TY - RPRT A1 - Potthoff, A. A1 - Unger, Wolfgang T1 - Report on SOP for dispersing nanomaterials in water and report on round robin test. N2 - This report describes a standard operation procedure for dispersion of nanomaterials in liquids prior to toxicological or ecotoxicological testing. Main factors, who determine the state of agglomeration and aggregation of ENMs after dispersion are specific energy input, particle concentration and fluid composition. The method was validated in two round robin tests, where two typical nanomaterials (a nanopowder and a nanodispersion) were investigated. One main result arising out of the data comparison was that only those participants, who were able to follow the instructions in the SOPs completely, received similar results regarding particle size and zeta potential. The SOP is easy to adapt for other types of nanomaterials. The results provide the standardization process and were presented at DIN working group. KW - Dispersion of nano materials KW - AEROSILĀ® OX50 KW - LEVASIL 50/50 PY - 2019 UR - http://publica.fraunhofer.de/documents/N-541033.html DO - https://doi.org/10.24406/ikts-n-541033 SP - 1 EP - 24 AN - OPUS4-48022 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Kaur, I. A1 - Ellis, L.-J. A1 - Romer, I. A1 - Tantra, R. A1 - Carriere, M. A1 - Allard, S. A1 - Mayne-L'Hermite, M. A1 - Minelli, C. A1 - Unger, Wolfgang A1 - Potthoff, A. A1 - Rades, Steffi A1 - Valsami-Jones, E. T1 - Dispersion of nanomaterials in aqueous media: Towards protocol optimization JF - Journal of Visualized Experiments N2 - The sonication process is commonly used for de-agglomerating and dispersing nanomaterials in aqueous based media, necessary to improve homogeneity and stability of the suspension. In this study, a systematic step-wise approach is carried out to identify optimal sonication conditions in order to achieve a stable dispersion. This approach has been adopted and shown to be suitable for several nanomaterials (cerium oxide, zinc oxide, and carbon nanotubes) dispersed in deionized (DI) water. However, with any change in either the nanomaterial type or dispersing medium, there needs to be optimization of the basic protocol by adjusting various factors such as sonication time, power, and sonicator type as well as temperature rise during the process. The approach records the dispersion process in detail. This is necessary to identify the time Points as well as other above-mentioned conditions during the sonication process in which there may be undesirable changes, such as damage to the particle surface thus affecting surface properties. Our goal is to offer a harmonized approach that can control the Quality of the final, produced dispersion. Such a guideline is instrumental in ensuring dispersion quality repeatability in the nanoscience community, particularly in the field of nanotoxicology. KW - Dispersion of nanomaterials KW - Aqueous media KW - Protocol development PY - 2017 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-435886 UR - https://www.jove.com/video/56074 DO - https://doi.org/10.3791/56074 SN - 1940-087X IS - 130 SP - e560741, 1 EP - e560741, 23 PB - MyJove Corp. CY - Cambridge, MA, USA AN - OPUS4-43588 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -