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通过使用介电支撑材料的 DNP SENS 探测半导体纳米粒子的表面结构。

Probing the Surface Structure of Semiconductor Nanoparticles by DNP SENS with Dielectric Support Materials.

机构信息

Iowa State University , Department of Chemistry , Ames , Iowa 50011 , United States.

US DOE Ames Laboratory , Ames , Iowa 50011 , United States.

出版信息

J Am Chem Soc. 2019 Oct 2;141(39):15532-15546. doi: 10.1021/jacs.9b05509. Epub 2019 Sep 23.

DOI:10.1021/jacs.9b05509
PMID:31456398
Abstract

Surface characterization is crucial for understanding how the atomic-level structure affects the chemical and photophysical properties of semiconducting nanoparticles (NPs). Solid-state nuclear magnetic resonance spectroscopy (NMR) is potentially a powerful technique for the characterization of the surface of NPs, but it is hindered by poor sensitivity. Dynamic nuclear polarization surface enhanced NMR spectroscopy (DNP SENS) has previously been demonstrated to enhance the sensitivity of surface-selective solid-state NMR experiments by 1-2 orders of magnitude. Established sample preparations for DNP SENS experiments on NPs require the dilution of the NPs on mesoporous silica. Using hexagonal boron nitride (-BN) to disperse the NPs doubles DNP enhancements and absolute sensitivity in comparison to standard protocols with mesoporous silica. Alternatively, precipitating the NPs as powders, mixing them with -BN, and then impregnating the powdered mixture with radical solution leads to further 4-fold sensitivity enhancements by increasing the concentration of NPs in the final sample. This modified procedure provides a factor of 9 improvement in NMR sensitivity in comparison to previously established DNP SENS procedures, enabling challenging homonuclear and heteronuclear 2D NMR experiments on CdS, Si, and CdP NPs. These experiments allow NMR signals from the surface, subsurface, and core sites to be observed and assigned. For example, we demonstrate the acquisition of DNP-enhanced 2D Cd-Cd correlation NMR experiments on CdS NPs and natural isotropic abundance 2D C-Si HETCOR of functionalized Si NPs. These experiments provide a critical understanding of NP surface structures.

摘要

表面特性分析对于了解原子级结构如何影响半导体纳米粒子(NPs)的化学和光物理性质至关重要。固态核磁共振波谱学(NMR)是一种对 NPs 表面特性进行分析的潜在强大技术,但它的灵敏度较差。动态核极化表面增强核磁共振波谱学(DNP SENS)先前已被证明可以将表面选择性固态 NMR 实验的灵敏度提高 1-2 个数量级。用于 DNP SENS 实验的 NPs 的既定样品制备需要在介孔硅上稀释 NPs。与使用介孔硅的标准方案相比,使用六方氮化硼(-BN)分散 NPs 可将 DNP 增强和绝对灵敏度提高一倍。或者,将 NPs 沉淀为粉末,将其与 -BN 混合,然后将粉末混合物用自由基溶液浸渍,通过增加最终样品中 NPs 的浓度,进一步将灵敏度提高 4 倍。与先前建立的 DNP SENS 程序相比,这种改进的程序使 NMR 灵敏度提高了 9 倍,从而能够对 CdS、Si 和 CdP NPs 进行具有挑战性的同核和异核二维 NMR 实验。这些实验允许观察和分配来自表面、次表面和核心位置的 NMR 信号。例如,我们演示了在 CdS NPs 上进行 DNP 增强二维 Cd-Cd 相关 NMR 实验以及功能化 Si NPs 的天然各向同性丰度二维 C-Si HETCOR 的采集。这些实验提供了对 NP 表面结构的关键理解。

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