详细信息
The Polytannic Acid-Fe3+ Functionalized Graphene Oxide in Poly (Propylene Carbonate) Nanocomposite Enables Enhanced Shape Memory, Uv-Resistance and Self-Healing Performance ( EI收录)
文献类型:期刊文献
英文题名:The Polytannic Acid-Fe3+ Functionalized Graphene Oxide in Poly (Propylene Carbonate) Nanocomposite Enables Enhanced Shape Memory, Uv-Resistance and Self-Healing Performance
作者:Ren, Xinqi[1]; Yang, Zhihai[1]; Xie, Zhong[1]; Zuo, Peiyuan[1]; Zhuang, Qixin[1]
机构:[1] Key Laboratory of Special Functional Polymeric Materials and Related Technology [Ministry of Education], School of Materials Science and Engineering, East China University of Science and Technology, Shanghai, 200237, China
年份:2024
外文期刊名:SSRN
收录:EI(收录号:20240040917)
语种:英文
外文关键词:Carbonation - Graphene oxide - Heat resistance - Hydrogen bonds - Polypropylene oxides - Polypropylenes - Propylene - Self-healing materials - Shape optimization - Tensile strength - Wearable technology
摘要:The substrate materials used for human wearable devices need to have shape memory and self-healing properties that can be triggered at human body temperature. Poly (propylene carbonate) (PPC) featuring proper triggering temperature, excellent ductility, as well as biocompatibility, seems as a promising candidate. However, its poor heat resistance and susceptibility of molecular chains to thermal viscous flow usually result into poor shape recovery and difficulty in thermally induced self-healing constrain. To resolve this issue, it is effective to construct physical or chemical cross-links within polymer. Therefore, we introduced tighter network of hydrogen bonds inside the polymer to inhibit the viscous flow of the molecular chains. We prepared an encapsulated structure of poly (tannic acid) (PTA)@graphene oxide (GO) with the help of iron ions to improve the shape memory and interfacial self-healing. Compared with pure PPC, the obtained 5wt% FPTA@GO/PPC composite films exhibited superior shape fixation ratio (99%), human body temperature triggering shape recovery ratio (94%), while maintaining a specific shape at room temperature and returning to its original state in ~10s with heat treatment. Moreover, the prepared materials possessed a self-healing efficiency (81%), enhanced service temperature and increased tensile strength (17.2 Mpa). In addition, the UV absorption capacity of the material was increased by 180% (far and mid-UV regions) and 480% (near-UV region). These advantages show great potentials in developing shape memory, self-healing and UV-resistant substrate materials for human wearable devices. ? 2024, The Authors. All rights reserved.
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