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晶态结构和硫属元素氧化还原性质对镉硫属化物纳米晶氧化组装的作用。

Role of Crystal Structure and Chalcogenide Redox Properties on the Oxidative Assembly of Cadmium Chalcogenide Nanocrystals.

机构信息

Department of Chemistry, Wayne State University , Detroit, Michigan 48202, United States.

出版信息

Langmuir. 2017 Sep 19;33(37):9434-9443. doi: 10.1021/acs.langmuir.7b01118. Epub 2017 Jul 5.

Abstract

Oxidative assembly of metal chalcogenide nanocrystals (NCs) enables the formation of 2-D (dense) and 3-D porous structures without the presence of intervening ligands between particles that can moderate transport properties. This route has been demonstrated to be successful for a range of single-component structures including CdQ, PbQ, and ZnQ (Q = S, Se, Te). En route to the controllable assembly of multicomponent nanostructures, the roles of Q redox properties (2Q → Q + 2e) responsible for particle cross-linking and the native structure (cubic zinc blende vs hexagonal wurtzite) in the kinetics of assembly in single-component CdQ NCs are evaluated using time-resolved dynamic light scattering (TR-DLS). For wurtzite CdQ, the rates follow the ease of oxidation, with telluride as the fastest, followed by selenide and sulfide. However, when comparing CdS wurtzite (w) and zinc blende (zb), the cubic NCs exhibit surprisingly slow kinetics. NMR studies reveal the zb structure to have lower ligand coverage (by a factor of 4) relative to that of w, and the formation of free disulfide (the product of ligand oxidation) is slow. This is attributed to differences in the surface energies of w and zb facets, with w having polar (0001) facets of high energy compared to the neutral facets of the zb structure. The zb-CdS NCs prepared by low-temperature synthesis methods are likely to suffer from surface defects that may moderate reactivity. EPR studies suggest that zb-CdS has paramagnetic sulfur vacancies not present in w-CdS. These data suggest that structure plays an unexpectedly large role in the kinetics of CdQ NC oxidative assembly, providing a useful lever to moderate activities in multicomponent assemblies.

摘要

金属硫属化物纳米晶体(NCs)的氧化组装使得 2-D(致密)和 3-D 多孔结构的形成成为可能,而不需要存在颗粒之间的中间配体来调节传输性质。这种方法已经成功地应用于一系列单一组分结构,包括 CdQ、PbQ 和 ZnQ(Q=S、Se、Te)。在可控组装多组分纳米结构的过程中,评估了 Q 氧化还原性质(2Q→Q+2e)在颗粒交联中的作用以及在单一组分 CdQ NC 组装动力学中的本征结构(立方闪锌矿与六方纤锌矿)的作用,使用时间分辨动态光散射(TR-DLS)。对于纤锌矿 CdQ,速率遵循氧化的容易程度,碲化物最快,其次是硒化物和硫化物。然而,当比较 CdS 纤锌矿(w)和闪锌矿(zb)时,立方 NCs 表现出出人意料的缓慢动力学。NMR 研究表明,zb 结构的配体覆盖率(低至 4 倍)低于 w 的配体覆盖率,并且游离二硫键(配体氧化的产物)的形成缓慢。这归因于 w 和 zb 晶面的表面能差异,w 的极性(0001)晶面具有比 zb 结构的中性晶面更高的能量。通过低温合成方法制备的 zb-CdS NCs 可能受到表面缺陷的影响,这可能会调节反应性。EPR 研究表明,zb-CdS 具有不存在于 w-CdS 中的顺磁硫空位。这些数据表明,结构在 CdQ NC 氧化组装动力学中起着出人意料的重要作用,为调节多组分组装中的活性提供了有用的手段。

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