Current Trends in Wood Preservation with Emphasis on Approaches for the Remediation of Soils Contaminated with Pentachlorophenol and Creosote

被引:0
作者
Patricia Omo-Okoro
Christopher Curtis
Chijioke Emenike
机构
[1] Dalhousie University,Department of Plant, Food and Environmental Sciences, Faculty of Agriculture
[2] University of Johannesburg,Department of Geography, Environmental Management and Energy Studies (GEMES), Faculty of Science
[3] Hezekiah University,Natural and Applied Sciences
来源
Journal of Soil Science and Plant Nutrition | 2023年 / 23卷
关键词
Abandoned Sites; Advanced Oxidation Processes; Creosote; Penta; Remediation; Wood Preservatives;
D O I
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中图分类号
学科分类号
摘要
There is a clamor for the production and use of ecofriendly products and technologies that do not compromise soil quality and environmental health. Traditional dredging techniques for cleaning up contaminated sediments have been reported as expensive, sometimes inefficient, invasive, and stressful to apply. However, studies have shown that a combination of selected in situ techniques such as advanced oxidation processes (AOPs), surfactant inclusion, use of activated carbon and biochar, soil washing, and bioremediation can constitute a highly effective long-term solution for the treatment of contaminated sites. The present review article is focused on identifying, appraising, and elaborating on modern-day and environmentally friendly strategies for treating soils contaminated with long-running wood preservatives, specifically, pentachlorophenol (Penta) and creosote. Penta and creosote used to be some of the most commonly used wood preservatives until their restriction and/or ban owing to the toxicity potential they pose to humans and aquatic organisms. This review further elucidates on emerging replacements for Penta and creosote such as dichloro-octyl-isothiazolinone (DCOI), alkaline copper quaternary (ACQ), and copper azole (CuAz). Finally, it highlights on future perspectives within the wood treatment industry.
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页码:4788 / 4804
页数:16
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共 360 条
  • [31] Wipf TJ(2022)Past, present, and future of the wood preservation industry Chemosphere 289 133252-339
  • [32] Bolan S(2005)Current status and prospects of Fenton oxidation for the decontamination of persistent organic pollutants (POPs) in soils Chemosphere 60 1279-94
  • [33] Padhye LP(2013)Soil-washing technology and practice Biotechnol Adv 31 246-4
  • [34] Mulligan CN(2019)Laboratory study of creosote removal from sand at elevated temperatures Waste Manage 87 731-31736
  • [35] Alonso ER(2008)In-situ, ex-situ, and nano-remediation strategies to treat polluted soil, water, and air–a review J Hazard Mater 152 699-1611
  • [36] Saint-Fort R(2020)Monitoring of polycyclic aromatic hydrocarbons and water-extractable phenols in creosotes and creosote-treated woods made and procurable in Japan For Prod J 70 335-24
  • [37] Jasemizad T(2018)Coupling microbial catabolic actions with abiotic redox processes: a new recipe for persistent organic pollutant (POP) removal Plant, Soil Environ 64 88-11
  • [38] Wang C(2004)Arsenic, copper, and chromium from treated wood products in the US disposal sector Resour Conserv Recycl 41 1-482
  • [39] Zhang T(2020)Degradation of pentachlorophenol with zero-valence iron coupled with microwave energy Environ Sci Pollut Res 27 31726-66
  • [40] Rinklebe J(1994)Comparative aboveground performance of pressure-treated copper azole with alternative wood protection systems under subtropical conditions Soil Biol Biochem 26 1603-307