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Transparent and ‘opaque’ conducting electrodes for ultra-thin highly-efficient near-field thermophotovoltaic cells

机译:透明和不透明的导电电极用于超薄高效的近场热光电电池

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摘要

Transparent conducting electrodes play a fundamental role in far-field PhotoVoltaic systems, but have never been thoroughly investigated for near-field applications. Here we show, in the context of near-field planar ultra-thin ThermoPhotoVoltaic cells using surface-plasmon-polariton thermal emitters, that the resonant nature of the nanophotonic system significantly alters the design criteria for the necessary conducting front electrode. The traditional ratio of optical-to-DC conductivities is alone not an adequate figure of merit, instead the desired impedance matching between the emitter and absorber modes along with their coupling to the free-carrier resonance of the front electrode are key for optimal device design and performance. Moreover, we demonstrate that conducting electrodes ‘opaque’ to incoming far-field radiation can, in fact, be used in the near field with decent performance by taking advantage of evanescent photon tunneling from the emitter to the absorber. Finally, we identify and compare appropriate tunable-by-doping materials for front electrodes in near-field ThermoPhotoVoltaics, specifically molybdenum-doped indium oxide, dysprosium-doped cadmium oxide, graphene and diffused semiconductors, but also for ‘opaque’ electrodes, tin-doped indium oxide and silver nano-films. Predicted estimated performances include output power density ~10 W/cm 2 with >45% efficiency at 2100 °K emitter temperature and 60 Ω electrode square resistance, thus increasing the promise for high-performance practical devices.
机译:透明导电电极在远场光电系统中起着基本作用,但从未针对近场应用进行过彻底的研究。在这里,我们表明,在使用表面等离子体激元热发射器的近场平面超薄ThermoPhotoVoltaic电池的情况下,纳米光子系统的共振特性显着改变了必要的导电前电极的设计标准。光/ DC电导率的传统比率本身并不是一个足够的品质因数,相反,发射器和吸收器模式之间的所需阻抗匹配以及它们与前电极的自由载流子谐振的耦合是优化器件设计的关键和性能。此外,我们证明,对于进入的远场辐射“不透明”的导电电极,实际上可以通过利用从发射极到吸收体的e逝光子隧穿而在近场中具有良好的性能。最后,我们确定并比较适用于近场ThermoPhotoVoltaics中前电极的可调谐掺杂材料,特别是钼掺杂的氧化铟,掺杂的氧化镉,石墨烯和扩散半导体,以及“不透明”电极,锡-掺杂的氧化铟和银纳米薄膜。预计的估计性能包括输出功率密度〜10 W / cm 2 ,在2100°K的发射极温度和60Ω的电极平方电阻下,效率> 45%,从而增加了对高性能实用器件的希望。

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