135Kから245Kまでの超冷却液体の水における可逆構造変化
Loni Kringle1, Wyatt A Thornley1, Bruce D Kay2
1Physical Sciences Division, Pacific Northwest National Laboratory, P.O. Box 999, Richland, WA 99352, USA.
まとめ
研究者はレーザー加熱を用いて 超冷却水の構造を研究した. 発見は逆転可能な構造変化を明らかにし 水の独特の性質の混合モデルを裏付けています
科学分野:
- 物理化学
- 材料科学
背景:
- 水の異常な性質を理解することは 極めて重要ですが 極端な条件下での実験データによって 制限されています
- 超冷却下での水の振る舞いについて 競合する理論が存在する.
研究 の 目的:
- 超冷却水膜の構造変化を一時的な加熱で調査する.
- 競合する水の理論を解決するために必要な温度と圧力のデータを収集する.
主な方法:
- 超冷却された水のフィルムの一時的なレーザー加熱.
- 急速な加熱と,その後70Kの消火.
- 数ナノ秒間の構造進化の分析
主要な成果:
- 水の構造は水晶化前に安定した状態に達した.
- 観察された構造の変化は逆転し,再現可能であった.
- 高温構造モチーフは245Kから190Kの間に減少した.
結論:
- この結果は,超冷却水に対する 2 状態混合モデルと一致しています.
- 構造的動態は超臨界状態での予測と一致する.
- この研究は,水の基本的な性質を理解するための重要なデータを提供します.
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