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Chemical vapor functionalization: a continuous production process for functionalized ZnO nanoparticles

机译:化学气相功能化:功能化ZnO纳米颗粒的连续生产工艺

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The continuous functionalization of nanoparticles in the gas-phase directly after their generation, chemical vapor functionalization, is studied with ZnO and 1-hexanol as a model system using two reactors in series. In the first reactor ZnO nanoparticles are synthesized in the gas-phase from diethylzinc and oxygen at 1,073 K with grain sizes of 13 nm as determined by Rietveld refinement of X-ray diffractograms. The second reactor, connected at the exit of the first reactor and kept at lower temperatures (573, 673, and 773 K), is used as a functionalization chamber. At the connection point of the two reactors, the vapor of 1-hexanol is injected to react with the surface of ZnO nanoparticles in the gas phase. The process has been analyzed by quadrupole mass spectrometry to obtain information about optimal conditions for functionalization. Dynamic light scattering data show that the functionalized particles have substantially improved colloidal dispersibility with hydrodynamic diameters of 60 nm. Diffuse reflectance fourier transform infrared spectra and 1H nuclear magnetic resonance spectra are consistent with 1-hexanol adsorbed at the particle surface acting as a functionalizing agent. The agglomerate size is substantially reduced owing to chemical vapor functionalization.
机译:以ZnO和1-己醇为模型系统,使用两个串联的反应器,研究了纳米粒子在生成后直接在气相中进行的连续功能化,化学气相功能化。在第一个反应器中,由二乙基锌和氧在1,073 K下以气相形式合成ZnO纳米颗粒,通过X射线衍射图的Rietveld精炼测定,晶粒尺寸为13 nm。连接在第一反应器出口并保持较低温度(573、673和773 K)的第二反应器用作功能化室。在两个反应器的连接点,注入1-己醇蒸气与气相中的ZnO纳米粒子表面反应。该过程已通过四极杆质谱进行了分析,以获得有关功能化最佳条件的信息。动态光散射数据显示,官能化的颗粒具有60 nm的流体动力学直径,具有显着改善的胶体分散性。漫反射傅立叶变换红外光谱和 1 H核磁共振光谱与在颗粒表面吸附的作为官能化剂的1-己醇相一致。由于化学气相功能化,附聚物的尺寸大大减小。

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