Laponite-Doped Poly(acrylic acid-co-acrylamide) Hydrogels

被引:5
|
作者
Wu, Jiyuan [1 ]
Hill, Reghan J. [1 ]
机构
[1] McGill Univ, Dept Chem Engn, Montreal, PQ H3A 0C5, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
hydrogel nanocomposites; Laponite nanoparticles; polyacrylamide hydrogels; poly(acrylic acid) hydrogels; electroacoustic spectroscopy; electrokinetic sonic amplitude; dynamic mobility; NANOCOMPOSITE HYDROGELS; DRUG-DELIVERY; CLAY; POLY(N-ISOPROPYLACRYLAMIDE); COMPOSITE; TOUGH; GEL;
D O I
10.1021/acsapm.2c00798
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Electroacoustic characterization of soft nanocomposites has provided unique insights into the microstructure of soft nanocomposites, including nanoparticle (NP)-doped hydrogels and polyelectrolyte hydrogels without NPs. An outstanding problem is how to interpret the electrokinetic sonic amplitude (ESA) of charged hydrogels bearing charged NPs because both components generate an acoustic response to the electrical forcing. To this end, we study a series of Laponite XLG-doped, neutralized poly(acrylic acid-co-acrylamide) hydrogels, drawing principally on the ESA, electrical conductivity, and linear viscoelastic rheology. The hydrogel charge density was varied by the fraction of acrylic acid monomer f(AAc) = 0-1 while maintaining the total monomer concentration & AP;8 wt % with Laponite concentration & AP;0.85 wt %. Upon comparison of data from this study to those in a recent benchmark study of charged hydrogels without NPs, Laponite doping increased the electroacoustic signal and ionic conductivity but decreased the hydrogel storage modulus. Mechanistic theoretical models predicting how the real part of the ESA (at low frequency) and ionic conductivity of polyelectrolyte hydrogels depend on f(AAc) were extended to Laponite-doped hydrogels, together furnishing an estimate of the partial molar volume of acrylamide (in polymer form) that is close to the value for pure acrylamide (based on its density and molecular weight). The generally lower storage modulus with Laponite doping contrasts with previous studies of Laponite-doped polyacrylamide and poly(acrylic acid) hydrogels and solutions. This seems to reflect the high degree of neutralization, which transforms an attraction between protonated carboxyl moieties and Laponite to an electrostatic repulsion. The hindering effects of polymerization and cross-linking on acrylic acid-co-acrylamide networks were also investigated by comparing the ESA and conductivity of hydrogels with their monomer solution counterparts. Systematically varying the ratio of charged to uncharged monomers, with and without chemical cross-linking, provides insights to benefit a broad range of technological applications for hydrogel nanocomposites.
引用
收藏
页码:5927 / 5940
页数:14
相关论文
共 50 条
  • [41] Preparation of poly(acrylic acid-co-acrylamide)/kaolin and release kinetics of urea from it
    Liang, Rui
    Liu, Mingzhu
    Journal of Applied Polymer Science, 2007, 106 (05): : 3007 - 3015
  • [42] Nanodroplets of polyisoprene fluid contained within poly(acrylic acid-co-acrylamide) shells
    Huang, HY
    Kowalewski, T
    Wooley, KL
    JOURNAL OF POLYMER SCIENCE PART A-POLYMER CHEMISTRY, 2003, 41 (11) : 1659 - 1668
  • [43] Synthesis and response of pineapple peel carboxymethyl cellulose-g-poly (acrylic acid-co-acrylamide)/graphene oxide hydrogels
    Dai, Hongjie
    Zhang, Yuhao
    Ma, Liang
    Zhang, Huan
    Huang, Huihua
    CARBOHYDRATE POLYMERS, 2019, 215 : 366 - 376
  • [44] Physicomechanical Characterization of Poly(acrylic acid-co-acrylamide) Hydrogels Reinforced with TEMPO-oxidized Blue Agave Cellulose Nanofibers
    Lizeth Martinez-Salcedo, Silvia
    Guillermo Torres-Rendon, Jose
    Garcia-Enriquez, Salvador
    Anzaldo-Hernandez, Jose
    Antonio Silva-Guzman, Jose
    Bolzon de Muniz, Graciela, I
    Guadalupe Lomeli-Ramirez, Maria
    FIBERS AND POLYMERS, 2022, 23 (05) : 1161 - 1170
  • [45] Synthesis of covalently crosslinked attapulgite/poly (acrylic acid-co-acrylamide) nanocomposite hydrogels and their evaluation as adsorbent for heavy metal ions
    Liu, Peng
    Jiang, Liping
    Zhu, Longxiang
    Guo, Jinshan
    Wang, Aiqin
    JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2015, 23 : 188 - 193
  • [46] Borohydride Reduction of Ag+ in Aqueous Poly(acrylic acid-co-acrylamide) Solutions
    Buikliskii, V. D.
    Levchenko, V. F.
    Popov, F. A.
    Sheremet, M. Yu
    COLLOID JOURNAL, 2012, 74 (01) : 7 - 11
  • [47] Preparation of poly(acrylic acid-co-acrylamide)/kaolin and release kinetics of urea from it
    Liang, Rui
    Liu, Mingzhu
    JOURNAL OF APPLIED POLYMER SCIENCE, 2007, 106 (05) : 3007 - 3015
  • [48] Preparation of biodegradable gelatin-g-poly (acrylic acid-co-acrylamide) superabsorbent
    Dong, Fen-Qiang
    Cui, Ying-De
    Hu, Jun-Chu
    He, Chun-Lin
    Li, Ni-Ni
    Xiandai Huagong/Modern Chemical Industry, 2007, 27 (11): : 48 - 50
  • [49] Physicomechanical Characterization of Poly(acrylic acid-co-acrylamide) Hydrogels Reinforced with TEMPO-oxidized Blue Agave Cellulose Nanofibers
    Silvia Lizeth Martínez-Salcedo
    José Guillermo Torres-Rendón
    Salvador García-Enriquez
    José Anzaldo-Hernández
    José Antonio Silva-Guzmán
    Graciela I. Bolzon de Muniz
    María Guadalupe Lomelí-Ramírez
    Fibers and Polymers, 2022, 23 : 1161 - 1170
  • [50] Effect of enzymatic degradation of poly-L-lysine in poly(acrylic acid-co-acrylamide) microgels
    Mansson, Ronja
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2012, 244