Nanoparticles in the environment: where do we come from, where do we go to?

被引:570
作者
Bundschuh, Mirco [1 ,2 ]
Filser, Juliane [3 ]
Luderwald, Simon [4 ]
Mckee, Moira S. [3 ]
Metreveli, George [5 ]
Schaumann, Gabriele E. [5 ]
Schulz, Ralf [4 ]
Wagner, Stephan [6 ]
机构
[1] Univ Koblenz Landau, Inst Environm Sci, Funct Aquat Ecotoxicol, Fortstr 7, D-76829 Landau, Germany
[2] Swedish Univ Agr Sci, Dept Aquat Sci & Assessment, Lennart Hjelms Vag 9, S-75007 Uppsala, Sweden
[3] Univ Bremen, UFT Ctr Environm Res & Sustainable Technol, FB 02,Leobener Str 6, D-28359 Bremen, Germany
[4] Univ Koblenz Landau, Inst Environm Sci, Ecotoxicol & Environm, Fortstr 7, D-76829 Landau, Germany
[5] Univ Koblenz Landau, Inst Environm Sci, Environm & Soil Chem, Fortstr 7, D-76829 Landau, Germany
[6] UFZ Helmholtz Ctr Environm Res, Dept Analyt Chem, Permoserstr 15, D-04318 Leipzig, Germany
关键词
Nanomaterials; Co-contaminants; Environmental parameters; Review; Fate; TITANIUM-DIOXIDE NANOPARTICLES; ZINC-OXIDE NANOPARTICLES; NATURAL ORGANIC-MATTER; SILVER NANOPARTICLES; ENGINEERED NANOMATERIALS; DAPHNIA-MAGNA; TIO2; NANOPARTICLES; CARBON NANOTUBES; CEO2; CUO NANOPARTICLES;
D O I
10.1186/s12302-018-0132-6
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Nanoparticles serve various industrial and domestic purposes which is reflected in their steadily increasing production volume. This economic success comes along with their presence in the environment and the risk of potentially adverse effects in natural systems. Over the last decade, substantial progress regarding the understanding of sources, fate, and effects of nanoparticles has been made. Predictions of environmental concentrations based on modelling approaches could recently be confirmed by measured concentrations in the field. Nonetheless, analytical techniques are, as covered elsewhere, still under development to more efficiently and reliably characterize and quantify nanoparticles, as well as to detect them in complex environmental matrixes. Simultaneously, the effects of nanoparticles on aquatic and terrestrial systems have received increasing attention. While the debate on the relevance of nanoparticle-released metal ions for their toxicity is still ongoing, it is a re-occurring phenomenon that inert nanoparticles are able to interact with biota through physical pathways such as biological surface coating. This among others interferes with the growth and behaviour of exposed organisms. Moreover, co-occurring contaminants interact with nanoparticles. There is multiple evidence suggesting nanoparticles as a sink for organic and inorganic co-contaminants. On the other hand, in the presence of nanoparticles, repeatedly an elevated effect on the test species induced by the co-contaminants has been reported. In this paper, we highlight recent achievements in the field of nano-ecotoxicology in both aquatic and terrestrial systems but also refer to substantial gaps that require further attention in the future.
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页数:17
相关论文
共 230 条
[1]   Aggregation behaviour of TiO2 nanoparticles in natural river water [J].
Adam, Veronique ;
Loyaux-Lawniczak, Stephanie ;
Labille, Jerome ;
Galindo, Catherine ;
del Nero, Mireille ;
Gangloff, Sophie ;
Weber, Tiphaine ;
Quaranta, Gaetana .
JOURNAL OF NANOPARTICLE RESEARCH, 2016, 18 (01) :1-11
[2]   Cu from dissolution of CuO nanoparticles signals changes in root morphology [J].
Adams, Josh ;
Wright, Melanie ;
Wagner, Hannah ;
Valiente, Jonathan ;
Britt, David ;
Anderson, Anne .
PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2017, 110 :108-117
[3]   Characterization of materials released into water from paint containing nano-SiO2 [J].
Al-Kattan, Ahmed ;
Wichser, Adrian ;
Vonbank, Roger ;
Brunner, Samuel ;
Ulrich, Andrea ;
Zuin, Stefano ;
Arroyo, Yadira ;
Golanski, Luana ;
Nowack, Bernd .
CHEMOSPHERE, 2015, 119 :1314-1321
[4]  
[Anonymous], 1948, Theory of the Stability of Lyophobic Colloids
[5]   Effect of cobalt and silver nanoparticles and ions on Lumbricus rubellus health and on microbial community of earthworm faeces and soil [J].
Antisari, Livia Vittori ;
Carbone, Serena ;
Gatti, Antonietta ;
Ferrando, Sara ;
Nacucchi, Michele ;
De Pascalis, Fabio ;
Gambardella, Chiara ;
Badalucco, Luigi ;
Laudicina, Vito Armando .
APPLIED SOIL ECOLOGY, 2016, 108 :62-71
[6]   Characterization of natural colloids from a river and spring in a karstic basin [J].
Atteia, O ;
Perret, D ;
Adatte, T ;
Kozel, R ;
Rossi, P .
ENVIRONMENTAL GEOLOGY, 1998, 34 (04) :257-269
[7]   Structural Degradation at the Surface of a TiO2-Based Nanomaterial Used in Cosmetics [J].
Auffan, Melanie ;
Pedeutour, Maxime ;
Rose, Jerome ;
Masion, Armand ;
Ziarelli, Fabio ;
Borschneck, Daniel ;
Chaneac, Corinne ;
Botta, Celine ;
Chaurand, Perrine ;
Labille, Jerome ;
Bottero, Jean-Yves .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2010, 44 (07) :2689-2694
[8]   Modeling nanomaterial fate and uptake in the environment: current knowledge and future trends [J].
Baalousha, M. ;
Cornelis, G. ;
Kuhlbusch, T. A. J. ;
Lynch, I. ;
Nickel, C. ;
Peijnenburg, W. ;
van den Brink, N. W. .
ENVIRONMENTAL SCIENCE-NANO, 2016, 3 (02) :323-345
[9]   Transformations of citrate and Tween coated silver nanoparticles reacted with Na2S [J].
Baalousha, M. ;
Arkill, K. P. ;
Romer, I. ;
Palmer, R. E. ;
Lead, J. R. .
SCIENCE OF THE TOTAL ENVIRONMENT, 2015, 502 :344-353
[10]   Effect of monovalent and divalent cations, anions and fulvic acid on aggregation of citrate-coated silver nanoparticles [J].
Baalousha, M. ;
Nur, Y. ;
Roemer, I. ;
Tejamaya, M. ;
Lead, J. R. .
SCIENCE OF THE TOTAL ENVIRONMENT, 2013, 454 :119-131