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电活性微生物的光致敏作用用于太阳能辅助二氧化碳转化。

Photosensitization of electro-active microbes for solar assisted carbon dioxide transformation.

机构信息

Indian Oil Corporation Limited (IOCL), R&D Centre, Sector 13, Faridabad 121007, Haryana, India.

Indian Oil Corporation Limited (IOCL), R&D Centre, Sector 13, Faridabad 121007, Haryana, India.

出版信息

Bioresour Technol. 2019 Jan;272:300-307. doi: 10.1016/j.biortech.2018.10.031. Epub 2018 Oct 12.

Abstract

Tandem bio-inorganic platform by combining efficient light harvesting properties of nano-inorganic semiconductor cadmium sulfide (CdS) with biocatalytic ability of electro-active bacteria (EAB) towards carbon dioxide (CO) conversion is reported. Sulfur was obtained from either cysteine (EAB-Cys-CdS) or hydrogen sulfide (EAB-HS-CdS) and experiments were carried out under similar conditions. Anchoring of the nano CdS cluster on the microbe surface was confirmed using electronic microscope. Bio-inorganic hybrid system was able to produce single and multi-carbon compounds from CO in visible spectrum (λ > 400 nm). Though, acetic acid was dominant (EAB-Cys-CdS, 1.46 g/l and EAB-HS-CdS, 1.55 g/l) in both the microbe-CdS hybrids, its concentration as well as product slate varied significantly. EAB-HS-CdS produced hexanoic acid and less methanol fraction, while the EAB-Cys-CdS produced no hexanoic acid along with almost double the concentration of methanol. Due to easy harvesting process, this bio-inorganic hybrid represents unique sustainable approach for solar-to-chemical production via CO transformation.

摘要

本研究报告了一种串联的生物-无机平台,将纳米无机半导体硫化镉 (CdS) 的高效光捕获特性与电活性细菌 (EAB) 对二氧化碳 (CO) 转化的生物催化能力相结合。硫源分别为半胱氨酸 (EAB-Cys-CdS) 或硫化氢 (EAB-HS-CdS),且实验在相似条件下进行。使用电子显微镜证实了纳米 CdS 簇在微生物表面的附着。生物-无机杂化系统能够在可见光 (λ > 400 nm) 下从 CO 中生成单碳和多碳化合物。然而,在两种微生物-CdS 杂化体中,乙酸都是主要产物 (EAB-Cys-CdS,1.46 g/l;EAB-HS-CdS,1.55 g/l),但其浓度和产物种类差异显著。EAB-HS-CdS 生成己酸和较少的甲醇馏分,而 EAB-Cys-CdS 则不生成己酸,同时甲醇浓度几乎增加了一倍。由于易于收集,这种生物-无机杂化体系为通过 CO 转化进行太阳能到化学能的生产提供了独特的可持续方法。

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