Aug 2026· ACS Applied Polymer Materials· Vol 8, pp. 13537 - 13555· 0 citations· 44 references
Medicine
Abstract
Novel dual interpenetrating epoxy networks (IPNs) with highly promising self-healing and electroinsulating properties were synthesized and systematically optimized. These systems display healing of microcracks and electrical tree damage. Their structure consists of a permanent epoxy-amine subnetwork (EP) interpenetrated with a reversible epoxy network (DA), the latter being cross-linked via Diels–Alder chemistry, through the reaction of maleimide and furan groups. The DA subnetwork provides excellent thermally triggered self-healing, while the permanent EP network ensures shape stability throughout the healing process. Although damage to the permanent EP subnetwork cannot be reversed, the mechanical and tensile properties of disrupted specimens are almost completely recovered after thermal healing. Both subnetworks incorporate flexible linear poly(propylene oxide) (PPO) segments of different molecular weights (230, 400, and 2000 g/mol). Increasing the PPO chain length significantly reduces the glass transition temperature and the rubbery modulus, while also slightly decreasing the dissociation temperature of the reversible DA subnetwork. Synthesis and healing conditions were carefully designed to suppress undesired internetwork cross-linking side reactions, thereby preserving the reversibility of the DA bonds over repeated healing cycles. The effectiveness of this strategy was confirmed by cyclic thermal analyses and tensile tests conducted on promising healed specimens. Dielectric analysis was performed to assess the suitability of the developed IPNs for use in electrical insulation applications. The highest self-healing efficiency was achieved for the IPN containing the longest PPO chains, whereas the best dielectric insulating performance was observed for the shortest PPO chains. The IPN containing PPO chains with a molecular weight of 400 g/mol provided the best balance between self-healing capability and electroinsulating performance, making it the most promising candidate for self-healing electrical insulation applications.
The rapid growth of modern electronics and 5G communication has created a strong demand for flexible electromagnetic interference (EMI) shielding materials; however, achieving high shielding effectiveness in polymer composites typically requires large amounts of conductive fillers, often at the severe cost of mechani...
Yang Luo, Wen-Yu Wan, Pengcheng Deng et al.· ACS Applied Polymer Material...· 0 citations
This work demonstrates the physicochemical property changes of composite thermoset elastomers prepared by incorporating mechanically and thermally stable polyimide (PI) into vulcanized acrylonitrile butadiene rubber (NBR) through a semi-interpenetrating polymer network (semi-IPN). Conventional NBR base materials and fi...
Sunhyeong Kwon, Ji Min Kim, Geun-Su Park et al.· Polymers· 0 citations
Introducing dynamic covalent networks into conventional ethylene-propylene-diene monomer (EPDM) rubber offers a promising strategy for developing thermally reprocessable elastomers; however, it requires the introduction of reactive functionalities onto the chemically inert hydrocarbon backbone. Herein, ketone-functio...
Chen-Ru Tian, Gang-Gang Zhang, Xi Zhang et al.· ACS Applied Polymer Material...· 0 citations
The booming development of flexible electronics urgently calls for flexible conductive materials with outstanding mechanical strength, desirable elastic recovery, and reliable conductivity. Herein, a UV-curable polyacrylate conductive composite film (polyacrylate-AA-ChCl, PAAC) is rationally designed, featuring enhance...
Jia Si, Cui-Cui Li, Yun Wei et al.· ACS Applied Materials and In...· 0 citations
Vitrimers are a new class of polymers that contain a covalent adaptable network where molecular bonds can be exchanged and reformed when heated above its Tv, providing them with stress relaxation, self-healing and reshaping abilities, which traditional thermosets lack. Herein, MoS2 and WS2 were used as nanofillers to f...
Shen-Zhi Shen, C. Vallés· 2D Materials· 0 citations
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