Document Type

Article

Publication Title

Materials Chemistry and Physics

Abstract

This study presents a waste-to-interface strategy for engineering high-performance Janus monolithic adsorbents through a circular biorefinery pathway utilizing coffee and rice residues. We demonstrate that a critical loading of 20 wt% biogenic submicron silica into a coffee-derived cellulose diacetate matrix triggers a definitive gravityinduced stratification, transforming a traditional isotropic film into a sophisticated asymmetric architecture. This Janus transition yields a superhydrophilic interface (contact angle < 5◦) and significantly enhances surface porosity, effectively bypassing the diffusion barriers that typically limit homogeneous biocomposites. Methylene Blue adsorption trials reveal that this 20 wt% threshold achieves rapid adsorption kinetics (p < 0.05) by maximizing active-site accessibility. In contrast to conventional powder adsorbents, these monolithic films enable zero-energy manual recovery, entirely eliminating the need for energy-intensive post-treatment separation. By bridging the gap between multi-feedstock valorization and anisotropic materials science, this work provides a scalable blueprint for sustainable, high-flux water remediation

DOI

10.1016/j.matchemphys.2026.133082

Publication Date

28-8-2026

Language

eng

Rights

open access

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