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Pattern formation at the traveling liquid-crystal twist grain boundary-smectic a interface

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Il Nuovo Cimento D

Summary

Pattern formation at phase boundaries moving in a temperature gradient is one of the major areas of nonequilibrium physics attracting considerable attention. While most of the early work concentrated on the moving solid-liquid interface, now the focus has changed to phase transitions characterized by broken continuous symmetry. Most recently we investigated consequences to interfacial patterns of a chirality-induced equilibrium length. Here we study patterns at another chiral interface where one of the phases has a chirality-induced defect lattice, the twist grain boundary (TGB) phase. The TGB state is analogous to the vortex lattice in Type-II superconductors predicted by the Gennes’ analogy between the nematic (N)-smectic A (A) transition and the normal-superconducting transition. In this analogy, a cholesteric A transition is analogous to the normal-superconducting transition in an external magnetic field and a theory has been developed for its analogous vortex lattice, the TGB phase, when this transition is Type II. We study patterns formed at the traveling TGB-A phase boundary. Different patterns are observed depending on whether TGB grows into A or A into TGB. Indeed, this maybe the first time a steady-state pattern is observed in directional melting (i.e. TGB growing into A). As these patterns have a broad band of wavelengths, they are difficult to characterize physically. Thus, we introduced a novel analysis (most simply but not rigorously described as) measuring the fractal dimension of the patterns at these traveling interfaces. Two lengths emerged from this analysis: a longer one set by sample thickness and a shorter one set by the smallest TGB unit that can grow into an oriented smectic A phase. We invoke our old dynamic arguments to account for why TGB cannot propagate at a second-order TGB-cholesteric phase transition so it is eventually squeezed out leaving behind a direct cholesteric-A transition.

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References

  1. P. E. Cladis, A. J. Slaney, J. W. Goodby andH. R. Brand:Phys. Rev. Lett.,72, 226 (1994).

    Article  ADS  Google Scholar 

  2. S. R. Renn andT. C. Lubensky:Phys. Rev. A,38, 2132 (1988).

    Article  ADS  Google Scholar 

  3. B. B. Mandelbrot:Fractal Geometry of Nature (Freeman, San Francisco, Cal., 1982).

    Google Scholar 

  4. P. Oswald, J. Bechhoefer, A. Libchaber andF. Lequeux:Phys. Rev. A,36, 5832 (1987).

    Article  ADS  Google Scholar 

  5. P. G. de Gennes:Solid State Commun.,10, 753 (1973).

    Article  Google Scholar 

  6. T. Lubensky:J. Phys. (Paris), Colloq.,36, C1–151 (1975);P. B. Vigman andV. M. Filev:Zh. Eksp. Teor. Fiz.,69, 1466 (1975) (Sov. Phys. JETP,42, 747 (1975)).

    Google Scholar 

  7. J. W. Goodby, M. A. Waugh, S. M. Stein, E. Chin, R. Pindak andJ. S. Patel:J. Am. Chem. Soc.,111, 8119, (1989).

    Article  Google Scholar 

  8. A. J. Slaney: PhD Thesis, University of Hull (1992).

  9. P. E. Cladis:J. Stat. Phys.,62, 899 (1991).

    Article  Google Scholar 

  10. P. E. Cladis, J. T. Gleeson andP. L. Finn:Phys. Rev. A,44, R6173 (1991) and references therein.

    Article  ADS  Google Scholar 

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Cladis, P.E., Slaney, A.J., Goodby, J.W. et al. Pattern formation at the traveling liquid-crystal twist grain boundary-smectic a interface. Il Nuovo Cimento D 16, 765–770 (1994). https://doi.org/10.1007/BF02456722

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  • DOI: https://doi.org/10.1007/BF02456722

PACS 61.30.Eb

PACS 81.20

PACS 01.30.Cc

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