Chemical Industry and Engineering Progress ›› 2023, Vol. 42 ›› Issue (6): 2975-2986.DOI: 10.16085/j.issn.1000-6613.2022-1395
• Materials science and technology • Previous Articles Next Articles
YANG Jingying1(), SHI Wansheng1, HUANG Zhenxing1,2, XIE Lijuan1, ZHAO Mingxing1,2(), RUAN Wenquan1,2
Received:
2022-07-26
Revised:
2022-09-26
Online:
2023-06-29
Published:
2023-06-25
Contact:
ZHAO Mingxing
杨竞莹1(), 施万胜1, 黄振兴1,2, 谢利娟1, 赵明星1,2(), 阮文权1,2
通讯作者:
赵明星
作者简介:
杨竞莹(1998—),女,硕士研究生,主要研究方向为环境化学技术。E-mail:2220954965@qq.com。
基金资助:
CLC Number:
YANG Jingying, SHI Wansheng, HUANG Zhenxing, XIE Lijuan, ZHAO Mingxing, RUAN Wenquan. Research progress on the preparation of modified nano zero-valent iron materials[J]. Chemical Industry and Engineering Progress, 2023, 42(6): 2975-2986.
杨竞莹, 施万胜, 黄振兴, 谢利娟, 赵明星, 阮文权. 改性纳米零价铁材料制备的研究进展[J]. 化工进展, 2023, 42(6): 2975-2986.
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URL: https://hgjz.cip.com.cn/EN/10.16085/j.issn.1000-6613.2022-1395
1 | 黄雪征, 张永祥, 田振军, 等. 纳米零价铁的制备、改性及场地应用研究进展[J]. 水处理技术, 2021, 47(1): 12-18, 26. |
HUANG Xuezheng, ZHANG Yongxiang, TIAN Zhenjun, et al. Research progress in synthesis, modification and field application of nano zero-valent iron[J]. Technology of Water Treatment, 2021, 47(1): 12-18, 26. | |
2 | PASINSZKI Tibor, KREBSZ Melinda. Synthesis and application of zero-valent iron nanoparticles in water treatment, environmental remediation, catalysis, and their biological effects[J]. Nanomaterials (Basel, Switzerland), 2020, 10(5): 917. |
3 | 程姿, 沈伯雄, 吕宏虹, 等. 稳定剂在提高纳米材料及其复合材料环境修复性能中的应用综述[J]. 环境工程, 2022, 40(2): 225-234. |
CHENG Zi, SHEN Boxiong, Honghong LYU, et al. Application of stabilizers in improving environmental remediation performance of nanomaterials and their composites[J]. Environmental Engineering, 2022, 40(2): 225-234. | |
4 | Wei Ming NG, Jit Kang LIM. Complex interplay between colloidal stability, transport, chemical reactivity and magnetic separability of polyelectrolyte-functionalized nanoscale zero-valent iron particles (nZVI) toward their environmental engineering application[J]. Colloid and Interface Science Communications, 2022, 46: 100582. |
5 | JIEMVARANGKUL Pijit, ZHANG Weixian, LIEN Hsing Lung. Enhanced transport of polyelectrolyte stabilized nanoscale zero-valent iron (nZVI) in porous media[J]. Chemical Engineering Journal, 2011, 170(2/3): 482-491. |
6 | 贺强强, 杨洪, 孙笑笑, 等. 纳米零价铁的制备、改性及在有机物污染中的应用研究进展[J]. 资源再生, 2021(8): 46-51. |
HE Qiangqiang, YANG Hong, SUN Xiaoxiao, et al. Research progress on the preparation and modification of nano-zero-valent iron and its application in organic pollution[J]. Resource Recycling, 2021(8): 46-51. | |
7 | DONG Haoran, HE Qi, ZENG Guangming, et al. Chromate removal by surface-modified nanoscale zero-valent iron: effect of different surface coatings and water chemistry[J]. Journal of Colloid and Interface Science, 2016, 471: 7-13. |
8 | CHEN Hualin, XIE Huajun, ZHOU Jiangmin, et al. Removal efficiency of hexavalent chromium from wastewater using starch-stabilized nanoscale zero-valent iron[J]. Water Science and Technology, 2019, 80(6): 1076-1084. |
9 | SONG Mingyang, HU Xiaolei, GU Tianhang, et al. Nanocelluloses affixed nanoscale zero-valent iron (nZVI) for nickel removal: synthesis, characterization and mechanisms[J]. Journal of Environmental Chemical Engineering, 2022, 10(3): 107466. |
10 | 刘宏芳, 刘润龙, 王瑞, 等. 改性纳米零价铁去除水中Se(Ⅵ)的机理[J]. 化工环保, 2021, 41(6): 755-759. |
LIU Hongfang, LIU Runlong, WANG Rui, et al. Mechanism of Se(Ⅵ) removal from water using modified zero valent iron nanoparticles[J]. Environmental Protection of Chemical Industry, 2021, 41(6): 755-759. | |
11 | ZHANG Mengya, YI Kexin, ZHANG Xiangwei, et al. Modification of zero valent iron nanoparticles by sodium alginate and bentonite: enhanced transport, effective hexavalent chromium removal and reduced bacterial toxicity[J]. Journal of Hazardous Materials, 2020, 388: 121822. |
12 | HOU Jun, LI Yan, Hanlin CI, et al. Influence of aggregation and sedimentation behavior of bare and modified zero-valent-iron nanoparticles on the Cr(Ⅵ) removal under various groundwater chemistry conditions[J]. Chemosphere, 2022, 296: 133905. |
13 | LIU Wei, LI Tielong, LU Fangchun, et al. Synthesis of guar gum stabilized nanoscale zero-valent iron for Cr (Ⅵ) removal in water[J]. IOP Conference Series: Earth and Environmental Science, 2021, 647(1): 012101. |
14 | ZHANG Mengyue, DONG Yang, GAO Song, et al. Effective stabilization and distribution of emulsified nanoscale zero-valent iron by xanthan for enhanced nitrobenzene removal[J]. Chemosphere, 2019, 223: 375-382. |
15 | YU Qinghui, GUO Juntao, MUHAMMAD Yaseen, et al. Mechanisms of enhanced hexavalent chromium removal from groundwater by sodium carboxymethyl cellulose stabilized zerovalent iron nanoparticles[J]. Journal of Environmental Management, 2020, 276: 111245. |
16 | TIAN Huifang, LIANG Ying, ZHU Tianle, et al. Surfactant-enhanced PEG-4000-NZVI for remediating trichloroethylene-contaminated soil[J]. Chemosphere, 2018, 195: 585-593. |
17 | ELJAMAL Ramadan, ELJAMAL Osama, MAAMOUN Ibrahim, et al. Enhancing the characteristics and reactivity of nZVI: polymers effect and mechanisms[J]. Journal of Molecular Liquids, 2020, 315: 113714. |
18 | LI Jing, FAN Mingjie, LI Miao, et al. Cr(Ⅵ) removal from groundwater using double surfactant-modified nanoscale zero-valent iron (nZVI): Effects of materials in different status[J]. The Science of the Total Environment, 2020, 717: 137112. |
19 | LU Haojie, DONG Jun, ZHANG Mengyue, et al. SiO2-coated zero-valent iron nanocomposites for aqueous nitrobenzene reduction in groundwater: performance, reduction mechanism and the effects of hydrogeochemical constituents[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2018, 558: 271-279. |
20 | WAN Junjie, FENG Xin, LI Yu, et al. Effect of mesoporous silica molecular sieve coating on nZVI for 2,4-DCP degradation: morphology and mechanism during the reaction[J]. Chemical Engineering and Processing-Process Intensification, 2019, 135: 68-81. |
21 | CHENG Yujun, DONG Haoran, HAO Tianwei. CaCO3 coated nanoscale zero-valent iron (nZVI) for the removal of chromium(Ⅵ) in aqueous solution[J]. Separation and Purification Technology, 2021, 257: 117967. |
22 | HU Yibo, LI Xiaoyan. Influence of a thin aluminum hydroxide coating layer on the suspension stability and reductive reactivity of nanoscale zero-valent iron[J]. Applied Catalysis B: Environmental, 2018, 226: 554-564. |
23 | WEI Caijie, XIE Yuefeng, WANG Xiaomao, et al. Calcium hydroxide coating on highly reactive nanoscale zero-valent iron for in situ remediation application[J]. Chemosphere, 2018, 207: 715-724. |
24 | CHEN Chen, ZHANG Xiaowen, JIANG Tianjiao, et al. Removal of uranium(Ⅵ) from aqueous solution by Mg(OH)2-coated nanoscale zero-valent iron: reactivity and mechanism[J]. Journal of Environmental Chemical Engineering, 2021, 9(1): 104706. |
25 | RATANAPHAIN Chatkrita, VIBOONRATANASRI Duangkamon, PROMPINIT Panida, et al. Reactivity characterization of SiO2-coated nano zero-valent iron for iodoacetamide degradation: the effects of SiO2 thickness, and the roles of dehalogenation, hydrolysis and adsorption[J]. Chemosphere, 2022, 286: 131816. |
26 | HE Chuanshu, DING Rongrong, CHEN Jiaqi, et al. Interactions between nanoscale zero valent iron and extracellular polymeric substances of anaerobic sludge[J]. Water Research, 2020, 178: 115817. |
27 | ZHONG Jiawei, YIN Weizhao, LI Yongtao, et al. Column study of enhanced Cr(Ⅵ) removal and longevity by coupled abiotic and biotic processes using Fe0 and mixed anaerobic culture[J]. Water Research, 2017, 122: 536-544. |
28 | HE Chuanshu, DING Rongrong, ZHOU Guannan, et al. Coexistence of humic acid enhances the reductive removal of diatrizoate via depassivating zero-valent iron under aerobic conditions[J]. Journal of Materials Chemistry A, 2020, 8(29): 14634-14643. |
29 | ZHOU Lu, LI Ang, MA Fang, et al. Combining high electron transfer efficiency and oxidation resistance in nZVI with coatings of microbial extracellular polymeric substances to enhance Sb(Ⅴ) reduction and adsorption[J]. Chemical Engineering Journal, 2020, 395: 125168. |
30 | ZHOU Hongyi, ZHAO Yongkang, XIANG Junchao, et al. Facile improvement of nanoscale zero-valent iron activity with exceptional stability for reduction of Cr(Ⅵ)[J]. Journal of Environmental Engineering, 2020, 146(3): 04020006. |
31 | 杨妍, 余庆慧, 李晓娟, 等. 多孔炭材料改性纳米零价铁的研究进展[J]. 化工进展, 2021,40(S2): 198-202. |
YANG Yan, YU Qinghui, LI Xiaojuan, et al. Research progress of nano-zero-valent iron modified by porous carbon materials[J]. Chemical Industry and Engineering Progress, 2021,40(S2): 198-202. | |
32 | Eeyang LIM, TIAN Hailin, CHEN Yangyang, et al. Methanogenic pathway and microbial succession during start-up and stabilization of thermophilic food waste anaerobic digestion with biochar[J]. Bioresource Technology, 2020, 314: 123751. |
33 | Eeyang LIM, LEE Jonathan Tian En, ZHANG Le, et al. Abrogating the inhibitory effects of volatile fatty acids and ammonia in overloaded food waste anaerobic digesters via the supplementation of nano-zero valent iron modified biochar[J]. The Science of the Total Environment, 2022, 817: 152968. |
34 | ZHOU Lei, THANH Thao Le, GONG Jianyu, et al. Carboxymethyl cellulose coating decreases toxicity and oxidizing capacity of nanoscale zerovalent iron[J]. Chemosphere, 2014, 104: 155-161. |
35 | 陈砚田, 郄晗彤, 张胤杰, 等. 还原氧化石墨烯负载零价铁的合成及对TNT废水处理[J]. 高等学校化学学报, 2020, 41(8): 1836-1842. |
CHEN Yantian, Hantong QIE, ZHANG Yinjie, et al. Synthesis of reduced graphene oxide supported zero-valent iron and its treatment of TNT wastewater[J]. Chemical Journal of Chinese Universities, 2020, 41(8): 1836-1842. | |
36 | CHEN Haifeng, CAO Yu, WEI Enze, et al. Facile synthesis of graphene nano zero-valent iron composites and their efficient removal of trichloronitromethane from drinking water[J]. Chemosphere, 2016, 146: 32-39. |
37 | 刘美丽, 牛其建, 俞洋洋, 等. 碳基材料负载纳米零价铁去除六价铬的研究进展[J]. 环境科学研究, 2022, 35(3): 768-779. |
LIU Meili, NIU Qijian, YU Yangyang, et al. Progress in removal of hexavalent chromium by carbon-based materials loaded with nano zero-valent iron[J]. Research of Environmental Sciences, 2022, 35(3): 768-779. | |
38 | LIU Xingyu, YANG Lei, ZHAO Haitong, et al. Pyrolytic production of zerovalent iron nanoparticles supported on rice husk-derived biochar: Simple, in situ synthesis and use for remediation of Cr(Ⅵ)-polluted soils[J]. Science of the Total Environment, 2020, 708: 134479. |
39 | ZHANG Dejin, LI Yang, TONG Siqi, et al. Biochar supported sulfide-modified nanoscale zero-valent iron for the reduction of nitrobenzene[J]. RSC Advances, 2018, 8(39): 22161-22168. |
40 | WANG Xinzi, WANG Pan, MENG Xingyao, et al. Performance and metagenomics analysis of anaerobic digestion of food waste with adding biochar supported nano zero-valent iron under mesophilic and thermophilic condition[J]. Tte Science of the Total Environment, 2022, 820: 153244. |
41 | Jaroslav SEMERÁD, Alena ŠEVCŮ, NGUYEN Nhung H A, et al. Discovering the potential of an nZVI-biochar composite as a material for the nanobioremediation of chlorinated solvents in groundwater: degradation efficiency and effect on resident microorganisms[J]. Chemosphere, 2021, 281: 130915. |
42 | 余翰名, 梅家龙, 任伟, 等. 改性沸石负载纳米零价铁对水中硝基苯的去除研究[J]. 应用化工, 2022, 51(6): 1647-1651. |
YU Hanming, MEI Jialong, REN Wei, et al. Removal of nitrobenzene in water by nanoscale zero-valent iron supported on modified zeolite[J]. Applied Chemical Industry, 2022, 51(6): 1647-1651. | |
43 | ANGARU Ganesh Kumar Reddy, CHOI Yu Lim, LINGAMDINNE Lakshmi Prasanna, et al. Facile synthesis of economical feasible fly ash-based zeolite-supported nano zerovalent iron and nickel bimetallic composite for the potential removal of heavy metals from industrial effluents[J]. Chemosphere, 2021, 267: 128889. |
44 | KADHUM Shaimaa T, ALKINDI Ghayda Yassen, ALBAYATI Talib M. Eco friendly adsorbents for removal of phenol from aqueous solution employing nanoparticle zero-valent iron synthesized from modified green tea bio-waste and supported on silty clay[J]. Chinese Journal of Chemical Engineering, 2021, 36: 19-28. |
45 | XU Jian, DOZIER Alan, BHATTACHARYYA Dibakar. Synthesis of nanoscale bimetallic particles in polyelectrolyte membrane matrix for reductive transformation of halogenated organic compounds[J]. Journal of Nanoparticle Research, 2005, 7(4/5): 449-467. |
46 | 陆勇泽, 朱明超, 李娜. 纳米零价铁改性膜强化厌氧生物处理氯酚废水[J]. 中国环境科学, 2021, 41(12): 5664-5672. |
LU Yongze, ZHU Mingchao, LI Na. Nano zero-valent iron modified membrane in an anaerobic biological system for enhanced chlorophenol-contained wastewater treatment[J]. China Environmental Science, 2021, 41(12): 5664-5672. | |
47 | WANG Xiangyu, LIU Peng, MA Jun, et al. Preparation of novel composites based on hydrophilized and functionalized polyacrylonitrile membrane-immobilized NZVI for reductive transformation of metronidazole[J]. Applied Surface Science, 2017, 396: 841-850. |
48 | LI Na, CHEN Huaiduo, LU Yongze, et al. Nanoscale zero-valent iron-modified PVDF membrane prepared by a simple filter-press coating method can robustly remove 2-chlorophenol from wastewater[J]. Chemical Engineering Journal, 2021, 416: 127701. |
49 | TAN Lei, LU Shaoyou, FANG Zhanqiang, et al. Enhanced reductive debromination and subsequent oxidative ring-opening of decabromodiphenyl ether by integrated catalyst of nZVI supported on magnetic Fe3O4 nanoparticles[J]. Applied Catalysis B: Environmental, 2017, 200: 200-210. |
50 | SONG Yaqin, ZENG Ying, LIAO Jinxin, et al. Efficient removal of sulfamethoxazole by resin-supported zero-valent iron composites with tunable structure: performance, mechanisms, and degradation pathways[J]. Chemosphere, 2021, 269: 128684. |
51 | SCISCENKO Iván, LUCA Vittorio, RAMOS Cinthia Paula, et al. Immobilization of nanoscale zerovalent iron in hierarchically channelled polyacrylonitrile for Cr(Ⅵ) remediation in wastewater[J]. Journal of Water Process Engineering, 2021, 39: 101704. |
52 | AMEN Tareq W M, ELJAMAL Osama, KHALIL Ahmed M E, et al. Wastewater degradation by iron/copper nanoparticles and the microorganism growth rate[J]. Journal of Environmental Sciences, 2018, 74: 19-31. |
53 | AMEN Tareq W M, ELJAMAL Osama, KHALIL Ahmed M E, et al. Methane yield enhancement by the addition of new novel of iron and copper-iron bimetallic nanoparticles[J]. Chemical Engineering and Processing-Process Intensification, 2018, 130: 253-261. |
54 | LI Pengjun, LIN Kairong, FANG Zhanqiang, et al. Enhanced nitrate removal by novel bimetallic Fe/Ni nanoparticles supported on biochar[J]. Journal of Cleaner Production, 2017, 151: 21-33. |
55 | BENSAIDA Khaoula, ELJAMAL Ramadan, kareman ELJAMAL, et al. The impact of iron bimetallic nanoparticles on bulk microbial growth in wastewater[J]. Journal of Water Process Engineering, 2021, 40: 101825. |
56 | 刘清, 刘欢, 招国栋, 等. 硫化纳米零价铁在水环境修复中的研究进展[J]. 应用化工, 2021, 50(5): 1330-1334, 1340. |
LIU Qing, LIU Huan, ZHAO Guodong, et al. Research progress of sulfidated nanoscale zero-valent iron in water environment remediation[J]. Applied Chemical Industry, 2021, 50(5): 1330-1334, 1340. | |
57 | CHENG Yujun, DONG Haoran, LU Yue, et al. Toxicity of sulfide-modified nanoscale zero-valent iron to Escherichia coli in aqueous solutions[J]. Chemosphere, 2019, 220: 523-530. |
58 | 张永祥, 王晋昊, 井琦, 等. 地下水修复中纳米零价铁材料制备及应用综述[J]. 化工进展, 2021, 40(8): 4486-4496. |
ZHANG Yongxiang, WANG Jinhao, JING Qi, et al. Preparation and application of modified nanoscale zero-valent iron (nZVI) in groundwater: a review[J]. Chemical Industry and Engineering Progress, 2021, 40(8): 4486-4496. | |
59 | DONG Haoran, HOU Kunjie, QIAO Weiwei, et al. Insights into enhanced removal of TCE utilizing sulfide-modified nanoscale zero-valent iron activated persulfate[J]. Chemical Engineering Journal, 2019, 359: 1046-1055. |
60 | XU Wenqiang, LI Zhenjie, SHI Shasha, et al. Carboxymethyl cellulose stabilized and sulfidated nanoscale zero-valent iron: characterization and trichloroethene dechlorination[J]. Applied Catalysis B: Environmental, 2020, 262: 118303. |
61 | Chih ping TSO, Dave Ta Fu KUO, SHIH Yang hsin. Removal of hexabromocyclododecane by carboxymethyl cellulose stabilized Fe and Ni/Fe bimetallic nanoparticles: the particle stability and reactivity in water[J]. Chemosphere, 2020, 250: 126155. |
62 | TANG Jieyu, LIU Ziyi, ZHAO Mingxing, et al. Enhanced biogas biological upgrading from kitchen wastewater by in situ hydrogen supply through nano zero-valent iron corrosion[J]. Journal of Environmental Management, 2022, 310: 114774. |
63 | SHI Junming, WANG Jing, WANG Wei, et al. Stabilization of nanoscale zero-valent iron in water with mesoporous carbon (nZVI@MC)[J]. Journal of Environmental Sciences, 2019, 81: 28-33. |
64 | WANG Xiangyu, LE Lan, WANG Anqi, et al. Comparative study on properties, mechanisms of anionic dispersant modified nano zero-valent iron for removal of Cr(Ⅵ)[J]. Journal of the Taiwan Institute of Chemical Engineers, 2016, 66: 115-125. |
65 | LU Haojie, WEN Chunyu, GAO Song, et al. Incorporation of nanoscale zero-valent iron particles in monodisperse mesoporous silica nanospheres: characterization, reactivity, transport in porous media[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2018, 553: 28-34. |
66 | ZHANG Dejin, WEI Yidan, WU Shuyue, et al. Consolidation of hydrogenotrophic methanogenesis by sulfidated nanoscale zero-valent iron in the anaerobic digestion of food waste upon ammonia stress[J]. Science of the Total Environment, 2022, 822: 153531. |
67 | ZHANG Zhaohan, GAO Peng, CHENG Jiaqi, et al. Enhancing anaerobic digestion and methane production of tetracycline wastewater in EGSB reactor with GAC/NZVI mediator[J]. Water Research, 2018, 136: 54-63. |
68 | ZHANG Min, WANG Yuncai. Impact of biochar supported nano zero-valent iron on anaerobic co-digestion of sewage sludge and food waste: methane production, performance stability and microbial community structure[J]. Bioresource Technology, 2021, 340: 125715. |
69 | ZHANG Dejin, SHEN Jinyou, SHI Hefei, et al. Substantially enhanced anaerobic reduction of nitrobenzene by biochar stabilized sulfide-modified nanoscale zero-valent iron: process and mechanisms[J]. Environment International, 2019, 131: 105020. |
70 | SUN Muchen, JIANG Hongxuan, ZHANG Zhaohan, et al. Coupling direct voltage and granular activated carbon modified nanoscale zero valent iron for enhancing anaerobic methane production[J]. Chemosphere, 2022, 286: 131840. |
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