Issue
Korean Journal of Chemical Engineering,
Vol.37, No.7, 1266-1273, 2020
Surface morphologies and wetting properties of layer-by-layer assembled films of polyelectrolytes with bimodal molecular weight distribution
Layer-by-layer (LbL) assembly has been rigorously applied to the construction of superhydrophobic surfaces.Typically, this involves generating a hierarchical porous structure which is then coated with a low surface energy compound. In this study, a porous LbL film was constructed from poly(allylamine hydrochloride) (PAH)/poly(acrylic acid) (PAA) using a PAA solution with a bimodal molecular weight distribution. This solution was prepared by mixing two PAA solutions with different average molecular weights (100,000 and 15,000 g/mol). The mixing ratio was adjusted for fine control of the porous structure, which was induced by acid treatment at pH 2.0-2.4. Generally, surface pore structure was weakened as the 15,000 g/mol PAA ratio increased. However, the surface roughness decreased or increased as the 15,000 g/mol PAA ratio increased depending on the acid treatment pH and time. The porous LbL films were coated with fluorinated silane to make them hydrophobic. When the acid condition was pH 2.4 for 5min, the water contact angle decreased significantly from 132o to minimum of 105o as the amount of 15,000 g/mol PAA increased. However, at pH 2.0 for 5min, the water contact angle decreased smaller from 148o to 139o as the amount of 15,000 g/mol PAA increased.
[References]
  1. Lee H, Alcaraz ML, Rubner MF, Cohen RE, ACS Nano, 7, 2172, 2013
  2. Lu Y, Sathasivam S, Song JL, Crick CR, Carmalt CJ, Parkin IP, Science, 347(6226), 1132, 2015
  3. Jung ZYYC, Bhushan B, J. Phys. Condens. Matter, 22, 03514, 2010
  4. Deng ZY, Wang W, Mao LH, Wang CF, Chen S, J. Mater. Chem. A, 2, 4178, 2014
  5. Isimjan TT, Wang TY, Rohani S, Chem. Eng. J., 210, 182, 2012
  6. Zhang WB, Zhu YZ, Liu X, Wang D, Li JY, Jiang L, Jin J, Angew. Chem.-Int. Edit., 53, 856, 2014
  7. Su B, Tian Y, Jiang L, J. Am. Chem. Soc., 138(6), 1727, 2016
  8. Wang ZX, Elimelech M, Lin SH, Environ. Sci. Technol., 50, 2132, 2016
  9. Si YF, Guo ZG, Nanoscale, 7, 5922, 2015
  10. Liu KS, Tian Y, Jiang L, Prog. Mater. Sci., 58, 503, 2013
  11. Xue CH, Li YR, Zhang P, Ma JZ, Jia ST, ACS Appl. Mater. Interfaces, 6, 10153, 2014
  12. Zheng SL, Li C, Fu QT, Hu W, Xiang TF, Wang Q, Du MP, Liu XC, Chen Z, Mater. Des., 93, 261, 2016
  13. Li M, Zhai J, Liu H, Song YL, Jiang L, Zhu DB, J. Phys. Chem. B, 107(37), 9954, 2003
  14. Shirtcliffe NJ, McHale G, Newton MI, Perry CC, Langmuir, 19(14), 5626, 2003
  15. Zang DM, Zhu RW, Zhang W, Yu XQ, Lin L, Guo XL, Liu MJ, Jiang L, Adv. Funct. Mater., 27, 160544, 2017
  16. Wang XF, Ding B, Yu JY, Wang MR, Nano Today, 6, 510, 2011
  17. Li Y, Li L, Sun JQ, Angew. Chem.-Int. Edit., 49, 6129, 2010
  18. Du X, Liu XM, Chen HM, He JH, J. Phy. Chem. C, 113, 9063, 2009
  19. Brown PS, Bhushan B, Sci. Rep., 5, 8701, 2015
  20. Huang XY, Chrisman JD, Zacharia NS, ACS Macro Lett., 2, 826, 2013
  21. Huang XY, Zacharia NS, J. Appl. Poly. Sci., 132, 42767, 2015
  22. Soeno T, Inokuchi K, Shiratori S, Appl. Surf. Sci., 237(1-4), 543, 2004
  23. Guo XJ, Xue CH, Li M, Li X, Ma JZ, RSC Adv., 7, 25560, 2017
  24. Hwangbo S, Heo J, Lin X, Choi M, Hong J, Sci. Rep., 6, 19178, 2016
  25. Zhang L, Sun JQ, Macromolecules, 43(5), 2413, 2010
  26. Wu MC, An N, Li Y, Sun JQ, Langmuir, 32(47), 12361, 2016
  27. Ji J, Fu JH, Shen JC, Adv. Mater., 18(11), 1441, 2006
  28. Fu JH, Ji J, Shen LY, Kueller A, Rosenhahn A, Shen JC, Grunze M, Langmuir, 25(2), 672, 2009
  29. Liu XK, Dai BY, Zhou L, Sun JQ, J. Mater. Chem., 19, 497, 2009
  30. Buck ME, Schwartz SC, Lynn DM, Chem. Mater., 22, 6319, 2010
  31. Manna U, Broderick AH, Lynn DM, Adv. Mater., 24(31), 4291, 2012
  32. Mendelsohn JD, Barrett CJ, Chan VV, Pal AJ, Mayes AM, Rubner MF, Langmuir, 16(11), 5017, 2000
  33. Hiller J, Mendelsohn JD, Rubner MF, Nat. Mater., 1(1), 59, 2002
  34. Sung C, Ye Y, Lutkenhaus JL, ACS Macro Lett., 4, 353, 2015
  35. Lutkenhaus JL, McEnnis K, Hammond PT, Macromolecules, 41(16), 6047, 2008
  36. Cho CY, Zacharia NS, Langmuir, 28(1), 841, 2012
  37. Chia KK, Rubner MF, Cohen RE, Langmuir, 25(24), 14044, 2009
  38. Zhai L, Cebeci FC, Cohen RE, Rubner MF, Nano Lett., 4, 1349, 2004
  39. Yu J, Han SY, Hong JS, Sanyal O, Lee I, Langmuir, 32(33), 8494, 2016
  40. Sun B, Flessner RM, Saurer EM, Jewell CM, Fredin NJ, Lynn DM, J. Colloid Interface Sci., 355(2), 431, 2011
  41. Chen X, Sun J, Chem.- Asian J., 9, 2063, 2014
  42. Brown PS, Bhushan B, J. Colloid Interface Sci., 456, 210, 2015
  43. Brown PS, Bhushan B, Sci. Rep., 5, 14030, 2015
  44. Yu J, Meharg BM, Lee I, Polymer, 109, 297, 2017
  45. Wang Y, Knapp J, Legere A, Raney J, Li L, RSC Adv., 5, 30570, 2015
  46. Choi H, Liang H, J. Colloid Interface Sci., 477, 176, 2016
  47. Sawada H, Ikematsu Y, Kawase T, Hayakawa Y, Langmuir, 12(15), 3529, 1996
  48. Vaidya A, Chaudhury MK, J. Colloid Interface Sci., 249(1), 235, 2002