论文标题

检查氯化物配体在不完美附着的半导体纳米晶体中的缺陷中的作用

Examining the Role of Chloride Ligands on Defect Removal in Imperfectly Attached Semiconductor Nanocrystals for 1D and 2D Attachment Cases

论文作者

McKeown-Green, Amy S., Ondry, Justin C., Crook, Michelle F., Calvin, Jason J., Alivisatos, A. Paul

论文摘要

半导体,核壳纳米晶体(NCS)是使用定向附件构建更高维度人工纳米结构的有希望的基础。然而,对这种结构至关重要的组装和外延依恋步骤引起了障碍和缺陷,从而抑制了观察到理想的新兴电子现象。因此,理解这些系统中的缺陷形成和补救是维度的函数,这是完善其合成的关键步骤。在这项工作中,我们使用原位高分辨率透射电子显微镜来检查氯化物配体作为补救剂的作用,用于在1D和2D附件案例中CDSE/CDS/CDS核心壳NC之间不完美的附着接口。在1D情况下,我们发现不完美的NC二聚体中氯化物添加剂的存在可能导致缺陷去除速度几乎是其在其普通,非氯化物处理过的对应物中的两倍。但是,当我们提高系统的维度并检查了2D NC阵列时,我们发现氯化物和未处理的样品之间的附着界面质量没有统计学上的显着差异。我们建议这种障碍源于1d和2d NC附件之间的根本差异,并讨论合成指南,以告知未来的纳米材料超晶格设计。

Semiconducting, core-shell nanocrystals (NCs) are promising building blocks for the construction of higher dimensional artificial nanostructures using oriented attachment. However, the assembly and epitaxial attachment steps critical to this construction introduce disorder and defects which inhibit the observation of desirable emergent electronic phenomena. Consequently, understanding defect formation and remediation in these systems as a function of dimensionality is a crucial step to perfecting their synthesis. In this work, we use in situ high resolution transmission electron microscopy to examine the role of chloride ligands as remediator agents for imperfect attachment interfaces between CdSe/CdS core-shell NCs for both 1D and 2D attachment cases. In the 1D case, we find that the presence of chloride additives in imperfectly attached NC dimers can result in defect removal speeds nearly twice as large as those found in their plain, non-chloride treated counterparts. However, when we increased the dimensionality of the system and examined 2D NC arrays, we found no statistically significant difference in attachment interface quality between the chloride and non-chloride treated samples. We propose that this discongruity arises from fundamental differences between 1D and 2D NC attachment and discuss synthetic guidelines to inform future nanomaterial superlattice design.

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