MOF/polymer synergistic hybrid materials transforming the farm-to-table chain: chemical construction, performance regulation, and applications

Abstract Modern agriculture and food systems require materials combining controlled porosity, well-defined active sites, and scalable processability. MOF/polymer hybrids meet this need by integrating the film-forming ability, mechanical flexibility, and environmental protection of polymers with the high surface area, ordered pores, and tunable coordination chemistry of MOFs. However, enthalpic mismatch, particle agglomeration, and non-selective interfacial voids can compromise pore accessibility and mass transport under humid, aqueous, and variable-pH agri-food conditions. This review presents an interface-centered framework that organizes MOF/polymer hybrids into four principal architectures and connects their multiscale bonding mechanisms with structure–property relationships across the farm-to-table chain. It examines how controlled dispersion, in situ growth, coordinative anchoring, covalent coupling, and polymer–ligand integration suppress non-selective voids, regulate interfacial free volume, and preserve accessible MOF channels. These mechanisms have enabled MOF/polymer gas-separation membranes to surpass conventional Robeson upper bounds by reconciling permeability and selectivity. Their systematic evaluation can therefore serve as a mechanistic reference for designing agri-food membranes and packaging that balance selective transport, barrier performance, mechanical integrity, and scalable processing. Applications in environmental remediation, food-safety sensing, controlled agrochemical delivery, membrane-based food processing, and active packaging are systematically examined. Safety issues, including metal-ion and ligand leaching, particle release, biocompatibility, and biodegradability, are discussed alongside perspectives on interfacial engineering, AI-assisted discovery, and regulation.

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Publication Details

Journal
Advanced Composites and Hybrid Materials
Published
2026-09-17
DOI
https://doi.org/10.1007/s42114-026-02043-8
Primary Topic
Membrane Separation Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

MOF/polymer synergistic hybrid materials transforming the farm-to-table chain: chemical construction, performance regulation, and applications

Da Ma, Xiaoxue Jia, Rui Liu, Bei Fan et al.
Advanced Composites and Hybrid Materials
Membrane Separation Technologies
article

MOF/polymer synergistic hybrid materials transforming the farm-to-table chain: chemical construction, performance regulation, and applications

Da Ma, Xiaoxue Jia, Rui Liu, Bei Fan, Fengzhong Wang, Hao Lei, Bing Li, Cheng-I Wei, Peihua Ma
article en

Abstract

Abstract Modern agriculture and food systems require materials combining controlled porosity, well-defined active sites, and scalable processability. MOF/polymer hybrids meet this need by integrating the film-forming ability, mechanical flexibility, and environmental protection of polymers with the high surface area, ordered pores, and tunable coordination chemistry of MOFs. However, enthalpic mismatch, particle agglomeration, and non-selective interfacial voids can compromise pore accessibility and mass transport under humid, aqueous, and variable-pH agri-food conditions. This review presents an interface-centered framework that organizes MOF/polymer hybrids into four principal architectures and connects their multiscale bonding mechanisms with structure–property relationships across the farm-to-table chain. It examines how controlled dispersion, in situ growth, coordinative anchoring, covalent coupling, and polymer–ligand integration suppress non-selective voids, regulate interfacial free volume, and preserve accessible MOF channels. These mechanisms have enabled MOF/polymer gas-separation membranes to surpass conventional Robeson upper bounds by reconciling permeability and selectivity. Their systematic evaluation can therefore serve as a mechanistic reference for designing agri-food membranes and packaging that balance selective transport, barrier performance, mechanical integrity, and scalable processing. Applications in environmental remediation, food-safety sensing, controlled agrochemical delivery, membrane-based food processing, and active packaging are systematically examined. Safety issues, including metal-ion and ligand leaching, particle release, biocompatibility, and biodegradability, are discussed alongside perspectives on interfacial engineering, AI-assisted discovery, and regulation.

Advanced Composites and Hybrid Materials
Jinan University (CN), Institute of Agro-Products Processing Science and Technology (CN), University of Maryland, College Park (US), South China University of Technology (CN)
National Key Research and Development Program of China
Zero hunger
Openalex Percentile: Top 21%
Membrane Separation Technologies
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