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Surface Modification and Optimization of Semiconductor ns-TiO_2-WO_3 Admixed Photoelectrode in Regard to Solar Hydrogen Production

机译:半导体NS-TiO_2-WO_3混合光电极的表面改性与优化太阳能氢气

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To minimize the harmful effects of commercial energies like fossil fuel and nuclear energy on our environment, research is going on to find clean and renewable sources of energy. The main efforts of researchers nowadays is to harness solar energy for the production of clean hydrogen fuels by a photoelectrochemical (PEC) cell which represents a very attractive but challenging alternative. Some strategies have been developed to improve PEC performances of the photoelectrode materials, including doping for enhancing visible light absorption in the wide bandgap semiconductor or promoting charge transport in the narrow bandgap semiconductor, respectively. This chapter deals with the investigation on the optimization of ns-WO_3-TiO_2 admixed/Ti with respect to optimum photoelectrode area for semiconductor septum (SC-SEP) PEC solar cell. The motivation of the present work was to prepare an electrode having high-effective surface area and hence better quantum yield and improved PEC activity. Several attempts have been made to bring spectral response of TiO_2 into visible or near visible region. It is known that the spectral response of the TiO_2 films can be improved through admixing with appropriate oxides. The surface morphology, structural, and PEC characterization of the bare TiO_2 as well as the TiO_2 overlaid with WO_3 thin film admixtures have been investigated in relation to hydrogen production through SC-SEP PEC solar cell. The PEC response of ns-WO_3-TiO_2 photo electrodes for four different electrode areas has been measured to explore the effect of electrode area on the output power in a chemical fuel (i.e., H_2) produced by SC-SEP PEC cell. This was done for determining the electrode area for optimum electrical output and hydrogen production. The PEC cell having ns-WO_3-TiO_2 admixed/Ti photoanode of several geometric areas like 0.5, 1.0, 1.5, 2.0, and 2.5 cm~2 were fabricated and characterized. It has been found that the photoanode area corresponding to optimum electrical output and hydrogen production rate corresponds to 1.0 cm~2. The ns-WO_3-TiO_2 exhibited a high photocurrent and photovoltage of 15.6 mA cm~(-2), 960 mV, respectively. The ns-WO_3-TiO_2 electrode exhibited a higher hydrogen gas evolution rate of 13.8 l h~(-1) m~(-2).
机译:为了尽量减少商业能源如化石燃料和核能对环境的有害影响,研究正在寻找干净和可再生能源。现在研究人员的主要努力是通过光电化学(PEC)电池利用太阳能来生产清洁氢燃料,这代表非常有吸引力但具有挑战性的替代品。已经开发了一些策略以改善光电电极材料的PEC性能,包括掺杂用于增强宽带隙半导体或促进窄带半导体中的电荷传输的可见光吸收。本章涉及关于半导体隔膜(SC-SEP)PEC太阳能电池的最佳光电极区域的NS-WO_3-TIO_2综合/ TI的优化研究。本作工作的动机是制备具有高有效表面积的电极,因此更好的量子产量和改善的PEC活性。已经进行了几次尝试将TiO_2的光谱响应带入可见或附近的可见区域。众所周知,通过用适当的氧化物混合,可以改善TiO_2膜的光谱响应。通过SC-SEP PEC太阳能电池研究了与WO_3薄膜混合物覆盖的裸TiO_2以及覆盖的TiO_2的表面形态学,结构和PEC。已经测量了四个不同电极区域的NS-WO_3-TiO_2光电极的PEC响应,以探讨由SC-SEP PEC细胞产生的化学燃料(即,H_2)中的输出功率上的电极面积的效果。这是为了确定最佳电输出和氢气产生的电极区域。具有NS-WO_3-TiO_2混合/ Ti PhotoNode的PEC电池,如0.5,1.0,1.5,2.0和2.5cm〜2的若干几何区域。和表征。已经发现,对应于最佳电输出和氢气产生速率的光电码区域对应于1.0cm〜2。 NS-WO_3-TiO_2分别显示出15.6mA cm〜(-2),960mV的高光电流和光电图。 NS-WO_3-TiO_2电极表现出较高的氢气进化速率为13.8L H〜(-1)m〜(-2)。

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