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One Pot Synthesis of Multi-functional Tin Oxide Nanostructures for High Efficiency Dye-sensitized Solar Cells

机译:一锅合成高效染料敏化太阳能电池的多功能氧化锡纳米结构

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摘要

Photoanode plays a key role in dye sensitized solar cells (DSSCs) as a scaffold for dye molecules, transport medium for photogenerated electrons, and scatters light for improved absorption. Herein, tin oxide nanostructures unifying the above three characteristics were optimized by a hydrothermal process and used as photoanode in DSSCs. The optimized morphology is a combination of hollow porous nanoparticles of size ∼50 nm and micron sized spheres with BET surface area (up to 29 m2/g) to allow large dye-loading and light scattering as well as high crystallinity to support efficient charge transport. The optimized morphology gave the highest photovoltaic conversion efficiency (∼7.5%), so far achieved in DSSCs with high open circuit voltage (∼700 mV) and short circuit current density (∼21 mA/cm2) employing conventional N3 dye and iodide/triiodide electrolyte. The best performing device achieved an incident photon to current conversion efficiency of ∼90%. The performance of the optimized tin oxide nanostructures was comparable to that of conventional titanium based DSSCs fabricated at similar conditions.
机译:光电阳极在染料敏化太阳能电池(DSSC)中起着关键作用,它是染料分子的支架,光生电子的传输介质以及散射光以提高吸收率。在此,通过水热工艺优化了将以上三个特征统一的氧化锡纳米结构,并将其用作DSSC中的光阳极。优化的形态是将〜50 nm大小的中空多孔纳米粒子与具有BET表面积(最大29 m2 / g)的微米级球体结合使用,以实现较大的染料负载量和光散射以及高结晶度以支持有效的电荷传输。优化的形态可提供最高的光电转换效率(约7.5%),迄今为止,在使用常规N3染料和碘化物/三碘化物的高开路电压(〜700 mV)和短路电流密度(〜21 mA / cm2)的DSSC中,电解质。性能最佳的设备实现了约90%的入射光子至电流转换效率。优化的氧化锡纳米结构的性能与在相似条件下制造的常规钛基DSSC的性能相当。

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