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1.
Biofouling ; 34(4): 453-463, 2018 04.
Article in English | MEDLINE | ID: mdl-29764200

ABSTRACT

How zinc oxide influences copper release has been tested and the lowest release rate of copper from various combinations of copper and zinc in a paint matrix evaluated, whilst still deterring macrofouling, including barnacles and bryozoans. Copper (I) oxide was added to a generic AF paint in 0, 8.5, 11.7 or 16.3 wt% copper oxide in combination with 0, 10 or 20 wt% zinc oxide and applied on PMMA panels. The results show that zinc influences the release rate of copper. When 10 and 20 wt% zinc was added, the total amount of copper released significantly increased by on average 32 and 47% respectively. All treatments that included copper were successful in deterring macrofouling, including the treatment with the lowest average Cu release rate, ie 4.68 µg cm-2 day-1.


Subject(s)
Biofouling/prevention & control , Copper/chemistry , Paint , Ships , Zinc Oxide/chemistry , Animals , Bryozoa , Thoracica
2.
Environ Pollut ; 225: 490-496, 2017 Jun.
Article in English | MEDLINE | ID: mdl-28341326

ABSTRACT

The release of copper (Cu) and zinc (Zn) from vessels and leisure crafts coated with antifouling paints can pose a threat to water quality in semi-enclosed areas such as harbors and marinas as well as to coastal archipelagos. However, no reliable, practical and low-cost method exists to measure the direct release of metals from antifouling paints. Therefore, the paint industry and regulatory authorities are obliged to use release rate measurements derived from either mathematical models or from laboratory studies. To bridge this gap, we have developed a novel method using a handheld X-Ray Fluorescence spectrometer (XRF) to determine the cumulative release of Cu and Zn from antifouling paints. The results showed a strong linear relationship between XRF Kα net intensities and metal concentrations, as determined by ICP-MS. The release of Cu and Zn were determined for coated panels exposed in harbors located in the Baltic Sea and in Kattegat. The field study showed salinity to have a strong impact on the release of Cu, i.e. the release increased with salinity. Contrary, the effect of salinity on Zn was not as evident. As exemplified in this work, the XRF method also makes it possible to identify the governing parameters to the release of Cu and Zn, e.g. salinity and type of paint formulation. Thus, the XRF method can be used to measure environmentally relevant releases of metallic compounds to design more efficient and optimized antifouling coatings.


Subject(s)
Copper/analysis , Paint , Spectrometry, X-Ray Emission , Water Pollutants, Chemical/analysis , Zinc/analysis , Copper/chemistry , Environment , Metals/analysis , Models, Theoretical , Salinity , Ships , Water Pollutants, Chemical/chemistry , X-Rays , Zinc/chemistry
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