Lipase Immobilization over Hierarchically Carbonized Macro-MIL-88A for Biodiesel Production

碳化 脂肪酶 生物柴油 材料科学 生物柴油生产 化学工程 化学 有机化学 吸附 计算机科学 催化作用 工程类 程序设计语言
作者
Muhammad Rahim,Zhiqiang Zou,Zhuoyang Du,Lingmei Dai,Dehua Liu,Wei Du
出处
期刊:ACS applied nano materials [American Chemical Society]
标识
DOI:10.1021/acsanm.4c03048
摘要

Macroporous metal–organic frameworks (MOFs) exhibit immense promise as carriers for immobilizing macromolecules, notably lipases. Nevertheless, their minute particle dimensions pose challenges in the recycling process, thereby significantly constraining their widespread practical utilization. To address this limitation, this study explores the potential of incorporating magnetic substances during the carbonization process, especially focusing on the use of magnetically carbonized Macro-MIL-88A for lipase immobilization and biodiesel production. The effects of different carbonation temperatures on macroporous MIL-88A and microporous MIL-88A were investigated. Our findings revealed that the carbonization temperature influenced the preservation of the 3D structure and the generation of magnetite. Carbonized Macro-MIL-88A (Macro-Fe3O4-C) at 500 °C exhibited superior specific activity and enhanced activity recovery. Lipase immobilized on Macro-Fe3O4-C (Macro-Fe3O4-C-TLL) demonstrated higher methanol tolerance during the biodiesel production process compared to Micro-Fe3O4-C. The reduced reusability of Macro-Fe3O4-C-TLL was attributed to the adsorption of the by-product glycerol. We further investigated pre- and posthydrophobic modifications on Macro-Fe3O4-C and found that post-PDMS modification maintained both high enzyme loading and good reusability of the immobilized lipase during biodiesel production. This study presents a promising method to enhance the reusability of immobilized large molecules by incorporating magnetite via a straightforward carbonization process.
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