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Electrocatalytic and Enhanced Photocatalytic Applications of Sodium Niobate Nanoparticles Developed by Citrate Precursor Route

机译:柠檬酸盐前体路线开发的铌酸钠纳米粒子的电催化和增强光催化应用

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摘要

Development of cost effective and efficient electrocatalysts is crucial to generate H2 as an alternative source of energy. However, expensive noble metal based electrocatalysts show best electrocatalytic performances which acts as main bottle-neck for commercial application. Therefore, non-precious electrocatalysts have become important for hydrogen and oxygen evolution reactions. Herein, we report the synthesis of high surface area (35 m2/g) sodium niobate nanoparticles by citrate precursor method. These nanoparticles were characterized by different techniques like X-ray diffraction, transmission electron microscopy and X-ray photoelectron spectroscopy. Electrocatalytic properties of cost-effective sodium niobate nanoparticles were investigated for HER and OER in 0.5 M KOH electrolyte using Ag/AgCl as reference electrode. The sodium niobate electrode showed significant current density for both OER (≈2.7 mA/cm2) and HER (≈0.7 mA/cm2) with onset potential of 0.9 V for OER and 0.6 V for HER. As-prepared sodium niobate nanoparticles show enhanced photocatalytic property (86% removal) towards the degradation of rose Bengal dye. Dielectric behaviour at different sintering temperatures was explained by Koop’s theory and Maxwell-Wagner mechanism. The dielectric constants of 41 and 38.5 and the dielectric losses of 0.04 and 0.025 were observed for the samples sintered at 500 °C and 700 °C, respectively at 500 kHz. Conductivity of the samples was understood by using power law fit.
机译:开发经济高效的电催化剂对于产生氢气作为替代能源至关重要。然而,昂贵的贵金属基电催化剂表现出最佳的电催化性能,这成为商业应用的主要瓶颈。因此,非贵重的电催化剂对于氢和氧的放出反应已经变得重要。在此,我们报道了柠檬酸盐前体法合成高表面积(35μm 2 / g)铌酸钠的纳米颗粒。这些纳米颗粒通过不同的技术表征,例如X射线衍射,透射电子显微镜和X射线光电子能谱。以Ag / AgCl为参比电极,研究了经济高效的铌酸钠纳米颗粒在0.5 M KOH电解液中对HER和OER的电催化性能。铌酸钠电极在OER(≈2.7mA / cm 2 )和HER(≈0.7significantmA / cm 2 )上均显示出显着的电流密度,对于OER和HER为0.6V。制备好的铌酸钠纳米颗粒对玫瑰红染料的降解显示出增强的光催化性能(86%去除率)。 Koop的理论和Maxwell-Wagner机理解释了不同烧结温度下的介电行为。分别在500 K和700CC烧结的样品的介电常数分别为41和38.5,介电损耗为0.04和0.025。通过使用幂律拟合可以理解样品的电导率。

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