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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Nanocrystal and nanowire synthesis and dispersibility in supercritical fluids
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Nanocrystal and nanowire synthesis and dispersibility in supercritical fluids

机译:纳米晶体和纳米线的合成及其在超临界流体中的分散性

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Here we review major breakthroughs in the rapidly developing research area of nanomaterial synthesis in supercritical fluids focusing on both the fundamental science and processing advantages in the application areas of separations, assembly and scale-up of synthesis. Density-tunable control of the solvation strength, along with favorable interfacial tensions, wetting, and transport properties make supercritical fluids (SCFs) unique and potentially superior solvent media for the synthesis and processing of nanoscale metals and semiconductors. The steric repulsion between particle cores may be tuned by adjusting the solvent density to control the nanocrystal size and polydispersity during single-phase synthesis, and to achieve size-selective nanocrystal precipitation. Compressed solvents at the vapor pressure can also be used to deposit nanocrystal monolayers at controlled evaporation rates without dewetting at higher rates than conventional solvents. The high synthetic temperatures accessible in SCFs can be used to promote the crystallization of covalent nanomaterials, while maintaining a reaction environment capable of solvating reactants and capping ligands. This allows semiconductor nanocrystals exhibiting size-dependent photoluminescence to be synthesized at temperatures well above the boiling point of conventional solvents. Finally, gold nanocrystal seed particles can be used to synthesize bulk quantities of defect-free silicon and germanium nanowires, several micrometers in length.
机译:在这里,我们回顾了在超临界流体中纳米材料合成快速发展的研究领域中的重大突破,重点介绍了合成的分离,组装和放大应用领域的基础科学和加工优势。对溶剂化强度的密度可调控制,以及良好的界面张力,润湿和传输特性,使超临界流体(SCF)成为用于合成和加工纳米级金属和半导体的独特且潜在的优越溶剂介质。可以通过调节溶剂密度来调节颗粒核之间的空间排斥,以控制单相合成过程中的纳米晶体尺寸和多分散性,并实现尺寸选择性的纳米晶体沉淀。在蒸气压下压缩的溶剂也可以用于以受控的蒸发速率沉积纳米晶体单层,而不会以比常规溶剂更高的速率去湿。 SCF中可达到的高合成温度可用于促进共价纳米材料的结晶,同时保持能够溶解反应物和封盖配体的反应环境。这允许在远高于常规溶剂的沸点的温度下合成显示出尺寸依赖性光致发光的半导体纳米晶体。最后,金纳米晶种粒子可用于合成大量无缺陷的硅和锗纳米线,其长度为几微米。

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