ABSTRACT The microbial fermentation efficiency of biomass‐derived sugars into biofuels and bioplastics is severely hindered by inhibitory compounds such as furfural and 5‐hydroxymethylfurfural generated during biomass hydrolysis, highlighting the urgent need for their selective and efficient removal. Herein, we report the design and application of a metal–organic framework (MOF), MIL‐53‐TDC, featuring a well‐defined one‐dimensional pore structure that enables rapid and selective molecular sieving of furfural from pentose sugars. Comprehensive static and dynamic adsorption studies reveal an intriguing two‐step adsorption mechanism. While size exclusion governs the selectivity, hydrogen bonding interactions between furfural and the pore walls facilitate accelerated mass transport. This synergy enables high‐performance furfural capture with negligible pentose adsorption. MIL‐53‐TDC achieves a maximum furfural adsorption capacity of 424.6 mg g − 1 (98% removal) and ultrafast kinetics (∼90% uptake within 5 min). In dynamic breakthrough tests using simulated hydrolysates, the material exhibits complete furfural selectivity and a capacity of 202.9 mg g − 1 . Both experimental data and calculations confirm the dominant role of hydrogen bonding in furfural adsorption, contributing to facile regeneration and performance, significantly surpassing previously reported adsorbents. This work establishes MIL‐53‐TDC as a robust and regenerable adsorbent for hydrolysate purification, overcoming a key bottleneck in lignocellulosic bioconversion and advancing the sustainable production of biofuels and bioplastics.
Zhao et al. (Mon,) studied this question.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: