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Recrystallization techniques for the synthesis of ZnO nanorods: an in situ process for carbon doping and enhancing the dispersion concentration of ZnO nanorods

机译:用于合成ZnO纳米棒的重结晶技术:碳掺杂和提高ZnO纳米棒的分散浓度的原位工艺

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Zinc acetate is recrystallized as lumber-shaped tetragonal rods by a novel recrystallization technique. Subsequently, the recrystallized zinc acetate is converted into ZnO nanorods in a glass vial by the simplest and cheapest method without utilizing any expensive instrumentation. Carbon is doped in ZnO nanorods during the preparation ZnO nanorods without any extra steps, chemicals, or effort. The carbon-doped ZnO nanorods can be dispersed in a solvent at very high concentrations and are also stable for a very long time, which are comparatively higher than those of the other existing ZnO nanoparticles. The higher dispersion concentration and higher stability of ZnO nanoparticles are explained by a scheme that demonstrates the suspending mechanism of the ZnO nanoparticles at higher concentrations with higher stabilities in a solvent through the anchoring groups of carbon. No materials are used for surface modification; no surface coatings, ionic materials, or pH controlling materials are used to increase the dispersion concentration and stability. This is the first observation of the doped carbon playing a significant role in the dispersion of ZnO nanoparticles at higher concentrations by withholding them in the solvent. Therefore, doped carbon at the surface of ZnO nanoparticles prevents the self-aggregation of ZnO nanoparticles in the solution phase by interfacial barrier layers among ZnO nanorods and interfacial interactive layer between ZnO nanorod and solvent.
机译:乙酸锌通过新颖的重结晶技术重结晶为木材形的四方棒。随后,在不使用任何昂贵仪器的情况下,通过最简单,最便宜的方法将重结晶的乙酸锌在玻璃小瓶中转化为ZnO纳米棒。在制备ZnO纳米棒的过程中,将碳掺杂在ZnO纳米棒中,而无需任何额外的步骤,化学药品或精力。碳掺杂的ZnO纳米棒可以以非常高的浓度分散在溶剂中,并且也可以长时间稳定,这比其他现有的ZnO纳米颗粒要高。 ZnO纳米颗粒的较高分散浓度和较高稳定性由一种方案解释,该方案证明了较高浓度的ZnO纳米颗粒通过碳的锚定基团在溶剂中具有较高稳定性的悬浮机理。没有材料用于表面改性;没有使用表面涂层,离子材料或pH控制材料来增加分散液的浓度和稳定性。这是首次观察到掺杂碳通过将其保留在溶剂中而在较高浓度的ZnO纳米颗粒分散中起重要作用。因此,ZnO纳米颗粒表面的掺杂碳通过ZnO纳米棒之间的界面阻挡层和ZnO纳米棒与溶剂之间的界面相互作用层防止了ZnO纳米颗粒在溶液相中的自聚集。

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