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首页> 外文期刊>Japanese journal of applied physics >Crystalline silicon photovoltaic cells used for power transmission from solar-pumped lasers: Ⅱ. Practical implementations
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Crystalline silicon photovoltaic cells used for power transmission from solar-pumped lasers: Ⅱ. Practical implementations

机译:晶体硅光伏电池用于太阳能泵浦激光器的功率传输:Ⅱ。实际实施

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摘要

We have designed crystalline silicon photovoltaic (PV) cells used for power transmission from solar-pumped lasers (SPLs) emitting at 1064 nm. The practical light-trapping performance of the combination of a multilayered angle-selective filter on the front surface and a diffuse reflector on the rear surface was evaluated by ray-trace simulation, which was taken into account in device simulation. When the SPLs illuminate stationary PV cells or are connected using optical fibers and hence the incident angles to the PV cells are within 10 degrees, a high laser-to-electricity conversion efficiency of around 50% would be feasible under 100W/cm(2) laser illumination using the 50-mu m-thick cells. For power transmission to moving objects such as electric vehicles, in which the incident angles change up to 30 degrees, the efficiency of the 75-mu m-thick cells is slightly lower because of the less significant light-trapping effect. To realize these high efficiencies, reduction of contact resistance and surface recombination velocity is required. (C) 2018 The Japan Society of Applied Physics.
机译:我们设计了晶体硅光伏(PV)电池,用于以1064 nm发射的太阳泵浦激光(SPL)进行功率传输。通过光线跟踪仿真评估了正面上的多层角度选择滤镜和背面上的漫反射镜的组合的实际捕光性能,在器件仿真中已将其考虑在内。当SPL照亮固定式PV电池或使用光纤连接时,因此与PV电池的入射角在10度以内,在100W / cm的条件下,高约50%的激光-电转换效率将是可行的(2)使用50微米厚的电池进行激光照射。对于向入射角变化高达30度的移动物体(例如电动汽车)的动力传输,由于不那么显着的光捕获效果,75微米厚的电池的效率会稍低。为了实现这些高效率,需要降低接触电阻和表面复合速度。 (C)2018年日本应用物理学会。

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  • 来源
    《Japanese journal of applied physics》 |2018年第8s3期|08RF06.1-08RF06.7|共7页
  • 作者单位

    Toyota Cent Res & Dev Labs Inc, Nagakute, Aichi 4801192, Japan;

    Toyota Cent Res & Dev Labs Inc, Nagakute, Aichi 4801192, Japan;

    Toyota Cent Res & Dev Labs Inc, Nagakute, Aichi 4801192, Japan;

    Nagoya Univ, Green Mobil Res Inst, Inst Innovat Future Soc, Nagoya, Aichi 4648603, Japan;

    Nagoya Univ, Green Mobil Res Inst, Inst Innovat Future Soc, Nagoya, Aichi 4648603, Japan;

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