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Nowadays, self-healing materials have been studied actively in electronics, soft robotics, aerospace, and automobiles because they can prolong the life span of the materials. However, overcoming the trade-off relationship between mechanical properties and self-healing performance is challenging. Herein, graphene oxide-polyaniline (GO-PANI) filler was introduced to overcome this challenge because GO has a highly excellent modulus, and nitrogen atoms in PANI can endow a self-healing ability through hydrogen bonds. Aside from the hydrogen bond in PANI, the hydrogen bond in the carbonyl group and the disulfide exchange bond in the epoxy matrix also helped the materials heal efficiently. Therefore, the modulus of SV-GPN1 (Self-healing Vitrimer-GO-PANI1) reached 770 MPa, and a 65.0% healing efficiency was demonstrated. The modulus and self-healing efficiency were enhanced after adding GO-PANI filler. The self-healing ability, however, deteriorated when adding more GO-PANI filler because it hindered the collision between the molecules. Meanwhile, SV-GPN1 was excellent in reproducibility, which was proven by the experiment that 16.50 mm thick SV-GPN1 also displayed a self-healing ability. Thus, SV-GPN1 can be applied to structural materials in industries like aerospace because of its self-healing ability, excellent modulus, and reproducibility.
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http://dx.doi.org/10.3390/polym16223173 | DOI Listing |
Carbohydr Polym
November 2025
Key Lab of Guangdong Province for High Property and Functional Polymer Materials, School of Materials Science and Engineering, South China University of Technology, Guangzhou 510640, China. Electronic address:
Inspired by spider silk, polyphenolic nanodots (PTa) loaded multi-layer MXene (mMXene-PTa) through hydrogen and coordination bonds was prepared by self-polymerizing tannic acid on mMXene and used as a new crosslinker for polyvinyl alcohol (PVA). Together with starch (ST), mMXene-PTa was compounded with PVA and exfoliated to fabricate PVA/ST/mMXene-PTa nanocomposite. The phenolic hydroxyl groups in PTa formed high-density H-bonds with PVA and ST, creating an organic-inorganic dynamic crosslinking network with mMXene-PTa as nodes.
View Article and Find Full Text PDFACS Nano
September 2025
MOE Key Laboratory of Bio-Intelligent Manufacturing, Dalian Key Laboratory of Artificial Organ and Regenerative Medicine, School of Bioengineering, Dalian University of Technology, Dalian 116024, China.
3D printing of ceramics or glass typically requires sacrificial organic plasticizers and high-temperature sintering, which is time- and cost-consuming, potentially cytotoxic, and may compromise the bioactivity and functionality of the inorganic components. We herein developed purely inorganic self-healing colloidal gels, consisting of electrostatically attractive silica-based hard nanospheres, to enable 3D printing of highly strong inorganic constructs via additive-free and low temperature sintering (LTS) processing. Through cross-scale analysis of the structural and mechanical features, we quantitatively described the constitutive relationship of attractive colloidal gels based on the integration of colloidal assembly theory with experimental characterizations.
View Article and Find Full Text PDFInt J Biol Macromol
September 2025
Department of Chemistry, Faculty of Science, Chiang Mai University, Chiang Mai 50200, Thailand; Bioplastics Production Laboratory for Medical Applications, Faculty of Science, Chiang Mai University, Chiang Mai 50200, Thailand; Center of Excellence in Materials Science and Technology, Chiang Mai Univ
Early osteoarthritis treatment often relies on viscosupplementation via intra-articular injections, which are limited by inflammation risk and poor cartilage restoration. To address these issues, self-healing hydrogels provide a promising alternative because of their ability to recover structure after mechanical stress. This study reports an injectable self-healing hydrogel composed of N-succinyl chitosan (NSC) and hyaluronic dialdehyde (HAD), combined with kartogenin (KGN), synthesized under mild conditions via Schiff base reactions.
View Article and Find Full Text PDFLangmuir
September 2025
College of Chemistry and Chemical Engineering, Southwest Petroleum University, Chengdu, Sichuan 610500, P. R. China.
Self-healing protective coatings, key to anticorrosion and substrate longevity, are a hot topic in materials science. We synthesized a novel self-healing epoxy coating (GPN/EP) by spraying. It is a graphene oxide (GO)/metal-organic framework (PCN-222) epoxy composite with a sodium zinc molybdate (NZM) inhibitor and is applied to steel substrates.
View Article and Find Full Text PDFRSC Adv
August 2025
Department of Chemistry, GITAM School of Science, Gandhi Institute of Technology and Management (GITAM) Deemed to be University Visakhapatnam 530045 Andhra Pradesh India
The hyper-intelligent features of the shape memory polymers (SMPs) effectively attract the attention of researchers worldwide to translate their potential into a wide range of applications. SMPs possess a unique capability to transform original or predefined shapes to a deformed temporary shape and under the influence of stimuli for instance, water, temperature, light, pH, magnetic field, enzyme, The emergence of SMPs has created a prominent impact in the progress of tissue engineering, drug delivery, designing biomedical devices, electrical/optical sensing, 4D printing, designing deployable devices for spacecraft, wastewater treatment, smart fibres for textiles, However, to translate such smart materials for biomedical and material science applications, there is a continuous hunt of novel polymer functional materials and methodologies to make biocompatible, biodegradable, and adaptable (in chemical and physical properties such as, shape fixity, shape recovery, self-healing, and cross-linking ability ) SMPs. The review presents a timely overview of synthesis and diverse applications of functional SMPs in biomedical and material science emphasizing on latest developments and future challenges.
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