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The Passivating Effect of Cadmium in PbS/CdS Colloidal Quantum Dots Probed by nm-Scale Depth Profiling

机译:纳米级深度剖面探测镉在pbs / Cds胶体量子点中的钝化效应

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摘要

Achieving control of the surface chemistry of colloidal quantum dots (CQDs) is essential to fully exploit their properties in solar cells, but direct measurement of the chemistry and electronic structure in the outermost atomic layers is challenging. Here we probe the surface oxidation and passivation of cation-exchanged PbS/CdS core/shell CQDs with sub nm-scale precision using synchrotron-radiation-excited depth-profiling photoemission. We investigate the surface composition of the topmost 1-2.5 nm of the CQDs as a function of depth, for CQDs of varying CdS shell thickness, and examine how the surface changes after prolonged air exposure. We demonstrate that the Cd is localized at the surface of the CQDs. The surface-localized products of oxidation are identified, and the extent of oxidation quantified. We show that oxidised sulfur species are progressively eliminated as Cd replaces Pb at the surface. A sub-monolayer surface 'decoration' of Cd is found to be effective in passivating the CQDs. We show that the measured energy-level alignments at PbS/CdS colloidal quantum dot surfaces differ from those expected on the basis of bulk band offsets, and are strongly affected by the oxidation products. We develop a model for the passivating action of Cd. The optimum shell thickness (of around 0.1 nm, previously found to give maximised power conversion efficiency in PbS/CdS solar cells) is found to correspond to a trade-off between the rate of oxidation and the introduction of a surface barrier to charge transport.
机译:实现胶体量子点(CQD)的表面化学控制对于充分利用其在太阳能电池中的性能至关重要,但是直接测量最外层原子层的化学和电子结构是一项挑战。在这里,我们使用同步辐射辐射激发的深度分析光发射技术,以亚纳米级的精度探测了阳离子交换的PbS / CdS核/壳CQD的表面氧化和钝化。对于变化的CdS壳厚度的CQD,我们研究了CQD最顶部1-2.5 nm的表面组成随深度的变化,并研究了长时间暴露于空气后表面如何变化。我们证明Cd位于CQDs的表面。确定了表面定位的氧化产物,并量化了氧化程度。我们表明,随着Cd取代表面上的Pb,逐渐消除了氧化的硫。发现Cd的亚单层表面“修饰”可有效钝化CQD。我们表明,在PbS / CdS胶体量子点表面测得的能级排列与基于体带偏移的预期能级排列不同,并且受氧化产物的强烈影响。我们开发了镉钝化作用的模型。发现最佳的壳厚度(约0.1nm,先前发现在PbS / CdS太阳能电池中能提供最大的功率转换效率)对应于氧化速率和引入用于电荷传输的表面势垒之间的折衷。

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