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首页> 外文期刊>RSC Advances >Controlled synthesis of mesoporous nanostructured anatase TiO2 on a genetically modified Escherichia coli surface for high reversible capacity and long-life lithium-ion batteries
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Controlled synthesis of mesoporous nanostructured anatase TiO2 on a genetically modified Escherichia coli surface for high reversible capacity and long-life lithium-ion batteries

机译:基因改性大肠杆菌表面对介孔纳米结构锐钛矿TiO2的控制合成,用于高可逆容量和长寿命长锂离子电池

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摘要

TiO _(2) is a promising anode material for lithium-ion batteries. The electrochemical performance of TiO _(2) can be improved by optimization of nanostructures. The present study was proposed to control the synthesis of mesoporous nanostructured anatase TiO _(2) on a genetically modified Escherichia coli surface. A recombinant protein INP-SiliSila containing functional domains of silicatein-α and silaffin was constructed and expressed on the E. coli surface. Deposition of the TiO _(2) precursor was facilitated by INP-SiliSila on the E. coli surface. Upon calcination, TiO _(2) coating on the E. coli surface transformed to anatase and formed well-defined rod-shaped particles. The electrochemical performance of the as-prepared anatase TiO _(2) as anode electrodes was improved and better than that of most reported ones. The present study not only provides an organism-based approach for fabricating nanostructured anatase TiO _(2) with enhanced electrochemical performance, but also opens a new avenue to take advantage of genetically modified bacterial surfaces in the synthesis and structure control of materials.
机译:TiO_(2)是锂离子电池的有希望的阳极材料。通过优化纳米结构可以提高TiO _(2)的电化学性能。提出了本研究以控制在遗传修饰的大肠杆菌表面上的介孔纳米结构锐钛矿TiO _(2)的合成。构建含有硅酰氨酰-α和硅瓜硅胶功能结构域的重组蛋白INP-SiliLAA,并在大肠杆菌表面上表达。通过Inp-SiliSila在大肠杆菌表面上促进TiO _(2)前体的沉积。在煅烧后,在大肠杆菌表面上的TiO _(2)涂层转化为锐钛矿并形成明确明确的杆状颗粒。作为阳极电极的AS制备的锐钛矿TiO _(2)的电化学性能得到改善,比大多数报道的阳极电极更好。本研究不仅提供了具有增强的电化学性能的纳米结构锐钛矿TiO_(2)的基于有机体的方法,而且还开启了一种新的途径,以利用基因改性的细菌表面在材料的合成和结构控制中。

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