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Gyroid Nickel Nanostructures from Diblock Copolymer Supramolecules
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超分子コポリマーの未来は,共性コポリメリゼーションを反省することによって明らかになった
Beatrice Adelizzi, Nathan J Van Zee1, Lafayette N J de Windt
1Chimie Moléculaire, Macromoléculaire, et Matériaux, École Supérieure de Physique et de Chimie Industrielles de la Ville de Paris (ESPCI)-CNRS, UMR-7167 , Paris Sciences et Lettres (PSL) Research University , 10 Rue Vauquelin , 75005 Paris , France.
Journal of the American Chemical Society
|March 20, 2019
まとめ
超分子共ポリマーには ダイナミックな機能性がありますが 微細構造を制御することは 依然として困難です この展望は,これらの高度な材料を分析し設計するための原理を概説し,それらを共性共ポリメリ化と比較します.
科学分野:
- 材料科学
- ポリマー化学
背景:
- 超分子共ポリマーは,実証された可能性を持つ新興の材料のクラスです.
- これらの非共性ポリマーは複数の成分を統合し,ダイナミクスを提供し,新しい機能を提供します.
- しかし,その微細構造を正確に制御することは大きな課題です.
研究 の 目的:
- 超分子共聚化の一般的原理を確立する.
- 確立された共性共ポリメリゼーションの概念を使用して,超分子共ポリメリゼーションを分析する.
- 多要素の超分子システムを分類し設計するためのガイドラインを提供すること.
主な方法:
- 超分子および共性共ポリマー化の比較分析.
- 文献のレビューと理論的枠組みの開発
- 分類と設計のガイドラインの描写
主要な成果:
- 超分子共聚化の原理を理解するための枠組みが提案されています.
- 同定性および超分子アプローチの類似点と違いが強調されています.
- 微細構造制御と材料設計のためのガイドラインが提案されています.
結論:
- 協和性および超分子共聚化の間の理解を橋渡しすることは極めて重要です.
- 系統的な分類と分析により 高度な超分子材料の設計が加速されます
- この視点は,多要素の超分子システムにおける将来の研究のための基盤を提供します.
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