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Colloidal nanoparticles for Intermediate Band solar cells

机译:用于中频太阳能电池的胶体纳米粒子

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The Intermediate Band (IB) solar cell concept is a promising idea to transcend the Shockley-Queisser limit. Using the results of first principles calculations, we propose that colloidal nanoparticles (CNPs) are a viable and efficient platform for the implementation of the IB solar cell concept. Focusing on CdSe CNPs, we show that (1) a well-defined intragap state arises inside the gap of the CdSe CNPs, and (2) the intra-gap states of the isolated CNPs with reconstructed surfaces combine to form an IB in arrays of CNPs. This IB is well separated from the valence and conduction band edges. We also show that in solution such IB may be electron doped using, e.g. decamethylcobaltocene, thus activating an IB-induced absorption process. Our results, together with the recent report of a nearly 9% efficient CNP solar cell indicate that colloidal nanoparticle intermediate band solar cells are a promising platform to overcome the Shockley-Queisser limit.
机译:中频(IB)太阳能电池概念是超越Shockley-Queisser极限的一个有前途的想法。使用第一性原理计算的结果,我们认为胶体纳米颗粒(CNP)是实施IB太阳能电池概念的可行且有效的平台。着眼于CdSe CNP,我们显示(1)在CdSe CNP的间隙内出现了良好定义的内部间隙状态,(2)具有重构表面的分离的CNP的内部间隙状态组合形成IB CNP。该IB与价带和导带边缘很好地分开。我们还表明,在溶液中这种IB可以使用例如电子掺杂。十甲基钴茂,从而激活了IB诱导的吸收过程。我们的研究结果以及最近报道的效率接近9%的CNP太阳能电池表明,胶体纳米粒子中间带太阳能电池是克服Shockley-Queisser限制的一个有前途的平台。

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