...
首页> 外文期刊>Nanotechnology >Smoothing of nanoscale roughness based on the Kelvin effect
【24h】

Smoothing of nanoscale roughness based on the Kelvin effect

机译:基于开尔文效应的纳米级粗糙度平滑

获取原文
获取原文并翻译 | 示例
           

摘要

A novel method of smoothing surfaces with nanoscale roughness is described, based on the Kelvin effect. The problem of vapor redistribution in cylindrical channels and over rough planar walls with nanoscale texture is posed and solved analytically. Vapor deposition (condensation) on the walls initially produces a deposit emulating the surface landscape. After a saturated state at the deposit surface is reached, the Kelvin effect should result in higher vapor pressure/concentration near the convex sections of the wall and in lower vapor pressure/concentration near the concave sections. As a result, local vapor fluxes should arise directed from the locally convex to the locally concave regions. Accordingly, the deposited layer at the wall should vaporize (or sublimate) at the convex sections due to depletion and vapor should condense at the concave sections, thus causing smoothing of physical surface unevenness. This mechanism of smoothing of nanoscale roughness has not been considered in detail or used before, even though the basic physics of the Kelvin effect is well known. In the present work, the smoothing kinetics is predicted and the characteristic timescales are calculated in the general case of axisymmetric and non-axisymmetric perturbations of the cylindrical channel walls, as well as for planar surfaces. In addition, experimental data are presented to show that the theoretically motivated approach is also practically realizable.
机译:基于开尔文效应,描述了一种使具有纳米级粗糙度的表面光滑的新方法。提出并通过解析解决了在圆柱通道和具有纳米级纹理的粗糙平面壁上的蒸汽再分配问题。墙壁上的蒸汽沉积(冷凝)最初会产生模仿表面景观的沉积物。在沉积物表面达到饱和状态后,开尔文效应将导致壁的凸部附近的蒸气压/浓度较高,而凹部附近的蒸气压/浓度较低。结果,应该产生从局部凸起区域到局部凹陷区域的局部蒸气通量。因此,壁上的沉积层由于耗尽而应在凸部处汽化(或升华),并且蒸汽应在凹部处凝结,从而导致物理表面不平坦的平滑。尽管开尔文效应的基本物理原理是众所周知的,但从未详细考虑或使用过这种平滑纳米级粗糙度的机制。在目前的工作中,在圆柱通道壁以及平面表面的轴对称和非轴对称扰动的一般情况下,可以预测平滑动力学并计算特征时标。此外,实验数据表明该理论上可行的方法也是切实可行的。

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