コクリスタルの酸・アミド・超分子合成:スペクトル検知からプロパティ・エンジニアリングまで
Subhankar Saha1, Gautam R Desiraju1
1Solid State and Structural Chemistry Unit , Indian Institute of Science , Bangalore 560 012 , India.
Journal of the American Chemical Society
|April 27, 2018
まとめ
この研究は,赤外線光譜を用いてコクリスタルの酸・アミド・ジマー異合成を特定する. 強い酸と強い塩基の組み合わせ (象限I) は,予測可能な変形性結晶を生み出し,分子構造から性質の予測を可能にします.
科学分野:
- 超分子化学
- クリスタル工学
- 材料科学
背景:
- 酸・アミド・ジマー・ヘテロシントンはコクリスタル形成の鍵となる.
- 水素結合,特にO-H·Oは,ヘテロダイマー組成を駆動する.
研究 の 目的:
- 酸・アミド・ジマー・ヘテロシントンの識別と特徴づけ
- 分子特性とコクリスタルの形成の関係を探求する.
- 結晶の構造と 機械的性質を相関させるため
主な方法:
- シントン識別のための赤外線 (IR) スペクトロスコーピー.
- 組み合わせ結晶検査 (36回の試行)
- 酸塩の組み合わせを4つの象限に分類する.
主要な成果:
- 22個のコクリスタルが 合成されました
- 象限I (強い酸-強い塩基) 主に形成された平面酸・アミドヘテロジマー.
- クアッドラントIの結晶は,他のクアッドラント (14%) に比べて,かなり高い変形性を示した.
結論:
- 分子特性,特に酸性と塩基性は,超分子組成と結晶の性質を決定する.
- クアドラントIのコクリスタルは,工学的に切れる,弾性のある材料に適しています.
- コクリスタルの機械的性質を予測することは,構成要素である分子構造に基づいて可能である.
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