Silica aerogel-encapsulated biocide crystals for low-loading antifouling coatings: rheology, water absorption, hardness, and biofouling protection

被引:0
作者
Tenna Frydenberg
Claus Erik Weinell
Kim Dam-Johansen
Eva Wallström
Søren Kiil
机构
[1] Technical University of Denmark (DTU),The Hempel Foundation Coatings Science and Technology Centre (CoaST), Department of Chemical and Biochemical Engineering
[2] EnCoat ApS,undefined
来源
Journal of Coatings Technology and Research | 2023年 / 20卷
关键词
Antifouling coatings; Silica aerogels; Encapsulation; Fouling resistance; Copper pyrithione;
D O I
暂无
中图分类号
学科分类号
摘要
To protect surfaces against marine biofouling, the continuous leaching of biocides, such as cuprous oxide (Cu2O) and copper pyrithione (CuPT), from antifouling coatings is a widespread and effective method. However, from an environmental and economic perspective (costs of raw materials), a high biocide loading of formulations is not sustainable. Silica aerogel-encapsulated CuPT is a promising approach to reduce Cu2O and CuPT loadings without compromising the mechanical properties and antifouling performance of the coating. In the present study, silica aerogels, with varying CuPT loadings, were incorporated into model coating formulations, and selected coating properties, i.e., rheology, water absorption, and hardness, were measured and evaluated. Furthermore, to demonstrate antifouling performance, static exposure testing with the aerogel-containing coatings was performed. The level of CuPT loading of the silica aerogels did not have a significant influence on neither the water absorption nor the rheology of the coating. However, an increase in the CuPT loading of the aerogel from 0 to 80 wt% reduced the coating’s pendulum hardness from 61 to 37 s. Additionally, compared to a reference coating with nonencapsulated CuPT, results demonstrate that a coating containing silica aerogel-encapsulated CuPT provides a 17% higher antifouling resistance when evaluated according to guidance from The European Chemicals Agency.
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页码:935 / 947
页数:12
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  • [1] Srinivasan M(2007)Managing the Use of Copper-Based Antifouling Paints Environ. Manag. 39 423-441
  • [2] Swain GW(2013)Acute and Chronic Toxicities of Irgarol Alone and in Combination with Copper to the Marine Copepod Chemosphere 90 1140-1148
  • [3] Bao VWW(2009)Accumulation of Cu and Zn from Antifouling Paint Particles by the Marine Macroalga, Environ. Pollut. 157 2314-2319
  • [4] Leung KMY(2016)Release and Detection of Nanosized Copper from a Commercial Antifouling Paint Water Res. 102 374-382
  • [5] Lui GCS(2017)Metal Contamination in Harbours Impacts Life-History Traits and Metallothionein Levels in Snails PLoS One 12 e0180157-1494
  • [6] Lam MHW(2003)The Effects of a Copper-Based Antifouling Paint on Mortality and Enzymatic Activity of a Non-target Marine Organism Mar. Pollut. Bull. 46 1491-911
  • [7] Turner A(2007)Chemical Contamination of a Coral Reef by the Grounding of a Cruise Ship in Bermuda Mar. Pollut. Bull. 54 905-15
  • [8] Pollock H(2020)Nano and Traditional Copper and Zinc Antifouling Coatings: Metal Release and Impact on Marine Sessile Invertebrate Communities J. Nanopart. Res. 22 1-12
  • [9] Brown MT(2022)Biocides in Antifouling Paint Formulations Currently Registered for Use Environ. Sci. Pollut. Res. 1 1-16911
  • [10] Adeleye AS(2020)Antifouling Paints Leach Copper in Excess—Study of Metal Release Rates and Efficacy Along a Salinity Gradient Water Res. 186 116383-130