Self-healing polymeric materials
Самозаживляющиеся полимерные материалы
2013-01-01
SCID: 54.1/ecmy36nr
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covalent bondingself-healing polymersshape memory polymerssupramolecular assembliesthermodynamic requirements
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Abstract (AI)
Inspired by nature, self-healing materials represent the forefront of recent developments in materials chemistry and engineering. This review outlines the recent advances in the field of self-healing polymers. The first part discusses thermodynamic requirements for self-healing networks in the context of conformation changes that contribute to the Gibbs free energy. The chain flexibility significantly contributes to the entropy changes, whereas the heat of reaction and the external energy input are the main contributors to enthalpy changes. The second part focuses on chemical reactions that lead to self-healing, and the primary classes are the covalent bonding, supramolecular assemblies, ionic interactions, chemo-mechanical self-healing, and shape memory polymers. The third part outlines recent advances using encapsulation, remote self-healing and the role of shape memory polymers. Recent developments in the field of self-healing polymers undeniably indicate that the main challenge will be the designing of high glass transition (Tg) functional materials, which also exhibit stimuli-responsive attributes. Build-in controllable hierarchical heterogeneousness at various length scales capable of remote self-healing by physical and chemical responses will be essential in designing future materials of the 21st century.
Key Findings
1
A main future challenge is designing high glass transition (Tg) functional materials that are stimuli-responsive and possess controllable hierarchical heterogeneousness for remote self-healing.
2
Enthalpy changes in self-healing polymers are primarily determined by heat of reaction and external energy input.
3
Primary chemical mechanisms for self-healing polymers include covalent bonding, supramolecular assemblies, ionic interactions, chemo-mechanical self-healing, and shape memory polymers.
4
Recent advances emphasize encapsulation, remote self-healing techniques, and the functional role of shape memory polymers.
5
Thermodynamic requirements for self-healing networks are governed by conformational changes affecting Gibbs free energy, with chain flexibility driving entropy changes.
Research Object
Self-healing polymeric materials (self-healing polymers)
Research Subject
Mechanisms, thermodynamic requirements, chemical reactions, architectures and design challenges enabling self-healing behavior (including covalent and supramolecular chemistries, ionic interactions, chemo-mechanical and shape-memory mechanisms, encapsulation, remote/self-responsive healing, and Tg-related design considerations)
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2013-01-01
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