Bimodal Nanofiber and Microfiber Nonwovens by Melt-Blowing Immiscible Ternary Polymer Blends

被引:15
|
作者
Jin, Kailong [1 ]
Eyer, Sarah [1 ]
Dean, William [1 ]
Kitto, David [1 ]
Bates, Frank S. [1 ]
Ellison, Christopher J. [1 ]
机构
[1] Univ Minnesota, Dept Chem Engn & Mat Sci, 421 Washington Ave SE, Minneapolis, MN 55455 USA
关键词
FILTRATION PROPERTIES; INTERFACIAL-TENSION; FIBER DIAMETER; MECHANICAL-PROPERTIES; MORPHOLOGY; COMPATIBILIZATION; DISTRIBUTIONS; SCAFFOLD; PHASE; MATS;
D O I
10.1021/acs.iecr.9b04887
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Most nonwoven fiber mats are produced with a uniform, narrow fiber diameter distribution. However, building evidence suggests that a bimodal diameter distribution (i.e., comprised of two populations of fibers, one with a smaller average diameter (d(av)), d, and the other with a larger d(av), D, where D >= 5d), has certain advantages in applications such as filtration media. To the best of our knowledge, all previous reports describing production of bimodal fiber diameter distributions have relied on solution-based electrospinning, a much less common fiber-spinning technique, compared to melt blowing, which currently produces more than 10% of nonwovens globally (an approximately $50 billion market). In this study, we demonstrate a facile method for producing bimodal fiber diameter distributions by melt blowing immiscible ternary polymer blends, with the two minority blend components being randomly dispersed as isolated, bimodally sized particles within the continuous matrix. Such a ternary blend can be obtained by selecting a matrix phase that preferentially wets/encapsulates both dispersed phases having vastly different viscosity ratios. Specifically, two model immiscible ternary blends comprised of polystyrene/polyethylene/Nylon-6 (PS/PE/Nylon) and poly(ethylene oxide)/polyethylene/Nylon-6 (PEO/PE/Nylon) with the desired morphologies and PS or PEO as the matrix were examined. During melt blowing of the blends, the PE minority domains (similar to 8 mu m in diameter) and Nylon minority domains (similar to 70 mu m in diameter) dispersed within the matrix were transformed to PE nanofibers (d(av) approximate to 560 nm) and Nylon microfibers (d(av) approximate to 8 mu m) embedded in the elongated PS matrix fibers, and similarly for fibers made with a PEO matrix. Subsequent removal of the matrix polymer with an appropriate solvent (tetrahydrofuran for PS or water for PEO) produced a macroscopic mat of randomly distributed, bimodal nanofibers and microfibers. The nanofiber and microfiber compositions of the bimodal-diameter fiber mats were effectively tuned by varying the composition of the minority components of the original ternary polymer blends. Interestingly, the resulting bimodal-diameter fiber mats possessed few nanofiber bundles; we hypothesize that this is due to the presence of Nylon microfibers that are intrinsically intermixed among the PE nanofibers that physically restrict the formation of nanofiber bundles. Overall, this versatile method could provide a high-throughput route to scalable quantities of fiber mats with a bimodal distribution of fiber diameters, thus promoting the application of hierarchically structured nonwovens.
引用
收藏
页码:5238 / 5246
页数:9
相关论文
共 47 条
  • [31] Interaction of Domains in Ternary Polymer Melt Blends with Separate Dispersions of the Inner Phases
    Letuchii, Michail A.
    Miroshnikov, Yuri P.
    [J]. JOURNAL OF MACROMOLECULAR SCIENCE PART B-PHYSICS, 2015, 54 (04): : 433 - 449
  • [32] The early stage of the morphology development of immiscible polymer blends during melt blending: Compatibilized vs. uncompatibilized blends
    Li, HX
    Hu, GH
    [J]. JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 2001, 39 (05) : 601 - 610
  • [33] In Situ Measure of Interfacial Tensions in Ternary and Quaternary Immiscible Polymer Blends Demonstrating Partial Wetting
    Virgilio, Nick
    Desjardins, Patrick
    L'Esperance, Gilles
    Favis, Basil D.
    [J]. MACROMOLECULES, 2009, 42 (19) : 7518 - 7529
  • [34] Preparation of polyester nanofibers and nanofiber yarns from polyester/cellulose acetate butyrate immiscible polymer blends
    Li, Mufang
    Xiao, Ru
    Sun, Gang
    [J]. JOURNAL OF APPLIED POLYMER SCIENCE, 2012, 124 (01): : 28 - 36
  • [35] Reactive splicing compatibilization of immiscible polymer blends: Compatibilizer synthesis in the melt state and compatibilizer architecture effects
    Wei, Bin
    Lin, Qingqing
    Zheng, Xin
    Gu, Xiaoying
    Zhao, Li
    Li, Jianchun
    Li, Yongjin
    [J]. POLYMER, 2019, 185
  • [36] Influence of segmental swelling of an asymmetric block copolymer on the morphology of melt-mixed immiscible polymer blends
    Kim, JR
    Hudson, SD
    Jamieson, AM
    Manas-Zloczower, I
    Ishida, H
    [J]. POLYMER, 2000, 41 (26) : 9163 - 9168
  • [37] Immiscible Polymer Blends Made from Industrial Shredder Residue Mixed Plastic with and without Melt Blending
    Singkronart, Kanjanawadee
    Virkajarvi, Jussi
    Salminen, Kristian
    Shamsuddin, Siti Ros
    Lee, Koon-Yang
    [J]. ACS APPLIED POLYMER MATERIALS, 2024, 6 (11): : 6252 - 6261
  • [38] Influence of polymer structure on melt miscibility of ternary polymer blends: A model for high performance polyurethane adhesives and coatings
    Duffy, DJ
    Heintz, AM
    Stidham, HD
    Hsu, SL
    Suen, W
    Chu, W
    Paul, CW
    [J]. JOURNAL OF ADHESION, 2003, 79 (11): : 1091 - 1107
  • [39] Influence of segmental swelling ratio of a symmetric block copolymer on the morphology of melt-mixed immiscible polymer blends
    Kim, JR
    Jamieson, AM
    Hudson, SD
    Manas-Zloczower, I
    Ishida, H
    [J]. MACROMOLECULES, 1999, 32 (14) : 4582 - 4587
  • [40] Percolation Thresholds in Ternary Polymer Melt Blends with Separate Dispersions of the Inner Phases: Mathematical Model
    Letuchii, Michail A.
    Klepper, Lev Y.
    Miroshnikov, Yuri P.
    [J]. JOURNAL OF MACROMOLECULAR SCIENCE PART B-PHYSICS, 2015, 54 (04): : 393 - 400