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Evaluation of hydrophobic micro-zeolite-mixed matrix membrane and integrated with acetone–butanol–ethanol fermentation for enhanced butanol production

机译:疏水性微沸石混合基质膜的评估,并与丙酮-丁醇-乙醇发酵相结合以提高丁醇产量

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Background Butanol is regarded as an advanced biofuel that can be derived from renewable biomass. However, the main challenge for microbial butanol production is low butanol titer, yield and productivity, leading to intensive energy consumption in product recovery. Various alternative separation technologies such as extraction, adsorption and gas stripping, etc., could be integrated with acetone–butanol–ethanol (ABE) fermentation with improving butanol productivity, but their butanol selectivities are not satisfactory. The membrane-based pervaporation technology is recently attracting increasing attention since it has potentially desirable butanol selectivity. Results The performance of the zeolite-mixed polydimethylsiloxane (PDMS) membranes were evaluated to recover butanol from butanol/water binary solution as well as fermentation broth in the integrated ABE fermentation system. The separation factor and butanol titer in permeate of the zeolite-mixed PDMS membrane were up to 33.0 and 334.6 g/L at 80°C, respectively, which increased with increasing zeolite loading weight in the membrane as well as feed temperature. The enhanced butanol separation factor was attributed to the hydrophobic zeolites with large pore size providing selective routes preferable for butanol permeation. In fed-batch fermentation incorporated with pervaporation, 54.9 g/L ABE (34.5 g/L butanol, 17.0 g/L acetone and 3.4 g/L ethanol) were produced from 172.3 g/L glucose. The overall butanol productivity and yield increased by 16.0 and 11.1%, respectively, which was attributed to the alleviated butanol inhibition by pervaporation and reassimilation of acids for ABE production. The zeolite-mixed membrane produced a highly concentrated condensate containing 169.6 g/L butanol or 253.3 g/L ABE, which after phase separation easily gave the final product containing >600 g/L butanol. Conclusions Zeolite loading in the PDMS matrix was attributed to improving the pervaporative performance of the membrane, showing great potential to recover butanol with high purity. Therefore, this zeolite-mixed PDMS membrane had the potential to improve biobutanol production when integrating with ABE fermentation.
机译:背景技术丁醇被认为是可从可再生生物质衍生的高级生物燃料。然而,微生物丁醇生产的主要挑战是丁醇滴定度,产率和生产率低,导致产品回收中的大量能耗。可以将各种替代分离技术(例如萃取,吸附和气提等)与丙酮-丁醇-乙醇(ABE)发酵相结合,以提高丁醇的生产率,但是它们的丁醇选择性并不令人满意。基于膜的全蒸发技术最近吸引了越来越多的关注,因为它具有潜在的所需丁醇选择性。结果评估了沸石混合聚二甲基硅氧烷(PDMS)膜在集成ABE发酵系统中从丁醇/水二元溶液以及发酵液中回收丁醇的性能。沸石混合PDMS膜在渗透液中的分离因子和丁醇滴度在80°C时分别高达33.0和334.6 g / L,随着膜中沸石负载量和进料温度的增加而增加。丁醇分离因子的提高归因于具有大孔径的疏水性沸石,从而提供了丁醇渗透优选的选择性途径。在结合了全蒸发的分批补料发酵中,由172.3 g / L的葡萄糖生产了54.9 g / L的ABE(34.5 g / L的丁醇,17.0 g / L的丙酮和3.4 g / L的乙醇)。丁醇的总生产率和收率分别提高了16.0%和11.1%,这归因于酸的全蒸发和再同化用于ABE生产所减轻的丁醇抑制作用。沸石混合膜制得的高浓缩冷凝液含有169.6 g / L丁醇或253.3 g / L ABE,在相分离后,很容易得到最终产物,含有> 600 g / L丁醇。结论PDMS基体中的沸石负载是由于提高了膜的渗透性能,显示了回收高纯度丁醇的巨大潜力。因此,与ABE发酵整合时,这种沸石混合PDMS膜具有改善生物丁醇生产的潜力。

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