Literature DB >> 28422241

Super-tough, ultra-stretchable and strongly compressive hydrogels with core-shell latex particles inducing efficient aggregation of hydrophobic chains.

Xiuyan Ren1, Chang Huang, Lijie Duan, Baijun Liu, Lvjun Bu, Shuang Guan, Jiliang Hou, Huixuan Zhang, Guanghui Gao.   

Abstract

Toughness, strechability and compressibility for hydrogels were ordinarily balanced for their use as mechanically responsive materials. For example, macromolecular microsphere composite hydrogels with chemical crosslinking exhibited excellent compression strength and strechability, but poor tensile stress. Here, a novel strategy for the preparation of a super-tough, ultra-stretchable and strongly compressive hydrogel was proposed by introducing core-shell latex particles (LPs) as crosslinking centers for inducing efficient aggregation of hydrophobic chains. The core-shell LPs always maintained a spherical shape due to the presence of a hard core even by an external force and the soft shell could interact with hydrophobic chains due to hydrophobic interactions. As a result, the hydrogels reinforced by core-shell LPs exhibited not only a high tensile strength of 1.8 MPa and dramatic elongation of over 20 times, but also an excellent compressive performance of 13.5 MPa at a strain of 90%. The Mullins effect was verified for the validity of core-shell LP-reinforced hydrogels by inducing aggregation of hydrophobic chains. The novel strategy strives to provide a better avenue for designing and developing a new generation of hydrophobic association tough hydrogels with excellent mechanical properties.

Year:  2017        PMID: 28422241     DOI: 10.1039/c7sm00415j

Source DB:  PubMed          Journal:  Soft Matter        ISSN: 1744-683X            Impact factor:   3.679


  1 in total

1.  Effect of size of latex particles on the mechanical properties of hydrogels reinforced by latex particles.

Authors:  Li Liu; Guangchao Lv; Xiuyan Ren; Xinhe Li; Te Wang; Jingwen Dong; Zeyu Wang; Guangfeng Wu
Journal:  RSC Adv       Date:  2019-05-13       Impact factor: 4.036

  1 in total

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