English

Thermal crumpling of perforated two-dimensional sheets

Soft Condensed Matter 2017-11-16 v2 Materials Science Statistical Mechanics

Abstract

Thermalized elastic membranes without distant self-avoidance are believed to undergo a crumpling transition when the microscopic bending stiffness is comparable to kTkT, the scale of thermal fluctuations. Most potential physical realizations of such membranes have a bending stiffness well in excess of experimentally achievable temperatures and are therefore unlikely ever to access the crumpling regime. We propose a mechanism to tune the onset of the crumpling transition by altering the geometry and topology of the sheet itself. We carry out extensive molecular dynamics simulations of perforated sheets with a dense periodic array of holes and observe that the critical temperature is controlled by the total fraction of removed area, independent of the precise arrangement and size of the individual holes. The critical exponents for the perforated membrane are compatible with those of the standard crumpling transition.

Keywords

Cite

@article{arxiv.1705.07379,
  title  = {Thermal crumpling of perforated two-dimensional sheets},
  author = {D. Yllanes and S. S. Bhabesh and D. R. Nelson and M. J. Bowick},
  journal= {arXiv preprint arXiv:1705.07379},
  year   = {2017}
}

Comments

10 pages, 12 figures. Version accepted for publication in Nature Communications

R2 v1 2026-06-22T19:53:40.642Z