纳米银材料的净水性能研究综述

李强, 黄茁, 金雅璇, 冯骞, 贾宝杰

长江科学院院报 ›› 2024, Vol. 41 ›› Issue (11) : 41-48.

PDF(1114 KB)
PDF(1114 KB)
长江科学院院报 ›› 2024, Vol. 41 ›› Issue (11) : 41-48. DOI: 10.11988/ckyyb.20231023
水环境与水生态

纳米银材料的净水性能研究综述

作者信息 +

A Comprehensive Review on the Water Purification Performance of Silver Nanoparticles

Author information +
文章历史 +

摘要

供水水质安全一直是社会热门话题,纳米银对大肠杆菌、金黄色葡萄球菌等数十种致病微生物都有明显的抑制和灭活作用,在水处理方面具有巨大的应用潜力。聚焦纳米银材料的净水性能,介绍了纳米银材料的净水原理,对于纳米银净水材料的研究进行了整理分析,探讨了目前纳米银净水材料的研究现状,分析了纳米银的生物毒性及环境风险,对纳米银净水技术的应用前景进行了展望。研究成果可为应急水处理、水质安全保障、新型净水技术、纳米银复合材料等相关领域研究提供思路与建议。

Abstract

The safety of water supply quality is a perennial concern in society. Silver nanoparticles (AgNPs) have demonstrated significant inhibitory and inactivating effects on a variety of pathogenic microorganisms (e.g., Escherichia coli and Staphylococcus aureus), thereby underscoring their substantial potential for application in water treatment technologies. This study focuses on the water purification efficacy of AgNPs, elucidating the working mechanisms of AgNPs composite materials in water purification. It systematically organizes and analyzes the research on nanosilver materials for water purification, offering an in-depth exploration of the current state of the art in this field. The biological toxicity and environmental risks associated with nanosilver have been analyzed, along with the prospective application of AgNPs in water purification. The findings of this work offer some insights and recommendations for studies endeavors in the realms of emergency water treatment, assurance of water quality safety, novel water purification technologies, and the development of AgNPs composite materials.

关键词

纳米银 / 复合材料 / 净水技术 / 生物毒性

Key words

silver nanoparticles / composite materials / water purification technology / biotoxicity

引用本文

导出引用
李强, 黄茁, 金雅璇, . 纳米银材料的净水性能研究综述[J]. 长江科学院院报. 2024, 41(11): 41-48 https://doi.org/10.11988/ckyyb.20231023
LI Qiang, HUANG Zhuo, JIN Ya-xuan, et al. A Comprehensive Review on the Water Purification Performance of Silver Nanoparticles[J]. Journal of Yangtze River Scientific Research Institute. 2024, 41(11): 41-48 https://doi.org/10.11988/ckyyb.20231023
中图分类号: P342+4   

参考文献

[1]
王孟珍, 孙昊宇, 龙茜, 等. 纳米银复合材料与抗生素的联合抗菌性能及相关机制研究[J]. 生态毒理学报, 2020, 15(2): 39-49.
(WANG Meng-zhen, SUN Hao-yu, LONG Xi, et al. Combined Antibacterial Property and Mechanism of Nanosilver Composites and Antibiotics Against Bacteria[J]. Asian Journal of Ecotoxicology, 2020, 15(2): 39-49. (in Chinese))
[2]
MO F, ZHOU Q, HE Y. Nano-Ag: Environmental Applications and Perspectives[J]. Science of the Total Environment, 2022, 829: 154644.
[3]
PÉREZ-ETAYO L, GONZÁLEZ D, LEIVA J, et al. Antibacterial Activity of Kaolin-silver Nanomaterials: Alternative Approach to the Use of Antibiotics in Animal Production[J]. Antibiotics, 2021, 10(11): 1276.
[4]
LIU G, JIANG J, YU R, et al. Silver Nanoparticle-incorporated Porous Renewable Film as Low-cost Bactericidal and Antifouling Filter for Point-of-use Water Disinfection[J]. Industrial & Engineering Chemistry Research, 2020, 59(23):10857-10867.
[5]
白瑞, 吴睿, 季晓晖, 等. 四氧化三铁/银复合纳米材料的合成[J]. 山东化工, 2021, 50(22): 1-3, 6.
(BAI Rui, WU Rui, JI Xiao-hui, et al. Synthesis of Fe3O4/Ag Composite Nanomaterials[J]. Shandong Chemical Industry, 2021, 50(22): 1-3, 6. (in Chinese))
[6]
严雪峰. 纳米银活性炭纤维的制备及性能研究[D]. 无锡: 江南大学, 2017.
(YAN Xue-feng. Preparation and Properties of Nano-silver Activated Carbon Fiber[D]. Wuxi: Jiangnan University, 2017. (in Chinese))
[7]
ZHANG F, WU X, CHEN Y, et al. Application of Silver Nanoparticles to Cotton Fabric as an Antibacterial Textile Finish[J]. Fibers and Polymers, 2009, 10(4): 496-501.
[8]
JAIN P, PRADEEP T. Potential of Silver Nanoparticle-coated Polyurethane Foam as an Antibacterial Water Filter[J]. Biotechnology and Bioengineering, 2005, 90(1):59-63.
Silver nanoparticles can be coated on common polyurethane (PU) foams by overnight exposure of the foams to nanoparticle solutions. Repeated washing and air-drying yields uniformly coated PU foam, which can be used as a drinking water filter where bacterial contamination of the surface water is a health risk. Nanoparticles are stable on the foam and are not washed away by water. Morphology of the foam was retained after coating. The nanoparticle binding is due to its interaction with the nitrogen atom of the PU. Online tests were conducted with a prototypical water filter. At a flow rate of 0.5 L/min, in which contact time was of the order of a second, the output count of Escherichia coli was nil when the input water had a bacterial load of 10(5) colony-forming units (CFU) per mL. Combined with the low cost and effectiveness in its applications, the technology may have large implications to developing countries.Copyright (c) 2005 Wiley Periodicals, Inc.
[9]
BIELEFELDT A R, KOWALSKI K, SUMMERS R S. Bacterial Treatment Effectiveness of Point-of-use Ceramic Water Filters[J]. Water Research, 2009, 43(14): 3559-3565.
Laboratory experiments were conducted on six point-of-use (POU) ceramic water filters that were manufactured in Nicaragua; two filters were used by families for ca. 4 years and the other filters had limited prior use in our lab. Water spiked with ca. 10(6)CFU/mL of Escherichia coli was dosed to the filters. Initial disinfection efficiencies ranged from 3 - 4.5 log, but the treatment efficiency decreased with subsequent batches of spiked water. Silver concentrations in the effluent water ranged from 0.04 - 1.75 ppb. Subsequent experiments that utilized feed water without a bacterial spike yielded 10(3)-10(5)CFU/mL bacteria in the effluent. Immediately after recoating four of the filters with a colloidal silver solution, the effluent silver concentrations increased to 36 - 45 ppb and bacterial disinfection efficiencies were 3.8-4.5 log. The treatment effectiveness decreased to 0.2 - 2.5 log after loading multiple batches of highly contaminated water. In subsequent loading of clean water, the effluent water contained <20-41 CFU/mL in two of the filters. This indicates that the silver had some benefit to reducing bacterial contamination by the filter. In general these POU filters were found to be effective, but showed loss of effectiveness with time and indicated a release of microbes into subsequent volumes of water passed through the system.
[10]
GANGADHARAN D, HARSHVARDAN K, GNANASEKAR G, et al. Polymeric Microspheres Containing Silver Nanoparticles as a Bactericidal Agent for Water Disinfection[J]. Water Research, 2010, 44(18): 5481-5487.
A facile methodology has been developed by anchoring silver nanoparticles on to the macroporous methacrylic acid copolymer beads for disinfection of water in this study. Methacrylic acid copolymer beads are prepared by suspension polymerization technique. Silver nanoparticles formed on these copolymer beads by chemical reduction method are stable and are not washed away by water washing. Their stability is due to the interaction of nanoparticles with the carboxylic functional group on the copolymer beads. Copolymer beads containing silver nanoparticles are tested for their antibacterial activity against two gram positive and two gram negative bacteria. Antibacterial activity tested shows that they can be a potent biocidal material for water disinfection as they are highly effective against both gram positive and gram negative bacteria tested. The silver nanoparticles bound copolymer beads performed efficiently in bringing down the bacterial count to zero for all the strains tested except spore forming Bacillus subtilis which showed 99.9% reduction. There is no bacterial adsorption/adhesion on the copolymer beads containing silver nanoparticles proving them as effective water disinfectant.Copyright © 2010 Elsevier Ltd. All rights reserved.
[11]
HONG X S, WEN J J, XIONG X H, et al. Silver Nanowire-carbon Fiber Cloth Nanocomposites Synthesized by UV Curing Adhesive for Electrochemical Point-of-use Water Disinfection[J]. Chemosphere, 2016,154:537-545.
[12]
LIN S, HUANG R, CHENG Y, et al. Silver Nanoparticle-alginate Composite Beads for Point-of-use Drinking Water Disinfection[J]. Water Research, 2013, 47(12): 3959-3965.
Silver nanoparticles (AgNPs)-alginate composite beads were synthesized using three different approaches as filler materials of packed columns for simultaneous filtration-disinfection as an alternative portable water treatment process. The prepared composite beads were packed into a column through which Escherichia coli containing water was filtered to evaluate the disinfection efficacy. Excellent disinfection performance (no detectable viable colony) was achieved with a hydraulic retention time (HRT) as short as 1 min (the shortest tested) with the SGR (Simultaneous-Gelation-Reduction) and AR (Adsorption-Reduction) beads that were prepared using in situ reduction of Ag(+). Comparatively, the SGR beads released significantly less Ag(+)/AgNPs than the AR beads did within the same HRT. From the results of this study it was identified that SGR may be the best choice among all three different synthesis approaches in that the SGR beads can achieve satisfactory bactericidal performance with a relatively low material consumption rate.Copyright © 2012 Elsevier Ltd. All rights reserved.
[13]
LOO S L, KRANTZ W B, FANE A G, et al. Bactericidal Mechanisms Revealed for Rapid Water Disinfection by Superabsorbent Cryogels Decorated with Silver Nanoparticles[J]. Environmental Science & Technology, 2015, 49(4):2310-2318.
[14]
KIRUBA V S A, SELVAKUMAR P M, DAKSHINAMURTHY A. Biocidal Nano-silver Reinforced Activated Charcoal in Water Treatment[J]. Synthesis and Reactivity in Inorganic, Metal-Organic, and Nano-Metal Chemistry, 2015, 45(10): 1570-1575.
[15]
HAIDER M S, SHAO G N, IMRAN S M, et al. Aminated Polyethersulfone-silver Nanoparticles (AgNPs-APES) Composite Membranes with Controlled Silver Ion Release for Antibacterial and Water Treatment Applications[J]. Materials Science and Engineering: C, 2016, 62: 732-745.
[16]
PARK S, KO Y S, JUNG H, et al. Disinfection of Waterborne Viruses Using Silver Nanoparticle-decorated Silica Hybrid Composites in Water Environments[J]. Science of the Total Environment, 2018, 625: 477-485.
[17]
DANKOVICH T A, GRAY D G. Bactericidal Paper Impregnated with Silver Nanoparticles for Point-of-use Water Treatment[J]. Environmental Science & Technology, 2011, 45(5): 1992-1998.
[18]
YANG Z, YANG K, NI H, et al. Nanofibrils in 3D Aligned Channel Arrays with Synergistic Effect of Ag/NPs for Rapid and Highly Efficient Electric Field Disinfection[J]. Chinese Chemical Letters, 2021, 32(10): 3143-3148.
The disinfection of waterborne pathogens from drinking water is extremely important for human health. Although countless efforts have been devoted for drinking water inactivation, challenges still exist in terms of relative high energy consumption and complicated to implement and maintain. Here, silver nanoparticles anchoring wood carbon (Ag NPs/WC) membrane is developed as cost-effective, high flux, scalable filter for highly efficient electric field disinfection of water. Under electric field of 4 V voltage, the designed membrane achieved more than 5 log (99.999%) disinfection performance for different model bacteria, including <em>Escherichia coli</em> (<em>E. coli</em>), <em>Enterococcus faecalis</em> (<em>E. faecalis</em>), <em>Salmonella enterica serovar Typhimirium</em> (<em>S. Typhimurium</em>) and <em>Bacillus subtilis</em> (<em>B. subtilis</em>) with a high flux of 3.8&times;10<sup>3</sup> L m<sup>-2</sup> h<sup>-1</sup>, extremely low energy consumption of 2 J L<sup>-1</sup> m<sup>-2</sup> and fantastic durability (7 days). The high disinfection performance of Ag NPs/WC membrane is attributed to the synergistic disinfection of carbon nanofibrils, Ag nanoparticles as well as the low tortuous structure of the channels in wood carbon. The Ag NPs/WC membrane presents a promising strategy for point-of-use drinking water electric field disinfection treatment.
[19]
ZHANG Y, YANG J C E, FU M L, et al. One-step Fabrication of Recycled Ag Nanoparticles/Graphene Aerogel with High Mechanical Property for Disinfection and Catalytic Reduction of 4-nitrophonel[J]. Environmental Technology, 2019, 40(25): 3381-3391.
[20]
NASROLLAHZADEH M, AKBARI R, ISSAABADI Z, et al. Biosynthesis and Characterization of Ag/MgO Nanocomposite and Its Catalytic Performance in the Rapid Treatment of Environmental Contaminants[J]. Ceramics International, 2020, 46(2): 2093-2101.
[21]
TIWARI A, SHUKLA A, Lalliansanga, et al. Synthesis and Characterization of Ag0(NPs)/TiO2 Nanocomposite: Insight Studies of Triclosan Removal from Aqueous Solutions[J]. Environmental Technology, 2020, 41(26): 3500-3514.
[22]
HUERTA-AGUILAR C A, GARCÍA GUTIÉRREZ Y S, THANGARASU P. Crystal Plane Directed Interaction of TiO2 [1 0 1] with AgNPs [1 1 1] Silver Nanoparticles Enhancing Solar Light Induced Photo-catalytic Oxidation of Ciprofloxacin: Experimental and Theoretical Studies[J]. Chemical Engineering Journal, 2020, 394: 124286.
[23]
LIU Y, ZHOU H, WANG J, et al. Facile Synthesis of Silver Nanocatalyst Decorated Fe3O4@PDA Core-shell Nanoparticles with Enhanced Catalytic Properties and Selectivity[J]. RSC Advances, 2022, 12(7): 3847-3855.
[24]
WU P, XUE Q, LIU J, et al. In Situ Depositing Ag NPs on PDA/SiW11V Co-encapsulated Fe3O4@TiO2 Magnetic Microspheres as Highly Efficient and Durable Visible-light-driven Photocatalysts[J]. ChemCatChem, 2021, 13(1): 388-396.
[25]
ZHAO X, WU P, LEI Y, et al. Sun-light-driven Plasmonic Ag/AgCl@TNT Photocatalysts for High-efficient Absorption-regeneration and Photocatalytic Degradation[J]. Applied Surface Science, 2020, 529: 147010.
[26]
LIN C, MA J, YI F, et al. AgNPs Modified Plasmonic Z-scheme Photocatalyst Bi4Ti3O12/Ag/Ag3PO4 with Improved Performance for Pollutants Removal under Visible Light Irradiation[J]. Ceramics International, 2020, 46(10): 14650-14661.
[27]
MENG X, DUAN C, ZHANG Y, et al. Corncob-supported AgNPS@ZIF-8 Nanohybrids as Multifunction Biosorbents for Wastewater Remediation: Robust Adsorption, Catalysis and Antibacterial Activity[J]. Composites Science and Technology, 2020, 200: 108384.
[28]
SAQUIB M, KAUSHIK R, HALDER A. Photoelectrochemical Activity of Ag Coated 2D-TiO2/RGO Heterojunction for Hydrogen Evolution Reaction and Environmental Remediation[J]. ChemistrySelect, 2020, 5(21): 6376-6388.
[29]
蒲高忠, 王柯懿, 陈霞霞, 等. 水环境中人工合成纳米银颗粒的来源、转化和生态毒性研究进展[J]. 广西科学, 2021, 28(4):363-372.
(PU Gao-zhong, WANG Ke-yi, CHEN Xia-xia, et al. Research Progress on Source, Transformation and Eco-toxicological Effect of Silver Nanoparticles in Aquatic Environment:a Review[J]. Guangxi Sciences, 2021, 28(4):363-372. (in Chinese))
[30]
李语童, 薛玉英. 纳米银神经毒性研究进展[J]. 中国细胞生物学学报, 2021, 43(7): 1504-1509.
(LI Yu-tong, XUE Yu-ying. Research Progress of Neurotoxicity Induced by Silver Nanoparticles[J]. Chinese Journal of Cell Biology, 2021, 43(7): 1504-1509. (in Chinese))
[31]
ABAD-ÁLVARO I, TRUJILLO C, BOLEA E, et al. Silver Nanoparticles-clays Nanocomposites as Feed Additives: Characterization of Silver Species Released during in Vitro Digestions. Effects on Silver Retention in Pigs[J]. Microchemical Journal, 2019, 149: 104040.
[32]
CHOI J E, KIM S, AHN J H, et al. Induction of Oxidative Stress and Apoptosis by Silver Nanoparticles in the Liver of Adult Zebrafish[J]. Aquatic Toxicology, 2010, 100(2): 151-159.
Silver nanoparticles (AgNPs) may induce deleterious effects in aquatic life on environmental release. The hepatotoxicity of AgNPs was assessed in the liver of adult zebrafish, with the aim of studying the roles of oxidative damage and apoptosis. Zebrafish were exposed to an AgNP solution in which free Ag+ ions were absent at the time of treatment. However, the metal-sensitive metallothionein 2 (MT2) mRNA was induced in the liver tissues of AgNP-treated zebrafish, suggesting that Ag+ ions were released from AgNPs after treatment. It is also possible that MT2 mRNA was induced in the liver tissues by AgNP-generated free radicals. A number of cellular alterations including disruption of hepatic cell cords and apoptotic changes were observed in histological analysis of the liver tissues. The levels of malondialdehyde, a byproduct of cellular lipid peroxidation, and total glutathione were increased in the tissues after treatment with AgNPs. The mRNA levels of the oxyradical-scavenging enzymes catalase and glutathione peroxidase 1a were reduced in the tissues. AgNP treatment induced DNA damage, as demonstrated by analysis with the double-strand break marker γ-H2AX and the expression of p53 protein in liver tissues. In addition, the p53-related pro-apoptotic genes Bax, Noxa, and p21 were upregulated after treatment with AgNPs. These data suggest that oxidative stress and apoptosis are associated with AgNP toxicity in the liver of adult zebrafish.Copyright 2009 Elsevier B.V. All rights reserved.
[33]
DESHMUKH S P, PATIL S M, MULLANI S B, et al. Silver Nanoparticles as an Effective Disinfectant: a Review[J]. Materials Science and Engineering: C, 2019, 97: 954-965.
[34]
DOIRON K, PELLETIER E, LEMARCHAND K. Impact of Polymer-coated Silver Nanoparticles on Marine Microbial Communities: a Microcosm Study[J]. Aquatic Toxicology, 2012, 124: 22-27.
[35]
BEER C, FOLDBJERG R, HAYASHI Y, et al. Toxicity of Silver Nanoparticles—Nanoparticle or Silver Ion?[J]. Toxicology Letters, 2012, 208(3): 286-292.
[36]
易峰. 纳米银颗粒的迁移、转化及微生物毒性作用的研究[D]. 长沙: 湖南大学, 2017.
(YI Feng.Study on Migration, Transformation and Microbial Toxicity of Nano-silver Particles[D]. Changsha: Hunan University, 2017. (in Chinese))
[37]
舒昆慧, 张丽, 伍玲丽, 等. 纳米银与银离子对土壤微生物及酶活性的影响[J]. 生态毒理学报, 2019, 14(2): 242-250.
(SHU Kun-hui, ZHANG Li, WU Ling-li, et al. Effects of Silver Nanoparticles and Silver Ions on Soil Microorganisms and Enzyme Activities[J]. Asian Journal of Ecotoxicology, 2019, 14(2): 242-250. (in Chinese))
[38]
COLMAN B P, ARNAOUT C L, ANCIAUX S, et al. Low Concentrations of Silver Nanoparticles in Biosolids Cause Adverse Ecosystem Responses under Realistic Field Scenario[J]. PLoS One, 2013, 8(2): e57189.
[39]
辛琦, 章强, 程金平. 纳米银对鱼类的毒性效应研究进展[J]. 生态毒理学报, 2014, 9(6): 1014-1026.
(XIN Qi, ZHANG Qiang, CHENG Jin-ping. Review on the Toxicology Study of Silver Nanoparticles on Fish Species[J]. Asian Journal of Ecotoxicology, 2014, 9(6): 1014-1026. (in Chinese))

基金

中央级公益性科研院所基本科研业务费项目(CKSF2023400/TG8)

编辑: 罗娟
PDF(1114 KB)

Accesses

Citation

Detail

段落导航
相关文章

/