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Statistical model for self-assembly of trimesic acid molecules into homologous series of flower phases

A. Ibenskas and E. E. Tornau*

  • Semiconductor Physics Institute, Center for Physical Sciences and Technology, A. Goštauto 11, LT-01108, Vilnius, Lithuania

  • *et@et.pfi.lt

Phys. Rev. E 86, 051118 – Published 16 November, 2012

DOI: https://doi.org/10.1103/PhysRevE.86.051118

Abstract

The statistical three-state model is proposed to describe the ordering of triangular TMA molecules into flower phases. The model is solved on a rescaled triangular lattice, assuming following intermolecular interactions: exclusion of any molecules on nearest neighbor sites, triangular trio H-bonding interactions for molecules of the same orientation on next-nearest neighbor sites, and dimeric H-bonding interactions for molecules of different (“tip-to-tip”) orientations on third-nearest neighbor sites. The model allows us to obtain the analytical solution for the ground state phase diagram with all homologous series of flower phases included, starting with the honeycomb phase (n=1) and ending with the superflower structure (n=). Monte Carlo simulations are used to obtain the thermodynamical properties of this model. It is found that phase transitions from disordered to any of the flower phases (except n=1) undergo via intermediate correlated triangular domains structure. The transition from the disordered phase to the intermediate phase is, most likely, of the first order, while the transition from the intermediate to the flower phase is definitely first order phase transition. The phase diagrams including low-temperature flower phases are obtained. The origin of the intermediate phase, phase separation, and metastable structures are discussed.

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References (47)

  1. Y. L. Huang, W. Chen, H. Li, J. Ma, J. Pflaum, and A. T. S. Wee, Small 6, 70 (2010).
  2. L. Bartels, Nature Chem. 2, 87 (2010).
  3. S. M. Lindsay and M. A. Ratner, Adv. Mater. 19, 23 (2007).
  4. Z. Liu, A. A. Yasseri, J. S. Lindsey, and D. F. Bocian, Science 302, 1543 (2003).
  5. J. E. Green, J. W. Choi, A. Boukai, Y. Bunimovich, E. Johnston-Halperin, E. DeIonno, Y. Luo, B. A. Sheriff, K. Xu, Y. S. Shin, H.-R. Tseng, J. F. Stoddart, and J. R. Heath, Nature (London) 445, 414 (2007).
  6. T. Kondo and K. Uosaki, J. Photochem. Photobiol. C: Photochem. Rev. 8, 1 (2007).
  7. M. S. Kang, S. H. Kang, H. Ma, K.-S. Kim, and Alex K.-Y. Jen, J. Power Sources 160, 711 (2006).
  8. F. I. Bohrer, C. N. Colesniuc, J. Park, M. E. Ruidiaz, I. K. Schuller, A. C. Kummel, and W. C. Trogler, J. Am. Chem. Soc. 131, 478 (2009).
  9. S. P. Jiang, L. Li, Z. Liu, M. Pan, and H. L. Tang, Electrochem. Solid State Lett. 8, A574 (2005).
  10. B. Bhushan, Philos. Trans. R. Soc. 366, 1499 (2008).
  11. E. Ostuni, L. Yan, and G. M. Whitesides, Colloids Surfaces B 15, 3 (1999).
  12. M. Kind and C. Woell, Prog. Surf. Sci. 84, 230 (2009).
  13. S. Stepanow, M. Lingenfelder, A. Dmitriev, H. Spillmann, E. Delvigne, N. Lin, X. Deng, C. Cai, J. V. Barth, and K. Kern, Nature Mat. 3, 229 (2004).
  14. J. M. MacLeod, O. Ivasenko, D. F. Perepichka, and F. Rosei, Nanotechnology 18, 424031 (2007).
  15. S. Berner, M. de Wild, L. Ramoino, S. Ivan, A. Baratoff, H.-J. Guentherodt, H. Suzuki, D. Schlettwein, and T. A. Jung, Phys. Rev. B 68, 115410 (2003).
  16. V. Petrauskas, S. Lapinskas, and E. E. Tornau, J. Chem. Phys. 120, 11815 (2004).
  17. M. A. Osipov and J. Stelzer, Phys. Rev. E 67, 061707 (2003).
  18. G. Pawin, K. L. Wong, K.-Y. Kwon, and L. Bartels, Science 313, 961 (2006).
  19. M. O. Blunt, J. C. Russell, M. del Carmen Giménez-López, J. P. Garrahan, X. Lin, M. Schroeder, N. R. Champness, and P. H. Beton, Science 322, 1077 (2008).
  20. U. K. Weber, V. M. Burlakov, L. M. A. Perdigao, R. H. J. Fawcett, P. H. Beton, N. R. Champness, J. H. Jefferson, G. A. D. Briggs, and D. G. Pettifor, Phys. Rev. Lett. 100, 156101 (2008).
  21. S. Griessl, M. Lackinger, M. Edelwirth, M. Hietschold, and W. M. Heckl, Single Mol. 3, 25 (2002).
  22. M. Lackinger, S. Griessl, W. M. Heckl, M. Hietschold, and G. W. Flynn, Langmuir 21, 4984 (2005).
  23. K. G. Nath, O. Ivasenko, J. M. MacLeod, J. A. Miwa, J. D. Wuest, A. Nanci, D. F. Perepichka, and F. Rosei, J. Phys. Chem. C 111, 16996 (2007).
  24. N. T. N. Ha, T. G. Gopakumar, R. Gutzler, M. Lackinger, H. Tang, and M. Hietschold, J. Phys. Chem. C 114, 3531 (2010).
  25. T. Classen, M. Lingenfelder, Y. Wang, R. Chopra, C. Virojanadara, U. Starke, G. Costantini, G. Fratesi, S. Fabris, S. de Gironcoli, S. Baroni, S. Haq, R. Raval, and K. Kern, J. Phys. Chem. A 111, 12589 (2007).
  26. A. Dmitriev, N. Lin, J. Weckesser, J. V. Barth, and K. Kern, J. Phys. Chem. B 106, 6907 (2002).
  27. Z. Li, B. Han, L. J. Wan, and T. Wandlowski, Langmuir 21, 6915 (2005).
  28. Y. C. Ye, W. Sun, Y. F. Wang, X. Shao, X. G. Xu, F. Cheng, J. L. Li, and K. Wu, J. Phys. Chem. C 111, 10138 (2007).
  29. P. Pasini, C. Chiccoli, and C. Zannoni, Advances in the Computer Simulation of Liquid Crystals (Kluwer, Dordecht, 2000).
  30. K. Binder and W. Paul, Macromolecules 41, 4537 (2008).
  31. J. Higo, S. Endo, and K. Nagayama, Chem. Phys. Lett. 198, 300 (1992).
  32. A. Šarlah, E. Frey, and T. Franosch, Phys. Rev E 75, 021402 (2007); A. Šarlah, T. Franosch, and E. Frey, Phys. Rev Lett. 95, 088302 (2005).
  33. E. Bianchi, J. Largo, P. Tartaglia, E. Zaccarelli, and F. Sciortino, Phys. Rev. Lett. 97, 168301 (2006).
  34. S. Fortuna, D. L. Cheung, and A. Troisi, J. Phys. Chem. B 114, 1849 (2010).
  35. T. Misiūnas and E. E. Tornau, J. Phys. Chem. B 116, 2472 (2012).
  36. M. Korth, J. Chem. Theory Comput. 6, 3808 (2010).
  37. V. Petrauskas (private communication).
  38. M. S. S. Challa, D. P. Landau, and K. Binder, Phys. Rev. B 34, 1841 (1986).
  39. J. Lee and J. M. Kosterlitz, Phys. Rev. B 43, 3265 (1991).
  40. S. Sinha and S. K. Roy, Phys. Rev. E 81, 022102 (2010).
  41. R. Kikuchi, Phys. Rev. 81, 988 (1951); J. Chem. Phys. 19, 1230 (1951).
  42. T. Morita, J. Phys. Soc. Jpn. 12, 753 (1957).
  43. V. Zubkus and S. Lapinskas, J. Phys. Cond. Matter 2, 1753 (1990).
  44. V. E. Zubkus, E. E. Tornau, S. Lapinskas, and P. J. Kundrotas, Phys. Rev. B 43, 13112 (1991).
  45. G. Grigelionis, S. Lapinskas, A. Rosengren, and E. E. Tornau, Physica C 242, 183 (1995).
  46. F. Y. Wu, Rev. Mod. Phys. 54, 235 (1982).
  47. W. Kinzel, W. Selke, and F. Y. Wu, J. Phys. A 14, L399 (1981).

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