Zisapel Nano-electronics Centre, Department of Electrical Engineering, Technion-Israel Institute of Technology, Technion City, Haifa 32000, Israel.
Nat Mater. 2011 Oct 9;10(12):974-9. doi: 10.1038/nmat3133.
Inorganic nanocrystals are attractive materials for solar-cell applications. However, the performance of such devices is often limited by an insufficient alignment of energy levels in the nanocrystals. Here, we report that by attaching two different molecules to a single quantum dot or nanocrystal one can induce electric fields large enough to significantly alter the electronic and optoelectronic properties of the quantum dot. This electric field is created within the nanocrystals owing to a mixture of amine- and thiol-anchor-group ligands. Examining the steady state as well as temporal evolution of the optical properties and the nuclear magnetic resonances of the nanocrystals we found that the first excitonic peak shifts as a function of the capping-layer composition. We also demonstrate that the use of a mixed-ligand-induced electric field markedly enhances the charge generation efficiency in layer-by-layer CdSe-nanocrystal-based solar cells, thus improving the overall cell efficiency.
无机纳米晶体是太阳能电池应用中极具吸引力的材料。然而,这些器件的性能通常受到纳米晶体中能级排列不足的限制。在这里,我们报告说,通过将两种不同的分子附着到单个量子点或纳米晶体上,可以诱导出足够大的电场,从而显著改变量子点的电子和光电性质。这种电场是由于胺和硫醇锚定基团配体的混合物在纳米晶体内部产生的。通过研究纳米晶体的稳态和瞬态光学性质以及核磁共振,我们发现第一激子峰随覆盖层组成的变化而移动。我们还证明,使用混合配体诱导的电场可以显著提高基于层层 CdSe 纳米晶体的太阳能电池的电荷产生效率,从而提高整个电池的效率。