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Sustainable environmental remediation via biomimetic multifunctional lignocellulosic nano-framework
by
Yuan, Joshua S.
, Zhang, Peng
, McCarl, Bruce A.
, Li, Jinghao
, Long, Bin
, Bakker, Christopher
, Yu, Jiali
, Li, Xiaohan
, Da, Yabin
, Dai, Susie Y.
in
147/135
/ 631/61/54/989
/ 639/301/54
/ 704/172/169/896
/ 82/58
/ Adsorption
/ Biodegradability
/ Biodegradation
/ Biomimetics
/ Bioremediation
/ Biotransformation
/ Chemical pollution
/ Contaminants
/ Detoxification
/ Environmental cleanup
/ Environmental health
/ Environmental protection
/ Environmental restoration
/ Flowers & plants
/ Fungi
/ Humanities and Social Sciences
/ Lignocellulose
/ Microorganisms
/ multidisciplinary
/ Nutrients
/ Perfluoroalkyl & polyfluoroalkyl substances
/ Persistent organic pollutants
/ Pollutants
/ Science
/ Science (multidisciplinary)
/ Substrates
/ Sustainability
/ Sustainable ecosystems
/ Sustainable remediation
2022
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Sustainable environmental remediation via biomimetic multifunctional lignocellulosic nano-framework
by
Yuan, Joshua S.
, Zhang, Peng
, McCarl, Bruce A.
, Li, Jinghao
, Long, Bin
, Bakker, Christopher
, Yu, Jiali
, Li, Xiaohan
, Da, Yabin
, Dai, Susie Y.
in
147/135
/ 631/61/54/989
/ 639/301/54
/ 704/172/169/896
/ 82/58
/ Adsorption
/ Biodegradability
/ Biodegradation
/ Biomimetics
/ Bioremediation
/ Biotransformation
/ Chemical pollution
/ Contaminants
/ Detoxification
/ Environmental cleanup
/ Environmental health
/ Environmental protection
/ Environmental restoration
/ Flowers & plants
/ Fungi
/ Humanities and Social Sciences
/ Lignocellulose
/ Microorganisms
/ multidisciplinary
/ Nutrients
/ Perfluoroalkyl & polyfluoroalkyl substances
/ Persistent organic pollutants
/ Pollutants
/ Science
/ Science (multidisciplinary)
/ Substrates
/ Sustainability
/ Sustainable ecosystems
/ Sustainable remediation
2022
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Sustainable environmental remediation via biomimetic multifunctional lignocellulosic nano-framework
by
Yuan, Joshua S.
, Zhang, Peng
, McCarl, Bruce A.
, Li, Jinghao
, Long, Bin
, Bakker, Christopher
, Yu, Jiali
, Li, Xiaohan
, Da, Yabin
, Dai, Susie Y.
in
147/135
/ 631/61/54/989
/ 639/301/54
/ 704/172/169/896
/ 82/58
/ Adsorption
/ Biodegradability
/ Biodegradation
/ Biomimetics
/ Bioremediation
/ Biotransformation
/ Chemical pollution
/ Contaminants
/ Detoxification
/ Environmental cleanup
/ Environmental health
/ Environmental protection
/ Environmental restoration
/ Flowers & plants
/ Fungi
/ Humanities and Social Sciences
/ Lignocellulose
/ Microorganisms
/ multidisciplinary
/ Nutrients
/ Perfluoroalkyl & polyfluoroalkyl substances
/ Persistent organic pollutants
/ Pollutants
/ Science
/ Science (multidisciplinary)
/ Substrates
/ Sustainability
/ Sustainable ecosystems
/ Sustainable remediation
2022
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Sustainable environmental remediation via biomimetic multifunctional lignocellulosic nano-framework
Journal Article
Sustainable environmental remediation via biomimetic multifunctional lignocellulosic nano-framework
2022
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Overview
Chemical pollution threatens human health and ecosystem sustainability. Persistent organic pollutants (POPs) like per- and polyfluoroalkyl substances (PFAS) are expensive to clean up once emitted. Innovative and synergistic strategies are urgently needed, yet process integration and cost-effectiveness remain challenging. An in-situ PFAS remediation system is developed to employ a plant-derived biomimetic nano-framework to achieve highly efficient adsorption and subsequent fungal biotransformation synergistically. The multiple component framework is presented as Renewable Artificial Plant for In-situ Microbial Environmental Remediation (RAPIMER). RAPIMER exhibits high adsorption capacity for the PFAS compounds and diverse adsorption capability toward co-contaminants. Subsequently, RAPIMER provides the substrates and contaminants for in situ bioremediation via fungus
Irpex lacteus
and promotes PFAS detoxification. RAPIMER arises from cheap lignocellulosic sources, enabling a broader impact on sustainability and a means for low-cost pollutant remediation.
Persistent organic pollutant (POP) remediation is important for protecting the environment and human health but can be expensive. Here, the authors report on the creation of a plant-based remediation material which can absorb high levels of POPs and then provide the nutrients needed for fungal degradation and detoxification.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Portfolio
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