Solid State Physics Division, Bhabha Atomic Research Centre, Mumbai-400085, India.
Langmuir. 2011 Jul 5;27(13):8404-14. doi: 10.1021/la200827n. Epub 2011 Jun 1.
The origin of the buckling of micrometer-sized colloidal droplets during evaporation-induced self-assembly (EISA) has been elucidated using electron microscopy and small-angle neutron scattering. Doughnut-like assembled grains with varying aspect ratios are formed during EISA at different physicochemical conditions. It has been revealed that this phenomenon is better explained by an existing hypothesis based on the formation of a viscoelastic shell of nanoparticles during drying than by other existing hypotheses based on the inertial instability of the initial droplets and hydrodynamic instability due to thermocapillary forces. This conclusion was further supported by the arrest of buckling through modification of the colloidal interaction in the initial dispersion.
使用电子显微镜和小角中子散射,阐明了在蒸发诱导自组装(EISA)过程中微米级胶体液滴的屈曲起源。在不同的物理化学条件下进行 EISA 时,会形成具有不同纵横比的甜甜圈状组装颗粒。已经揭示,与基于初始液滴的惯性不稳定性和由于热毛细力引起的流体动力学不稳定性的其他现有假设相比,基于在干燥过程中形成纳米颗粒的粘弹性壳的现有假设可以更好地解释这种现象。通过修饰初始分散体中的胶体相互作用来阻止屈曲,进一步支持了这一结论。