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具有可调开路电压的单纳米线、低带隙热载流子太阳能电池。

Single-nanowire, low-bandgap hot carrier solar cells with tunable open-circuit voltage.

机构信息

NanoLund and Solid State Physics, Lund University, Box 118, SE-22100 Lund, Sweden.

出版信息

Nanotechnology. 2017 Oct 27;28(43):434001. doi: 10.1088/1361-6528/aa8984. Epub 2017 Aug 31.

Abstract

Compared to traditional pn-junction photovoltaics, hot carrier solar cells offer potentially higher efficiency by extracting work from the kinetic energy of photogenerated 'hot carriers' before they cool to the lattice temperature. Hot carrier solar cells have been demonstrated in high-bandgap ferroelectric insulators and GaAs/AlGaAs heterostructures, but so far not in low-bandgap materials, where the potential efficiency gain is highest. Recently, a high open-circuit voltage was demonstrated in an illuminated wurtzite InAs nanowire with a low bandgap of 0.39 eV, and was interpreted in terms of a photothermoelectric effect. Here, we point out that this device is a hot carrier solar cell and discuss its performance in those terms. In the demonstrated devices, InP heterostructures are used as energy filters in order to thermoelectrically harvest the energy of hot electrons photogenerated in InAs absorber segments. The obtained photovoltage depends on the heterostructure design of the energy filter and is therefore tunable. By using a high-resistance, thermionic barrier, an open-circuit voltage is obtained that is in excess of the Shockley-Queisser limit. These results provide generalizable insight into how to realize high voltage hot carrier solar cells in low-bandgap materials, and therefore are a step towards the demonstration of higher efficiency hot carrier solar cells.

摘要

与传统的 PN 结光伏相比,热载流子太阳能电池通过在光生“热载流子”冷却到晶格温度之前从其动能中提取功,从而提供了潜在的更高效率。热载流子太阳能电池已经在高带隙铁电绝缘体和 GaAs/AlGaAs 异质结构中得到了证明,但迄今为止还没有在低带隙材料中得到证明,而在低带隙材料中,潜在的效率增益最高。最近,在带隙为 0.39eV 的低带隙纤锌矿 InAs 纳米线中,通过照明证明了开路电压很高,这一现象可以用光热电效应来解释。在这里,我们指出,该器件是一种热载流子太阳能电池,并根据这一术语讨论其性能。在演示的器件中,InP 异质结构被用作能过滤器,以便通过热电方式收集 InAs 吸收段中光生热电子的能量。所获得的光电压取决于能量过滤器的异质结构设计,因此是可调的。通过使用高电阻、热电子势垒,可以获得超过肖克利-奎塞尔限制的开路电压。这些结果为如何在低带隙材料中实现高压热载流子太阳能电池提供了普遍的见解,因此朝着展示更高效率的热载流子太阳能电池迈出了一步。

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