...
首页> 外文期刊>ACS nano >Nanoscopic Terraces, Mesas, and Ridges in Freely Standing Thin Films Sculpted by Supramolecular Oscillatory Surface Forces
【24h】

Nanoscopic Terraces, Mesas, and Ridges in Freely Standing Thin Films Sculpted by Supramolecular Oscillatory Surface Forces

机译:超分子振荡表面力雕刻的自由站立薄膜中的纳米阶地,台地和脊

获取原文
获取原文并翻译 | 示例
           

摘要

Freely standing thin liquid films containing supramolecular structures including micelles, nanoparticles, polyelectrolyte surfactant complexes, and smectic liquid crystals undergo drainage via stratification. The layer-by-layer removal of these supramolecular structures manifests as stepwise thinning over time and a coexistence of domains and nanostructures of discretely different thickness. The layering of supramolecular structures in confined thin films contributes additional non-DLVO, supramolecular oscillatory surface forces to disjoining pressure, thus influencing both drainage kinetics and stability of thin films. Understanding and characterizing the spontaneous creation and evolution of nanoscopic topography of stratifying, freely standing thin liquid films have been long-standing challenges due to the absence of experimental techniques with the requisite spatial (thickness <10 nm) and temporal resolution (<1 ms). Using Interferometry Digital Imaging Optical Microscopy (IDIOM) protocols developed herein, we visualize and characterize size, shape, and evolution kinetics of nanoscopic mesas, terraces, and ridges. The exquisite thickness maps created using IDIOM protocols provide much needed and unprecedented insights into the role of supramolecular oscillatory surface forces in driving growth of such nanostructures as well as in controlling properties and stability of freely standing thin films and, more generally, of colloidal dispersions like foams.
机译:包含超分子结构(包括胶束,纳米颗粒,聚电解质表面活性剂复合物和近晶液晶)的自由站立的液体薄膜会通过分层作用排干。这些超分子结构的逐层去除表现为随着时间的推移逐步变薄,以及厚度离散不同的域和纳米结构共存。受限薄膜中的超分子结构的分层有助于附加的非DLVO,超分子振荡表面力来分离压力,从而影响排水动力学和薄膜的稳定性。由于缺乏具有必要的空间(厚度<10 nm)和时间分辨率(<1 ms)的实验技术,了解和表征分层,自立的液体薄膜的纳米形貌的自发产生和演化一直是长期的挑战。 。使用本文开发的干涉测量数字成像光学显微镜(IDIOM)协议,我们可以可视化并表征纳米台面,梯田和山脊的大小,形状和演化动力学。使用IDIOM协议创建的精美厚度图为超分子振荡表面力在驱动此类纳米结构的生长以及控制自由站立的薄膜以及更普遍的胶体分散体(例如,胶体分散体)的性能和稳定性方面的作用提供了急需的,前所未有的见解泡沫。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号