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Graphene/porous silicon Schottky-junction solar cells

机译:石墨烯/多孔硅肖特基结太阳能电池

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摘要

Porous silicon (PSi) is highly attractive for the solar cell applications due to its unique properties such as efficient antireflection, band gap widening, broad range of optical absorption/transmission, and surface passivation/texturization effect. We first report PSi Schottky-type heterojunction solar cells by employing graphene transparent conductive electrodes doped with silver nanowires (Ag NWs). The PSi is formed based on metal-assisted chemical etching process, and its porosity is controlled by varying the deposition time (t(d)) of Ag nanoparticles used for the etching. The Ag NWs-doped graphene/PSi solar cells show a maximum power-conversion efficiency (PCE) of 4.03% at t(d) = 3 s/concentration (nA) of Ag NWs = 0.1 wt percent (wt%). As td increases, the diode ideality factor and the light absorption increase. As nA increases, the work function (thus the open circuit voltage) and the transmittance decrease whilst the light absorption increases/the sheet resistance decreases. These trade-offs explain why the PCE is maximized at t(d) = 3 s/nA = 0.1 wt%. (C) 2017 Elsevier B.V. All rights reserved.
机译:由于其独特的性能,如诸如有效的抗反射,带隙扩大,光学吸收/变速器的广泛范围,以及表面钝化/纹理效果,多孔硅(PSI)对太阳能电池应用具有高度吸引力。首先通过采用掺杂有银纳米线(AgNWS)的石墨烯透明导电电极来报告PSI肖特基型异质结太阳能电池。 PSI基于金属辅助化学蚀刻工艺形成,通过改变用于蚀刻的Ag纳米颗粒的沉积时间(T(d))来控制其孔隙率。 Ag NWS掺杂的石墨烯/ PSI太阳能电池显示出在T(d)= 3 s /浓度(Na)的1403%的最大功率转换效率(PCE)= 0.1wt%(wt%)。随着TD的增加,二极管理想因子和光吸收增加。随着NA增加,功函数(因此开路电压)和透射率降低,而光吸收增加/薄层电阻减小。这些权衡解释了为什么PCE在t(d)= 3 s / na = 0.1wt%时最大化。 (c)2017年Elsevier B.V.保留所有权利。

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