Chen Zheng, Yang Gama, Hao Xuemi, Samak Nadia A, Jia Yunpu, Peh Sumit, Mu Tingzhen, Yang Maohua, Xing Jianmin
CAS Key Laboratory of Green Process and Engineering State Key Laboratory of Biochemical Engineering Institute of Process Engineering, Chinese Academy of Sciences Beijing P. R. China.
College of Chemical Engineering University of Chinese Academy of Sciences Beijing P. R. China.
Eng Life Sci. 2021 Jun 3;21(10):693-708. doi: 10.1002/elsc.202100006. eCollection 2021 Oct.
Biological desulfurization offers several remarkably environmental advantages of operation at ambient temperature and atmospheric pressure, no demand of toxic chemicals as well as the formation of biologically re-usable sulfur (S), which has attracted increasing attention compared to conventionally physicochemical approaches in removing hydrogen sulfide from sour gas. However, the low biomass of SOB, the acidification of process solution, the recovery of SOB, and the selectivity of bio-S limit its industrial application. Therefore, more efforts should be made in the improvement of the BDS process for its industrial application via different research perspectives. This review summarized the recent research advances in the microbial capture of hydrogen sulfide from sour gas based on strain modification, absorption enhancement, and bioreactor modification. Several efficient solutions to limitations for the BDS process were proposed, which paved the way for the future development of BDS industrialization.
生物脱硫具有在常温常压下运行的显著环境优势,无需使用有毒化学物质,并且能够形成可生物再利用的硫(S),与传统的物理化学方法相比,在从酸性气体中去除硫化氢方面越来越受到关注。然而,硫氧化菌生物量较低、工艺溶液酸化、硫氧化菌的回收以及生物硫的选择性限制了其工业应用。因此,应通过不同的研究视角,在改进生物脱硫工艺以实现其工业应用方面做出更多努力。本综述总结了基于菌株改造、吸收增强和生物反应器改造,从酸性气体中微生物捕获硫化氢的最新研究进展。提出了几种解决生物脱硫工艺局限性的有效方案,为生物脱硫工业化的未来发展铺平了道路。