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Efficient radiative and nonradiative energy transfer from proximal CdSe/ZnS nanocrystals into silicon nanomembranes

机译:从近端CdSe / ZnS纳米晶体到硅纳米膜的有效辐射和非辐射能量转移

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Figure Persented: We demonstrate efficient excitonic sensitization of crystalline Si nanomembranes via combined effects of radiative (RET) and nonradiative (NRET) energy transfer from a proximal monolayer of colloidal semiconductor nanocrystals. Ultrathin, 25-300 nm Si films are prepared on top of insulating SiO _2 substrates and grafted with a monolayer of CdSe/ZnS nanocrystals via carboxy-alkyl chain linkers. The wet chemical preparation ensures that Si surfaces are fully passivated with a negligible number of nonradiative surface state defects and that the separation between nanocrystals and Si is tightly controlled. Time-resolved photoluminescence measurements combined with theoretical modeling allow us to quantify individual contributions from RET and NRET. Overall efficiency of ET into Si is estimated to exceed 85% for a short distance of about 4 nm from nanocrystals to the Si surface. Effective and longer-range radiative coupling of nanocrystal's emission to waveguiding modes of Si films is clearly revealed. This demonstration supports the feasibility of an advanced thin-film hybrid solar cell concept that relies on energy transfer between strong light absorbers and adjacent high-mobility Si layers.
机译:图的观点:我们展示了通过胶体半导体纳米晶体近端单层的辐射(RET)和非辐射(NRET)能量转移的联合效应,晶体Si纳米膜的有效激子敏化。在绝缘的SiO _2衬底上制备25-300 nm的超薄硅膜,并通过羧基-烷基链接头将CdSe / ZnS纳米晶体单层接枝。湿法化学制备可确保对硅表面进行完全钝化处理,并具有可忽略数量的非辐射表面态缺陷,并且可以严格控制纳米晶体与硅之间的分离。时间分辨的光致发光测量与理论建模相结合,使我们能够量化RET和NRET的贡献。对于从纳米晶体到Si表面的约4nm的短距离,ET进入Si的总效率估计超过85%。清楚地揭示了纳米晶体的发射与Si薄膜的波导模式之间有效且远距离的辐射耦合。该演示证明了先进的薄膜混合太阳能电池概念的可行性,该概念依赖于强光吸收体和相邻的高迁移率Si层之间的能量转移。

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