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Fabrication of large binary colloidal crystals with a NaCl structure

机译:具有NaCl结构的大型二元胶体晶体的制备

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摘要

Binary colloidal crystals offer great potential for tuning material properties for applications in, for example, photonics, semiconductors and spintronics, because they allow the positioning of particles with quite different characteristics on one lattice. For micrometer-sized colloids, it is believed that gravity and slow crystallization rates hinder the formation of high-quality binary crystals. Here, we present methods for growing binary colloidal crystals with a NaCl structure from relatively heavy, hard-sphere-like, micrometer-sized silica particles by exploring the following external fields: electric, gravitational, and dielectrophoretic fields and a structured surface (colloidal epitaxy). Our simulations show that the free-energy difference between the NaCl and NiAs structures, which differ in their stacking of the hexagonal planes of the larger spheres, is very small (≈0.002 kBT). However, we demonstrate that the fcc stacking of the large spheres, which is crucial for obtaining the pure NaCl structure, can be favored by using a combination of the above-mentioned external fields. In this way, we have successfully fabricated large, 3D, oriented single crystals having a NaCl structure without stacking disorder.
机译:二元胶体晶体具有很大的潜力,可用于调整材料特性,例如在光子学,半导体和自旋电子学中的应用,因为它们允许将具有完全不同特性的粒子定位在一个晶格上。对于微米级的胶体,据信重力和缓慢的结晶速率阻碍了高质量二元晶体的形成。在这里,我们通过探索以下外部场,从电场,重力场和介电电泳场以及结构化表面(胶体外延),介绍了从相对重,硬球状,微米级的二氧化硅颗粒中生长具有NaCl结构的二元胶体晶体的方法。 )。我们的模拟表明,NaCl和NiAs结构之间的自由能差非常小(≈0.002kBT),这两个方面的区别在于它们在较大球体的六边形平面上的堆叠不同。但是,我们证明,通过使用上述外部场的组合,对获得纯NaCl结构至关重要的大球体fcc堆积非常有利。通过这种方式,我们已经成功地制造了具有NaCl结构且没有堆积无序的大型3D取向单晶。

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