| Literature DB >> 27484672 |
Chuang Xue1, Fangfang Liu2, Mengmeng Xu2, I-Ching Tang3, Jingbo Zhao2, Fengwu Bai4, Shang-Tian Yang5.
Abstract
Activated carbon Norit ROW 0.8, zeolite CBV901, and polymeric resins Dowex Optipore L-493 and SD-2 with high specific loadings and partition coefficients were studied for n-butanol adsorption. Adsorption isotherms were found to follow Langmuir model, which can be used to estimate the amount of butanol adsorbed in acetone-butanol-ethanol (ABE) fermentation. In serum-bottle fermentation with in situ adsorption, activated carbon showed the best performance with 21.9g/L of butanol production. When operated in a fermentor, free- and immobilized-cell fermentations with adsorption produced 31.6g/L and 54.6g/L butanol with productivities of 0.30g/L·h and 0.45g/L·h, respectively. Thermal desorption produced a condensate containing ∼167g/L butanol, which resulted in a highly concentrated butanol solution of ∼640g/L after spontaneous phase separation. This in situ product recovery process with activated carbon is energy efficient and can be easily integrated with ABE fermentation for n-butanol production.Entities:
Keywords: Acetone-butanol-ethanol fermentation; Activated carbon; Adsorption; Butanol; In situ product recovery
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Year: 2016 PMID: 27484672 DOI: 10.1016/j.biortech.2016.07.111
Source DB: PubMed Journal: Bioresour Technol ISSN: 0960-8524 Impact factor: 9.642