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Bio-ethanol production from waste biomass of Pogonatherum crinitum phytoremediator: an eco-friendly strategy for renewable energy

机译:gon草植物修复剂的废弃生物质生产生物乙醇:可再生能源的生态友好战略

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摘要

In this study, we have described three steps to produce ethanol from Pogonatherum crinitum, which was derived after the treatment of textile wastewater. (a) Production of biomass: biomass samples collected from a hydroponic P. crinitum phytoreactor treating dye textile effluents and augmented with Ca-alginate immobilized growth-promoting bacterium, Bacillus pumilus strain PgJ (consortium phytoreactor), and waste sorghum husks were collected and dried. Compositional analysis of biomass (consortium phytoreactor) showed that the concentration of cellulose, hemicelluloses and lignin was 42, 30 and 17%, respectively, whereas the biomass samples without the growth-promoting bacterium (normal phytoreactor) was slightly lower, 40, 29 and 16%, respectively. (b) Hydrolysate (sugar) production: a crude sample of the fungus, Phanerochaete chrysosporium containing hydrolytic enzymes such as endoglucanase (53.25 U/ml), exoglucanase (8.38 U/ml), glucoamylase (115.04 U/ml), xylanase (83.88 U/ml), LiP (0.972 U/ml) and MnP (0.459 U/ml) was obtained, and added to consortium, normal and control phytoreactor derived biomass supplemented with Tween-20 (0.2% v/v). The hydrolysate of biomass from consortium phytoreactor produced maximum reducing sugar (0.93 g/l) than hydrolysates of normal phytoreactor biomass (0.82 g/l) and control phytoreactor biomass (0.79 g/l). FTIR and XRD analysis confirmed structural changes in treated biomass. (c) Ethanol production: the bioethanol produced from enzymatic hydrolysates of waste biomass of consortium and normal phytoreactor using Saccharomyces cerevisiae (KCTC 7296) was 42.2 and 39.4 g/l, respectively, while control phytoreactor biomass hydrolysate showed only 25.5 g/l. Thus, the amalgamation of phytoremediation and bioethanol production can be the truly environment-friendly way to eliminate the problem of textile dye along with bioenergy generation.Electronic supplementary materialThe online version of this article (10.1007/s13205-018-1188-0) contains supplementary material, which is available to authorized users.
机译:在这项研究中,我们已经描述了从Pogonatherum crinitum生产乙醇的三个步骤,该步骤是在处理纺织废水后得到的。 (a)生物质的生产:从处理染料纺织废水的水培植物P. crinitum的植物反应器中收集的生物质样品,并用固定化钙藻酸盐的生长促进细菌,短小芽孢杆菌菌株PgJ(财团的植物反应器)和高粱废料壳进行收集和干燥。生物质(联盟植物反应器)的组成分析表明,纤维素,半纤维素和木质素的浓度分别为42%,30%和17%,而没有生长促进细菌的生物质样品(正常植物反应器)则略低,分别为40%,29%和49%。分别为16%。 (b)水解物(糖)的生产:真菌的粗制样品,含有Phanerochaete chrysosporium的水解酶,如内切葡聚糖酶(53.25 U / ml),外切葡聚糖酶(8.38U / ml),葡糖淀粉酶(115.04U / ml),木聚糖酶(83.88) U / ml),LiP(0.972 U / ml)和MnP(0.459 U / ml),然后将其添加到补充了Tween-20(0.2%v / v)的财团,正常和对照植物反应器衍生的生物质中。与正常的植物反应器生物质(0.82 g / l)和对照植物反应器生物质(0.79 g / l)的水解产物相比,来自联合体植物反应器的生物质的水解产物产生的最大还原糖(0.93 g / l)。 FTIR和XRD分析证实了处理过的生物质的结构变化。 (c)乙醇生产:使用酿酒酵母(KCTC 7296)从财团和正常植物反应器的废弃生物质的酶解产物中生产的生物乙醇分别为42.2和39.4 g / l,而对照植物反应器生物质水解产物仅显示25.5 g / l。因此,将植物修复与生物乙醇生产合并可以是消除纺织品染料和生物能源产生问题的真正环保方法。电子补充材料本文的在线版本(10.1007 / s13205-018-1188-0)包含补充资料,可供授权用户使用。

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