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Plasmonic effect of Ag@TiO2 core-shell nanocubes on dye-sensitized solar cell performance based on reduced graphene oxide-TiO2 nanotube composite

机译:基于还原氧化石墨烯-TiO2纳米管复合材料的Ag @ TiO2核壳纳米立方体的等离子效应对染料敏化太阳能电池性能的影响

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The role of reduced graphene oxide (RGO) and plasmonic Ag@TiO2 core-shell nanocubes has been investigated on dye-sensitized solar cell (DSSC) performance based on 1-D TiO2 nanotubes (TNTs) as photoanodes. A series of cells are fabricated with different amounts of RGO (0.2 to 1.0 wt.%) in TNTs. The incorporation of RGO in TNTs is confirmed by photoluminescence, Raman, and X-ray photoelectron spectroscopy studies. The best performance is achieved with 0.8 wt.% RGO-TNT composite, which exhibited a power conversion efficiency (PCE) of 4.26%, while with bare TNTs, it showed a PCE of 2.85%. The similar to 49% enhancement in PCE with RGO is attributed to the improved dye loading, reduced charge carrier recombination, and high electron transfer efficiency. The enhancement in open circuit voltage (maximum of 50 mV) is also observed with RGO, which is due to the increased electron density in the conduction band of TiO2 leading to the change in position of quasi Fermi level to higher levels, resulting in shifts towards negative potential side. To further enhance the PCE of DSSCs based on RGO-TNT composites, surface plasmon resonances (SPRs) of silver (Ag) @TiO2 core-shell nanocubes are also exploited by integrating differing concentrations from 0.1 to 0.3 wt.%. The PCE of plasmonic DSSC is further enhanced to 5.19% with 0.2 wt.% Ag nanocubes. The strong near-fields around the nanocubes (SPR peak spread from 600 to 1000 nm) stimulated the N719 dye for generating more photoelectrons with enhanced light absorption process in broad wavelength region. (C) 2015 Elsevier B.V. All rights reserved.
机译:以一维TiO2纳米管(TNTs)为光阳极,研究了还原氧化石墨烯(RGO)和等离激元Ag @ TiO2核壳纳米立方在染料敏化太阳能电池(DSSC)性能上的作用。在TNT中用不同量的RGO(0.2至1.0重量%)制造了一系列电池。通过光致发光,拉曼光谱和X射线光电子能谱研究证实了RGO在TNT中的结合。使用0.8 wt。%的RGO-TNT复合材料可获得最佳性能,复合材料的功率转换效率(PCE)为4.26%,而裸露的TNTs的PCE为2.85%。使用RGO可使PCE达到49%的相似提高,这归因于改进的染料载量,减少的电荷载流子复合以及高电子转移效率。使用RGO还可观察到开路电压的增强(最大50 mV),这是由于TiO2导带中电子密度的增加导致准费米能级的位置改变为更高的能级,从而导致向负电位侧。为了进一步增强基于RGO-TNT复合材料的DSSC的PCE,还通过整合0.1至0.3 wt。%的不同浓度来开发银(Ag)@ TiO2核壳纳米立方体的表面等离振子共振(SPR)。使用0.2 wt。%的Ag纳米立方体,等离子体DSSC的PCE进一步提高到5.19%。纳米立方体周围的强近场(SPR峰从600扩展到1000 nm)刺激了N719染料产生更多的光电子,并在宽波长范围内增强了光吸收过程。 (C)2015 Elsevier B.V.保留所有权利。

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