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胶体磷化铟纳米晶体三辛基氧化膦封端的原位¹H核磁共振研究。

In situ 1H NMR study on the trioctylphosphine oxide capping of colloidal InP nanocrystals.

作者信息

Hens Zeger, Moreels Iwan, Martins Jose C

机构信息

Physical Chemistry Laboratory, Ghent University, Krijgslaan 281-S12, 9000 Gent, Belgium.

出版信息

Chemphyschem. 2005 Dec 9;6(12):2578-84. doi: 10.1002/cphc.200500182.

Abstract

We used trioctylphosphine oxide (TOPO) capped colloidal InP nanocrystals (Q-InP|TOPO) to explore the potential of solution 1H NMR spectroscopy in studying in situ the capping and capping exchange of sterically stabilized colloidal nanocrystals. The spectrum of Q-InP|TOPO shows resonances of free TOPO, superimposed on broadened spectral features. The latter were assigned to TOPO adsorbed at Q-InP by means of pulsed field gradient diffusion NMR and 1H-13C HSQC spectroscopy. The diffusion coefficient of Q-InP|TOPO nanocrystals was inferred from the decay of the adsorbed TOPO NMR signal. The corresponding hydrodynamic diameter correlates well with the diameter of Q-InP. By using the resolved methyl resonance of adsorbed TOPO, the packing density of TOPO at the InP surface can be estimated. Spectral hole burning was used to demonstrate explicitly that the adsorbed TOPO resonances are heterogeneously broadened. Exchange of the TOPO capping by pyridine was demonstrated by the disappearance of the resonances for adsorbed TOPO and the appearance of pyridine resonances in the 1H NMR spectrum. These results show that solution NMR spectroscopy should be considered a powerful technique for the in situ study of the capping of sterically stabilized colloidal nanocrystals.

摘要

我们使用三辛基氧化膦(TOPO)包覆的胶体InP纳米晶体(Q-InP|TOPO)来探索溶液1H NMR光谱在原位研究空间稳定胶体纳米晶体的包覆和包覆交换方面的潜力。Q-InP|TOPO的光谱显示了游离TOPO的共振峰,叠加在展宽的光谱特征上。通过脉冲场梯度扩散NMR和1H-13C HSQC光谱,将后者归属于吸附在Q-InP上的TOPO。从吸附的TOPO NMR信号的衰减推断出Q-InP|TOPO纳米晶体的扩散系数。相应的流体动力学直径与Q-InP的直径相关性良好。通过使用吸附的TOPO的分辨甲基共振,可以估计InP表面TOPO的堆积密度。光谱烧孔被用来明确证明吸附的TOPO共振峰是不均匀展宽的。1H NMR光谱中吸附的TOPO共振峰的消失和吡啶共振峰的出现证明了吡啶对TOPO包覆的交换。这些结果表明,溶液NMR光谱应被视为原位研究空间稳定胶体纳米晶体包覆的有力技术。

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