Silicon-Silver Dendritic Nanostructures Enabled Photoelectrochemical Solar Water Splitting for Energy Applications

U. Dadwal, Rajendra Singh
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Abstract

Photoelectrochemical (PEC) splitting of natural water was studied using silicon nanowires decorated with silver dendrites (dendritic nanostructures) as working electrode. A metal assisted wet chemical etching method has been used for the synthesis of dendritic heteronanostructures. Measured photocurrent density 1.7 mA/cm2 under white light illumination exhibits the efficient decomposition of natural water. The decomposition of water is primarily ascribed to the enhancement in the working electrode surface and water effective interface and the decrease in the recombination of light induced (photoexcited) carriers in the existence of silver dendritic nanostructures. Enhancement in photoinduced charge carriers separation caused due to the existence of Schottky barrier between the silicon and silver dendritic nanostructures. The light induced carriers (holes) in silicon are transferred to the metal (Ag) dendritic nanostructures that work as a charge basin to effectively carry out the oxidation reaction of water during PEC measurement. The solar-to-hydrogen (STH) conversion efficiency of about 4.5% was reported, indicating the efficient PEC solar water (pH 7) splitting. A cost-effective and efficient method for the PEC solar water splitting is presented in order to enhance the STH efficiency for the production of clean and renewable fuel.
硅-银树枝状纳米结构实现了光电化学太阳能水分解的能源应用
以修饰银枝状纳米结构的硅纳米线为工作电极,研究了天然水的光电化学(PEC)分解。采用金属辅助湿法化学刻蚀法合成了树枝状杂碳结构。在白光照射下测量的光电流密度为1.7 mA/cm2,显示出对天然水的有效分解。在银枝晶纳米结构的存在下,水的分解主要是由于工作电极表面和水有效界面的增强以及光激发载流子复合的减少。由于硅和银树枝状纳米结构之间存在肖特基势垒,光诱导载流子分离增强。硅中的光诱导载流子(空穴)转移到金属(Ag)枝晶纳米结构上,作为电荷盆,在PEC测量中有效地进行水的氧化反应。太阳能-氢(STH)转换效率约为4.5%,表明PEC太阳能水(pH 7)的高效分解。提出了一种经济高效的PEC太阳能分解水的方法,以提高太阳能分解水的效率,生产清洁和可再生燃料。
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