English

Measuring the complexity of micro and nanostructured surfaces

Mesoscale and Nanoscale Physics 2022-02-03 v1

Abstract

Nanostructured surfaces usually exhibit complicated morphologies that cannot be described in terms of Euclidean geometry. Simultaneously, they do not constitute fully random noise fields to be characterized by simple stochastics and probability theory. In most cases, nanomorphologies consist of complicated mixtures of order and randomness, which should be described quantitatively if one aims to control their fabrication and properties. In this work, inspired by recent developments in complexity theory, we propose a method to measure nanomorphology complexity that is based on the deviation from the average symmetry of surfaces. We present the methodology for its calculation and the validation of its performance, using a series of synthetic surfaces where the proposed complexity measure obtains a maximum value at the most heterogeneous morphologies between the fully ordered and fully random cases. Additionally, we measure the complexity of experimental micro and nanostructured surfaces (polymeric and metallic), and demonstrate the usefulness of the proposed method in quantifying the impact of processing conditions on their morphologies. Finally, we hint on the relationship between the complexity measure and the functional properties of surfaces.

Keywords

Cite

@article{arxiv.2202.00957,
  title  = {Measuring the complexity of micro and nanostructured surfaces},
  author = {A. Arapis and V. Constantoudis and D. Kontziampasis and A. Milionis and C. W. E. Lam and A. Tripathy and D. Poulikakos and E. Gogolides},
  journal= {arXiv preprint arXiv:2202.00957},
  year   = {2022}
}

Comments

13 pages, 13 figures. Materials Today: Proceedings, 2021

R2 v1 2026-06-24T09:15:27.122Z