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Phonon-assisted nonradiative energy transfer from colloidal quantum dots to monocrystalline bulk silicon

机译:声子辅助非辐射能从胶体量子点转移到单晶体硅

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Silicon is one of the most dominant materials in photovoltaics. To increase optical absorption of silicon solar cells, colloidal quantum dots (QDs) have been proposed as a good sensitizer candidate owing to their favorably high absorption cross-section and tunable emission and absorption properties. To this end, QD sensitization of silicon has previously been studied by mostly facilitating radiative energy transfer (RET) [1,2]. Although RET based sensitization has achieved a considerable increase in conversion efficiencies in silicon photovoltaics, RET is fundamentally limited due to the effective coupling problem of emitted photons to silicon. Alternatively, nonradiative energy transfer (NRET), which relies on near field dipole-dipole coupling [3], has been shown to be feasible in sensitizer-silicon hybrid systems [4–8]. Although colloidal QDs as a sensitizer have been used to facilitate NRET into silicon, the detailed mechanisms of NRET to an indirect bandgap nonluminecent material, together with the role of phonon assistance and temperature activation, have not been fully understood to date. In this study, we propose a QD-silicon nanostructure hybrid platform to study the NRET dynamics as a function of temperature for distinct separation thicknesses between the donor QDs and the acceptor silicon plane. Here, we show NRET from colloidal QDs to bulk Si using phonon assisted absorption, developing its physical model to explain temperature-dependent lifetime dynamics of NRET in these QD-Si hybrids.
机译:硅是光伏中最主要的材料之一。为了增加硅太阳能电池的光吸收,由于其有利的高吸收截面以及可调节的发射和吸收特性,已经提出了胶体量子点(QD)作为良好的敏化剂候选物。为此,以前已经通过主要促进辐射能转移(RET)[1,2]研究了硅的QD敏化。尽管基于RET的敏化已经大大提高了硅光伏器件的转换效率,但是由于发射的光子与硅之间存在有效的耦合问题,因此RET从根本上受到了限制。另外,非辐射能量转移(NRET)依赖于近场偶极-偶极耦合[3],已被证明在敏化剂-硅混合系统中是可行的[4-8]。尽管已经使用胶体量子点作为敏化剂来促进NRET进入硅中,但迄今为止,尚未完全了解NRET形成间接带隙非发光材料的详细机理,以及声子辅助和温度活化的作用。在这项研究中,我们提出了一个QD-硅纳米结构混合平台,以研究供体QD和受体硅平面之间不同分隔厚度的NRET动力学随温度的变化。在这里,我们显示了使用声子辅助吸收从胶体量子点到块状硅的NRET,发展了其物理模型来解释这些QD-Si杂化体中NRET的温度依赖性寿命动态。

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