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生物制氢的非无菌工艺:最新进展、挑战与机遇

Nonsterile Process for Biohydrogen Production: Recent Updates, Challenges, and Opportunities.

作者信息

Patel Sanjay K S, Gupta Rahul K, Karuppanan Karthikeyan K, Padhi Deepak Kumar, Ranganathan Sampathkumar, Paramanantham Parasuraman, Lee Jung-Kul

机构信息

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

Department of Biotechnology, Hemvati Nandan Bahuguna Garhwal University (A Central University), Srinagar, 246174 Uttarakhand India.

出版信息

Indian J Microbiol. 2024 Jun;64(2):445-456. doi: 10.1007/s12088-024-01319-1. Epub 2024 May 31.

Abstract

Hydrogen (H), a clean and versatile energy carrier, has recently gained significant attention as a potential solution for reducing carbon emissions and promoting sustainable energy systems. The yield and efficiency of the biological H production process primarily depend on sterilization conditions. Various strategies, such as heat inactivation and membrane-based sterilization, have been used to achieve desirable yields via microbial fermentation. Almost every failed biotransformation process is linked to nonsterile conditions at any reaction stage. Therefore, the production of renewable biofuels as alternatives to fossil fuels is more attractive. Pure sugars have been widely documented as a costly feedstock for H production under sterile conditions. Biotransformation under nonsterile conditions is more desirable for stable and sustainable operation. Low-cost feeds, such as biowaste, are considered suitable alternatives, but they require appropriate sterilization to overcome the limitations of inherited or contaminating microbes during H production. This article describes the status of microbial fermentative processes for H production under nonsterile conditions and discusses strategies to improve such processes for sustainable, cleaner production.

摘要

氢气(H)作为一种清洁且用途广泛的能量载体,最近作为减少碳排放和促进可持续能源系统的潜在解决方案而备受关注。生物制氢过程的产量和效率主要取决于灭菌条件。各种策略,如热灭活和基于膜的灭菌,已被用于通过微生物发酵实现理想的产量。几乎每一个失败的生物转化过程都与任何反应阶段的非无菌条件有关。因此,生产可再生生物燃料作为化石燃料的替代品更具吸引力。纯糖作为无菌条件下制氢的昂贵原料已被广泛记载。非无菌条件下的生物转化对于稳定和可持续运行更为可取。低成本原料,如生物废料,被认为是合适的替代品,但它们需要适当的灭菌以克服制氢过程中固有或污染微生物的限制。本文描述了非无菌条件下微生物发酵制氢过程的现状,并讨论了改进此类过程以实现可持续、清洁生产的策略。

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