Tough, stretchable and compressive alginate-based hydrogels achieved by non-covalent interactions

被引:31
|
作者
Jing, Zhanxin [1 ]
Dai, Xiangyi [1 ]
Xian, Xueying [1 ]
Du, Xiaomei [1 ]
Liao, Mingneng [1 ]
Hong, Pengzhi [1 ]
Li, Yong [1 ]
机构
[1] Guangdong Ocean Univ, Coll Chem & Environm, Zhanjiang 524088, Guangdong, Peoples R China
关键词
DOUBLE-NETWORK HYDROGELS; HYDROPHOBIC ASSOCIATION HYDROGELS; OXIDIZED SODIUM ALGINATE; MECHANICAL STRENGTH; FATIGUE RESISTANCE; ALCOHOL) HYDROGELS; GRAPHENE OXIDE; RELEASE; POLYACRYLAMIDE; STIFFNESS;
D O I
10.1039/d0ra03733h
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this study, two alginate-based hydrogels with good mechanical strength, toughness and resilience were synthesized by hydrophobic interaction and coordination bonding. Sodium alginate/poly(acrylamide) semi-interpenetrating network (NaAlg/PAM semi-IPN) hydrogels were first synthesized through the micelle copolymerization of acrylamide and stearyl methacrylate in the presence of sodium alginate, then calcium alginate/poly(acrylamide) double network (CaAlg/PAM DN) hydrogels were prepared by immersing the as-prepared NaAlg/PAM semi-IPN hydrogels in a CaCl(2)solution. FT-IR and XPS results revealed NaAlg/PAM semi-IPN hydrogels and CaAlg/PAM DN hydrogels were successfully synthesized through non-covalent interactions. The tensile strength of CaAlg/PAM DN hydrogels could reach 733.6 kPa, and their compressive strengths at 80% strain are significantly higher than those of the corresponding NaAlg/PAM semi-IPN hydrogels, which is attributed to the alginate network crosslinked by Ca2+. The dual physically crosslinked CaAlg/PAM DN hydrogels can achieve fast self-recovery, and good fatigue resistance, which is mainly assigned to energy dissipation through dynamic reversible non-covalent interactions in both networks. The self-healing ability, swelling behavior and morphology of the synthesized alginate-based hydrogels were also evaluated. This study offers a new avenue to design and construct hydrogels with high mechanical strength, high toughness and fast self-recovery properties, which broadens the current research and application of hydrogels.
引用
收藏
页码:23592 / 23606
页数:15
相关论文
共 50 条
  • [21] The world of non-covalent interactions:: 2006
    Hobza, P
    Zahradník, R
    Müller-Dethlefs, K
    COLLECTION OF CZECHOSLOVAK CHEMICAL COMMUNICATIONS, 2006, 71 (04) : 443 - 531
  • [22] Non-Covalent Interactions in α- and β-Imidazole Structures
    M. O. Karasev
    I. N. Karaseva
    D. V. Pushkin
    S. V. Kurbatova
    Journal of Structural Chemistry, 2025, 66 (1) : 97 - 107
  • [23] Non-covalent interactions in superatomic crystals
    Shott, Jessica
    Freeman, Matthew
    Saleh, Nemah-Allah
    Jones, Daniel
    Bejger, Christopher
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2017, 253
  • [24] Non-covalent interactions in clathrate complexes
    Lipkowski, Janusz
    Schneider, Hans-Joerg
    JOURNAL OF COORDINATION CHEMISTRY, 2021, 74 (13) : 2128 - 2143
  • [25] Leveraging Non-Covalent Interactions to Control the Morphology and Electrical and Mechanical Properties of Stretchable Semiconducting Composites
    Wang, Yunfei
    Chen, Kai-Lin
    Awada, Angela
    Prine, Nathaniel
    Cao, Zhiqiang
    Zhu, Chenhui
    Chiu, Yu-Cheng
    Rondeau-Gagne, Simon
    Gu, Xiaodan
    CHEMISTRY OF MATERIALS, 2023, 35 (22) : 9713 - 9724
  • [26] Non-Covalent Interactions in Coordination Chemistry
    Kubasov, Alexey S.
    Avdeeva, Varvara V.
    INORGANICS, 2024, 12 (03)
  • [27] Theoretical Investigation on Non-Covalent Interactions
    Novikov, Alexander S.
    CRYSTALS, 2022, 12 (02)
  • [28] Non-covalent interactions in heteroaromatic molecules
    Kundu, Prantik
    Capitani, Joseph F.
    Mitra, Abhijit
    Seaton, Pamela J.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2007, 233
  • [29] The Conversation on Non-Covalent Interactions: an introduction
    Clark, Tim
    Brinck, Tore
    JOURNAL OF MOLECULAR MODELING, 2022, 28 (09)
  • [30] Metalloenzyme Mimics with Non-Covalent Interactions
    Wang Haibo
    Zhao Meng
    Ji Liangnian
    Mao Zongwan
    PROGRESS IN CHEMISTRY, 2013, 25 (04) : 577 - 588