English

Dynamical and structural signatures of the glass transition in emulsions

Soft Condensed Matter 2017-10-09 v2

Abstract

We investigate structural and dynamical properties of moderately polydisperse emulsions across an extended range of droplet volume fractions phgr, encompassing fluid and glassy states up to jamming. Combining experiments and simulations, we show that when ϕ\phi approaches the glass transition volume fraction ϕg{{\phi}_{g}} , dynamical heterogeneities and amorphous order arise within the emulsion. In particular, we find an increasing number of clusters of particles having five-fold symmetry (i.e. the so-called locally favoured structures, LFS) as ϕ\phi approaches ϕg{{\phi}_{g}} , saturating to a roughly constant value in the glassy regime. However, contrary to previous studies, we do not observe a corresponding growth of medium-range crystalline order; instead, the emergence of LFS is decoupled from the appearance of more ordered regions in our system. We also find that the static correlation lengths associated with the LFS and with the fastest particles can be successfully related to the relaxation time of the system. By contrast, this does not hold for the length associated with the orientational order. Our study reveals the existence of a link between dynamics and structure close to the glass transition even in the absence of crystalline precursors or crystallization. Furthermore, the quantitative agreement between our confocal microscopy experiments and Brownian dynamics simulations indicates that emulsions are and will continue to be important model systems for the investigation of the glass transition and beyond.

Keywords

Cite

@article{arxiv.1605.01917,
  title  = {Dynamical and structural signatures of the glass transition in emulsions},
  author = {Chi Zhang and Nicoletta Gnan and Thomas G. Mason and Emanuela Zaccarelli and Frank Scheffold},
  journal= {arXiv preprint arXiv:1605.01917},
  year   = {2017}
}

Comments

J. Stat. Mech. (2016) 094003 --- special issue of JSTAT "The Role of Structure in Glassy and Jammed Systems "