全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

Removal of Stabilized Silver Nanoparticles from Surface Water by Conventional Treatment Processes

DOI: 10.4236/anp.2019.82002, PP. 21-35

Keywords: Silver, Nanoparticles, Drinking Water, Water Treatment, Ag Nano Particle

Full-Text   Cite this paper   Add to My Lib

Abstract:

Engineered nanomaterials are used in many applications, including pollution sensors, photovoltaics, medical imaging, drug delivery and environmental remediation. Due to their numerous applications, silver nanoparticles (Ag NPs) are receiving a large amount of attention. Ag NPs may occur in drinking water sources either during manufacturing, consumption and/or disposal processes. This potentially leads to the presence of Ag NPs in finished drinking water, which could have public health impacts. The objective of this research was to investigate the removal of several types of stabilized Ag NPs by potable water treatment processes. Specifically, this research achieved these objectives through: 1) Synthesis of Citrate-reduced Ag NPs, Polyvinylpyrrolidone stabilized (PVP) Ag NPs and Branched polyethyleneimine stabilized (BPEI) Ag NPs, 2) Characterization of synthesized Ag NPs to determine their aggregation potential, Zeta potential profiles, (pHpzc) and obtain morphological data from SEM images, and 3) An evaluation of the efficacy of conventional water treatment processes (i.e., coagulation, flocculation, sedimentation and sand filtration) in removing stabilized Ag NPs from natural water. The three NPs were found to be stable at the nano size in natural water. Alum coagulation had no impact on the PVP and BPEI Ag NPs. Flocculation and settling were found to be key steps for removal of these NPs. The three Ag NPs were not permanently removed by means of conventional water treatment processes employed in this study.

References

[1]  Nel, A., Xia, T., Madler, L. and Li, N. (2006) Toxic Potential of Materials at the Nanolevel. Science, 311, 622-627.
https://doi.org/10.1126/science.1114397
[2]  Ju-Nam, Y. and Lead, J.R. (2008) Manufactured Nanoparticles: An Overview of Their Chemistry, Interactions and Potential Environmental Implications. Science of the Total Environment, 400, 396-414.
https://doi.org/10.1016/j.scitotenv.2008.06.042
[3]  Klaine, S.J. (2008) Nanomaterials in the Environmental: Behavior, Fate, Bioavailability, and Effects. Environmental Toxicology, 27, 1825-1851.
https://doi.org/10.1897/08-090.1
[4]  Li, Q., Mahendra, S., Lyon, D.Y., Brunet, L., Liga, M.V., Li, D. and Alvarez, P.J.J. (2008) Antimicrobial Nanomaterials for Water Disinfection and Microbial Control: Potential Applications and Implications. Water Research, 42, 4591-4602.
https://doi.org/10.1016/j.watres.2008.08.015
[5]  Benn, T.M. and Westerhoff, P. (2008) Nanoparticle Silver Released into Water from Commercially Available Sock Fabrics. Environmental Science & Technology, 42, 4133-4139.
https://doi.org/10.1021/es7032718
[6]  Blaser, S.A., Scheringer, M., MacLeod, M. and Hungerbühler, K. (2008) Estimation of Cumulative Aquatic Exposure and Risk Due to Silver: Contribution of Nano-Functionalized Plastics and Textiles. Science of the Total Environment, 390, 396-409.
https://doi.org/10.1016/j.scitotenv.2007.10.010
[7]  Boxall, A., Chaudhry, Q., Sinclair, C., Jones, A., Aitken, R., Jefferson, B. and Watts, C. (2007) Current and Future Predicted Environmental Exposure to Engineered Nanoparticles. Central Science Laboratory, York.
[8]  Park, H.-J., Kim, H.Y., Cha, S., Ahn, C.H., Roh, J., Park, S., Kim, S., Choi, K., Yi, J., Kim, Y. and Yoon, J. (2013) Removal Characteristics of Engineered Nanoparticles by Activated Sludge. Chemosphere, 92, 524-528.
https://doi.org/10.1016/j.chemosphere.2013.03.020
[9]  Pan, B. and Xing, B. (2010) Manufactured Nanoparticles and Their Sorption of Organic Chemicals. In: Donald, L.S., Ed., Advances in Agronomy, Academic Press, Cambridge, 137-181.
https://doi.org/10.1016/S0065-2113(10)08003-X
[10]  Tolaymat, T.M., El Badawy, A.M., Genaidy, A., Scheckel, K.G., Luxton, T.P. and Suidan, M. (2010) An Evidence-Based Environmental Perspective of Manufactured Silver Nanoparticle in Syntheses and Applications: A Systematic Review and Critical Appraisal of Peer-Reviewed Scientific Papers. Science of the Total Environment, 408, 999-1006.
https://doi.org/10.1016/j.scitotenv.2009.11.003
[11]  Zhang, Y., Chen, Y., Westerhoff, P., Hristovski, K. and Crittenden, J.C. (2008) Stability of Commercial Metal Oxide Nanoparticles in Water. Water Research, 42, 2204-2212.
https://doi.org/10.1016/j.watres.2007.11.036
[12]  El Badawy, A.M., Luxton, T.P., Silva, R.G., Scheckel, K.G., Suidan, M.T. and Tolaymat, T.M. (2010) Impact of Environmental Conditions (pH, Ionic Strength, and Electrolyte Type) on the Surface Charge and Aggregation of Silver Nanoparticles Suspensions. Environmental Science & Technology, 44, 1260-1266.
https://doi.org/10.1021/es902240k
[13]  Jiang, J., Oberdorster, G. and Biswas, P. (2009) Characterization of Size, Surface Charge, and Agglomeration State of Nanoparticle Dispersions for Toxicological Studies. Journal of Nanoparticle Research, 11, 77-89.
https://doi.org/10.1007/s11051-008-9446-4
[14]  Quinlivan, P.A., Li, L. and Knappe, D.R.U. (2005) Effects of Activated Carbon Characteristics on the Simultaneous Adsorption of Aqueous Organic Micropollutants and Natural Organic Matter. Water Research, 39, 1663-1673.
https://doi.org/10.1016/j.watres.2005.01.029
[15]  Chen, K.L., Mylon, S.E. and Elimelech, M. (2006) Aggregation Kinetics of Alginate-Coated Hematite Nanoparticles in Monovalent and Divalent Electrolytes. Environmental Science & Technology, 40, 1516-1523.
https://doi.org/10.1021/es0518068
[16]  Baalousha, M., Manciulea, A., Cumberland, S., Kendall, K. and Lead, J.R. (2008) Aggregation and Surface Properties of Iron Oxide Nanoparticles: Influence of pH and Natural Organic Matter. Environmental Toxicology and Chemistry, 27, 1875-1882.
https://doi.org/10.1897/07-559.1
[17]  Hyung, H., Fortner, J.D., Hughes, J.B. and Kim, J.-H. (2006) Natural Organic Matter Stabilizes Carbon Nanotubes in the Aqueous Phase. Environmental Science & Technology, 41, 179-184.
https://doi.org/10.1021/es061817g
[18]  Zhang, Y., Chen, Y., Westerhoff, P. and Crittenden, J. (2009) Impact of Natural Organic Matter and Divalent Cations on the Stability of Aqueous Nanoparticles. Water Research, 43, 4249-4257.
https://doi.org/10.1016/j.watres.2009.06.005
[19]  Chen, K.L. and Elimelech, M. (2007) Influence of Humic Acid on the Aggregation Kinetics of Fullerene (C60) Nanoparticles in Monovalent and Divalent Electrolyte Solutions. Journal of Colloid and Interface Science, 309, 126-134.
https://doi.org/10.1016/j.jcis.2007.01.074
[20]  Kilduff, J.E., Karanfil, T. and Weber Jr., W.J. (1998) Competitive Effects of Nondisplaceable Organic Compounds on Trichloroethylene Uptake by Activated Carbon. I. Thermodynamic Predictions and Model Sensitivity Analyses. Journal of Colloid and Interface Science, 205, 271-279.
https://doi.org/10.1006/jcis.1998.5602
[21]  Newcombe, G. and Drikas, M. (1997) Adsorption of NOM onto Activated Carbon: Electrostatic and Non-Electrostatic Effects. Carbon, 35, 1239-1250.
https://doi.org/10.1016/S0008-6223(97)00078-X
[22]  Mwilu, S.K., El Badawy, A.M., Bradham, K., Nelson, C., Thomas, D., Scheckel, K.G., Tolaymat, T., Ma, L. and Rogers, K.R. (2013) Changes in Silver Nanoparticles Exposed to Human Synthetic Stomach Fluid: Effects of Particle Size and Surface Chemistry. Science of the Total Environment, 447, 90-98.
https://doi.org/10.1016/j.scitotenv.2012.12.036
[23]  Tan, S., Erol, M., Attygalle, A., Du, H. and Sukhishvili, S. (2007) Synthesis of Positively Charged Silver Nanoparticles via Photoreduction of AgNO3 in Branched Polyethyleneimine/HEPES Solutions. Langmuir, 23, 9836-9843.
https://doi.org/10.1021/la701236v
[24]  Link, D.D., Walter, P.J. and Kingston, H.M. (1998) Development and Validation of the New EPA Microwave-Assisted Leach Method 3051A. Environmental Science & Technology, 32, 3628-3632.
https://doi.org/10.1021/es980559n
[25]  El Badawy, A.M., Scheckel, K.G., Suidan, M. and Tolaymat, T. (2012) The Impact of Stabilization Mechanism on the Aggregation Kinetics of Silver Nanoparticles. Science of the Total Environment, 429, 325-331.
https://doi.org/10.1016/j.scitotenv.2012.03.041
[26]  Choudhry, G.G. (1984) Humic Substances: Structural, Photophysical, Photochemical and Free Radical Aspects and Interactions with Environmental Chemicals. Gordon and Breach Publishing Group, New York.
[27]  Kilduff, J.E., Karanfil, T., Chin, Y.-P. and Weber, W.J. (1996) Adsorption of Natural Organic Polyelectrolytes by Activated Carbon: A Size-Exclusion Chromatography Study. Environmental Science & Technology, 30, 1336-1343.
https://doi.org/10.1021/es950547r
[28]  Crittenden, J.C., Trussell, R.R., Hand, D.W., Howe, K.J. and Tchobanoglous, G. (2012) Coagulation and Flocculation, MWH’s Water Treatment: Principles and Design. 3rd Edition, John Wiley & Sons, Inc., Hoboken, 541-639.
[29]  Bolto, B.A. (1995) Soluble Polymers in Water Purification. Progress in Polymer Science, 20, 987-1041.
https://doi.org/10.1016/0079-6700(95)00010-D
[30]  Jaradat, A.Q., Grimberg, S.J. and Holsen, T.M. (2009) Colloid Transport through Natural Filter Media. Journal of Environmental Engineering, 135, 544-550.
https://doi.org/10.1061/(ASCE)0733-9372(2009)135:7(544)

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133