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Facile Preparation of Ultrafine Aluminum Hydroxide Particles with or without Mesoporous MCM-41 in Ambient Environments
Published on: May 11, 2017
Volcano-Type Pore-Size Dependence of HMF Adsorption in Aluminum-Based Metal-Organic Frameworks: A Transport-Affinity
Fei Xiao1, Xingjie Wang1, Hao Zhao1
1State Key Laboratory of Advanced Papermaking and Paper-based Materials, School of Light Industry and Engineering, South China University of Technology, Guangzhou510641, PR China.
Abstract:
Furfural derivatives like 5-hydroxymethylfurfural (HMF) are potent fermentation inhibitors whose selective removal remains a bottleneck in biorefining due to limited pore-level mechanistic understanding. Here, we deploy five metal-organic frameworks with graded pore apertures to elucidate pore-size effects on HMF adsorption. Integrated kinetic, thermodynamic, and dynamic breakthrough studies reveal a volcano-type trend governed by a dual trade-off between steric accessibility and spatial confinement. MIL-53(Al)-TDC, with an optimally matched 8.1 Å pore balancing rapid intracrystalline diffusion with strong host-guest affinity, synergizes π-π stacking and hydrophobic microenvironments to deliver an HMF capacity of 579.58 mg·g-1 and mass transfer coefficient of 22.36 L·g-1·h-1. Breakthrough experiments demonstrate its potential for continuous purification of simulated hydrolysate. A technoeconomic assessment confirms 33-50% lower equipment investment and 47-51% lower annualized cost vs conventional distillation. This work establishes a predictive framework coupling pore commensurability with interfacial interactions, guiding rational design of adsorbents for biorefinery separations.
