the sorption of Cr(III) at the oxide-water Interface 1. Molecular mechamism of Cr(III) oxidation on Mn oxides[J]. J Colloid Interface Sci, 1992, 148(February): 425–442.
[27] [27] GOMES A, YAGHINI N, MARTINELLI A, et al. A micro-Raman spectroscopic study of Cr(OH)3 and Cr2O3 nanoparticles obtained by the hydrothermal method[J]. J Raman Spectrosc, 2017, 48(10): 1256–1263.
[28] [28] KALIWODA M, GIORDANO D, KRIIGER M E, et al. Raman spectroscopy as a tool for the quantitative estimation of chromium aluminum oxide content in chromite[J]. Spectroscopy, 2021, 36(2):17–18.
[29] [29] SOUMYA D, JIM H M. Application of Raman spectroscopy to identify iron minerals commonly found in mine wastes[J]. Chem Geol,2011, 290(3/4): 101–108.
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ZHOU Chuanye, JI Xiang, LU Anhuai, DING Hongrui, GE Xiao, WANG Changqiu, LI Yan. Enhanced Electro-Remediation of Cr(VI) Contamination by Magnetite/Pyrrhotite Composite Mineral and Analysis of Cr-Containing Products[J]. Journal of the Chinese Ceramic Society, 2024, 52(10): 3122
Received: Feb. 28, 2024
Accepted: --
Published Online: Nov. 14, 2024
The Author Email: Anhuai LU (ahlu@pku.edu.cn)