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Template-Free Preparation of Crystalline Ge Nanowire Film Electrodes via an Electrochemical Liquid-Liquid-Solid Process in Water at Ambient Pressure and Temperature for Energy Storage

机译:在环境压力和温度下于水中通过电化学液体-固相过程无模板制备晶体Ge纳米线薄膜电极

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The direct electro deposition of crystalline germanium (Ge) nanowire film electrodes from an aqueous solution of dissolved GeO2 using discrete 'flux' nanopartides capable of dissolving Ge(s) has been demonstrated. Electro-deposition of Ge at inert electrode substrates decorated with small (<100 nm), discrete indium (in) nanoparticles resulted in crystalline Ge nanowire films with definable nanowire diameters and densities without the need for a physical or chemical template. The Ge nanowires exhibited strong polycrystalline character as-deposited, with approximate,crystallite dimensions of 20 nm and a mixed orientation of the crystallites along the length of the nanowire. Energy dispersive,spectroscopic elemental mapping of individual Ge nanowires showed that the In nanoparticles remained at the base of each,nanowire, indicating good electrical communication between the Ge nanowire and the underlying conductive support. As-deposited Ge nanowire films prepared on Cu supports were used without further processing as Li+ battery anodes. Cycling studies performed at 1 C (1624 mA g-1) indicated the native Ge nanowire films supported stable discharge capacities at the level of 973 mA h g-1, higher than analogous Ge nanowire film electrodes prepared through an energy-intensive vapor-liquid-solid nanowire growth process. The cumulative data show that ec-LLS is a viable method for directly preparing a functional, high-activity nanomaterials-based device component. The work presented here is a step toward the realization of simple processes that make fully functional energy conversion/storage technologies based on crystalline inorganic semiconductors entirely through benchtop, aqueous chemistry and electrochemistry without time- or energy-intensive process steps.
机译:已经证明了使用能够溶解Ge的离散“助熔剂”纳米粒子从溶解的GeO2的水溶液中直接电沉积结晶锗(Ge)纳米线薄膜电极。 Ge在装饰有小的(<100 nm)离散铟(in)纳米粒子的惰性电极基底上的电沉积,可得到具有可定义的纳米线直径和密度的晶体Ge纳米线膜,而无需物理或化学模板。 Ge纳米线在沉积时表现出强的多晶特性,具有约20nm的微晶尺寸和沿纳米线的长度的微晶的混合取向。单个Ge纳米线的能量色散,光谱元素图谱显示,In纳米粒子保留在每个纳米线的底部,表明Ge纳米线与下面的导电载体之间具有良好的电连通性。无需进一步处理就可以将在Cu载体上制备的Ge纳米线沉积薄膜用作Li +电池阳极。在1 C(1624 mA g-1)下进行的循环研究表明,天然Ge纳米线薄膜在973 mA h g-1的水平上支持稳定的放电容量,高于通过耗能高的气液制备的类似Ge纳米线薄膜电极-固体纳米线生长过程。累积数据表明ec-LLS是直接制备功能性,高活性纳米材料基器件组件的可行方法。此处介绍的工作是朝着实现简单过程迈出的一步,该过程完全通过台式,水性化学和电化学技术,基于晶体无机半导体,实现了功能齐全的能量转换/存储技术,而无需花费大量时间或精力。

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