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
Recommended Citation
Santos Rebolledo, E. M., Ortiz Martinez, C. A., Calvo Betancur, S. E., Erazo Rondón, D. G., Ordoñez Obando, D. F., Giraldo Betancur, A. L., Hincapie Rojas, D. F., & Londoño Calderón, C. L. (2026). Asymmetric Janus monolithic biocomposites via silica stratification in cellulose diacetate films for enhanced adsorption. Materials Chemistry and Physics, 370, Artículo 133082. https://doi.org/10.1016/j.matchemphys.2026.133082
