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甲烷氧化菌共培养物的合成设计及其在含磁性纳米颗粒的聚合物中的固定化,以提高基于麦秸的沼气中甲醇的产量。

Synthetic design of methanotroph co-cultures and their immobilization within polymers containing magnetic nanoparticles to enhance methanol production from wheat straw-based biogas.

作者信息

Patel Sanjay K S, Gupta Rahul K, Kalia Vipin C, Lee Jung-Kul

机构信息

Department of Chemical Engineering, Konkuk University, Seoul 05029, Republic of Korea.

Department of Chemical Engineering, Konkuk University, Seoul 05029, Republic of Korea.

出版信息

Bioresour Technol. 2022 Nov;364:128032. doi: 10.1016/j.biortech.2022.128032. Epub 2022 Sep 24.

Abstract

In this study, various methanotroph co-cultures were designed to enhance methanol production from biogas produced through the anaerobic digestion of wheat straw (WS). Furthermore, whole-cell immobilization was performed using magnetic nanoparticle (MNP)-loaded polymers to develop an efficient bioprocess. The anaerobic digestion of WS by cattle dung yielded 219 L/kg of total solids reduced. Methanol produced was 5.08 and 6.39 mmol/L by pure- and co-cultures from biogas, respectively. The optimization of process parameters enhanced methanol production to 6.82 mmol/L by co-culturing Mithylosinus sporium and Methylocella tundrae. The immobilized co-culture within the MNP-doped polymers exhibited much higher cumulative methanol of up to 70.74 mmol/L than the production of 22.34 mmol/L by free cells after ten cycles of reuse. This study suggests that MNP-doped polymer-based immobilization of methanotrophs is a unique approach for producing renewable fuels from biomass-derived biogas, a greenhouse gas.

摘要

在本研究中,设计了各种甲烷氧化菌共培养体系,以提高通过小麦秸秆(WS)厌氧消化产生的沼气中甲醇的产量。此外,使用负载磁性纳米颗粒(MNP)的聚合物进行全细胞固定化,以开发一种高效的生物工艺。牛粪对WS进行厌氧消化,每千克总固体减少量产生219升沼气。纯培养物和共培养物从沼气中产生的甲醇分别为5.08和6.39毫摩尔/升。通过共培养孢囊甲基弯曲菌和冻土甲基小孢菌,优化工艺参数后甲醇产量提高到6.82毫摩尔/升。在掺杂MNP的聚合物中固定化的共培养物在重复使用十个循环后,累积甲醇产量高达70.74毫摩尔/升,远高于游离细胞产生的22.34毫摩尔/升。本研究表明,基于掺杂MNP聚合物的甲烷氧化菌固定化是一种从生物质衍生的沼气(一种温室气体)生产可再生燃料的独特方法。

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