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Cross-linked poly(ε-caprolactone) (PCL)-based polyesterurethane (PUR) systems have been synthesized through Diels-Alder reactions by reactive extrusion. The Diels-Alder and retro-Diels-Alder reactions proved to be useful for enhancing the molecular motion of PCL-based systems, and therefore their crystallization ability, in the design of cross-linked semicrystalline polymers with one-way and two-way shape-memory properties. Successive reactions between α,ω-diol PCL (PCL(2) ), furfuryl alcohol, and methylene diphenyl 4,4'-diisocyanate straightforwardly afforded the α,ω-furfuryl PCL-based PUR systems, and subsequent Diels-Alder reactions with N,N-phenylenedimaleimide afforded the thermoreversible cycloadducts. The cross-linking density could be modulated by partially replacing PCL-diol with PCL-tetraol. Interestingly, the resulting PUR systems proved to be semicrystalline cross-linked polymers, the melting temperature of which (close to 45 °C) represented the switching temperature for their shape-memory properties. Qualitative and quantitative measurements demonstrated that these PUR systems exhibited one-way and two-way shape-memory properties depending on their cross-linking density.
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http://dx.doi.org/10.1002/chem.201100496 | DOI Listing |
ACS Appl Mater Interfaces
September 2025
Department of Mechanical & Industrial Engineering, Louisiana State University, Baton Rouge, Louisiana 70803, United States.
With the rapid advancement in autonomous vehicles, 5G and future 6G communications, medical imaging, spacecraft, and stealth fighter jets, the frequency range of electromagnetic waves continues to expand, making electromagnetic interference (EMI) shielding a critical challenge for ensuring the safe operation of equipment. Although some existing EMI shielding materials offer lightweight construction, high strength, and effective shielding, they struggle to efficiently absorb broadband electromagnetic waves and mitigate dimensional instability and thermal stress caused by temperature fluctuations. These limitations significantly reduce their service life and restrict their practical applications.
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.
View Article and Find Full Text PDFAdv Healthc Mater
September 2025
College of Biological Science and Medical Engineering, Donghua University, Shanghai, 201620, China.
To balance the requirement of high mechanical properties and convenient injectability for the hydrogel design of osteoporotic bone defects (OBD) repair, a hierarchical hydrogel stiffening strategy is proposed through the synergetic utilizing of rapidly formed dynamic hydrazone crosslinking, high-strength double-bond chemical crosslinking, and contraction of activated shape-memory short fibers (SMSFs). In detail, the Schiff Base reaction mediated first network enabled stable precursor retention at the injection site without compromising injectability. Subsequent radical polymerization by photocrosslinking enhanced the hydrogel stiffness from 9.
View Article and Find Full Text PDFBioact Mater
December 2025
Department of Radiology, The First Hospital of Jilin University, Changchun, 130021, Jilin, PR China.
Shape memory hydrogels (SMHs) have emerged as transformative materials in tissue engineering, owing to their unique ability to recover their original shape after deformation. These hydrogels combine hydrophilicity and elasticity with shape memory capabilities, making them ideal candidates for various biomedical applications. This review examines their innovative design and synthesis, highlighting the physical and biological characteristics that make them well-suited for tissue engineering, such as mechanical properties, biocompatibility, and biodegradability.
View Article and Find Full Text PDFACS Omega
August 2025
Department of Chemistry, Istanbul Technical University, Maslak, Istanbul 34469, Turkey.
Organohydrogels (OHGs) are a class of soft materials with a biphasic structure consisting of hydrophilic and hydrophobic domains that interact with both water and organic solvents. This gives them unique properties and various applications, e.g.
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