0
Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Environmental Sources Human Health Effects Nanoplastics Policy & Risk Remediation Sign in to save

Sustainable Microplastic Remediation with Record Capacity Unleashed via Surface Engineering of Natural Fungal Mycelium Framework

Advanced Functional Materials 2023 42 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 60 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Yan Zhang, Xiangfeng Huang, Yan Zhang, Xiao Fu, Yan Zhang, Yan Zhang, Shuai Zhang, Xiao Fu, Yan Zhang, Yan Zhang, Yan Zhang, Yan Zhang, Yan Zhang, Xiao Fu, Yan Zhang, Ping Ai, Yan Zhang, Shuai Zhang, Xiao Fu, Yan Zhang, Xu Zhang, Yan Zhang, Yan Zhang, Yan Zhang, Xiangfeng Huang, Yan Zhang, Yan Zhang, Yan Zhang, Yan Zhang, Yan Zhang, Yan Zhang, Yan Zhang, Xiangfeng Huang, Xiangfeng Huang, Xingwei Feng, Xingwei Feng, Yan Zhang, Baoxi Li, Xiao Fu, Yan Zhang, Yan Zhang, Yan Zhang, Xiangfeng Huang, Yan Zhang, Xiao Fu, Yan Zhang, Yan Zhang, Yan Zhang, Keda Jin, Yan Zhang, Yan Zhang, Yan Zhang, Yan Zhang, Yan Zhang, Xingwei Feng, Yan Zhang, Yan Zhang, Xingwei Feng, Yan Zhang, Juan Hong, Xiangfeng Huang, Hongliang Cao, Hongliang Cao, Qiaoxia Yuan, Qiaoxia Yuan, Ping Ai, Yan Zhang, Hongbo Yu, Qiang Li

Summary

Researchers developed a microplastic removal system using engineered fungal mycelium that achieved record-breaking capture capacity for plastic particles in water. The surface of the fungal framework was modified to attract and trap microplastics of various types and sizes. This nature-based approach offers a sustainable and potentially scalable method for cleaning microplastic-contaminated water.

Models

Abstract Plastic‐induced pollution has recently triggered global environmental, biodiversity, and public health concerns. Plastic micro/nanoparticles suspended in water that are non‐recyclable and non‐degradable are found in plants, animals, and even human blood, and their remediation represents an emergent societal need. In this study, a highly efficient strategy is reported to remove microplastics by using a sustainable framework derived from fungal mycelium (FM), which has reached a record capacity at 2.49 g g −1 , as it is known. This excellent removal capacity results from both the inherent properties and surface cationization of the FM. First, FM has a loose entanglement and porous structure with extracellular polymeric substances on the surface, which endows FM with the capacity to adsorb microplastics. Second, FM is engineered with 2,3‐epoxypropyltrimethylammonium chloride (EPTAC) to enable its positively charged surface, which significantly enhances the adsorption of microplastics. Kinetic analysis and density functional theory reveal that the excellent microplastic removal is attributed to the enhanced electrostatic interaction between microplastics and EPTAC‐ g ‐FM. Along with the inherent merits of FM, which are natural, renewable, biodegradable, environmentally friendly, and easy to scale up, FM represents a green, facile, and cost‐effective next‐generation technology for remediating microplastics in clean water.

Sign in to start a discussion.

Share this paper