ナノリットルスケールの水中油滴における濃縮濃縮,分離,カチオン交換
Sungu Kim1,2, Baskar Ganapathysubramanian2, Robbyn K Anand1
1Department of Chemistry , Iowa State University , 1605 Gilman Hall, 2415 Osborn Drive , Ames , Iowa 50011-1021 , United States.
Journal of the American Chemical Society
|January 18, 2020
まとめ
電子動力学的濃度偏振は,マイクロ流体中での濃度の急速な濃縮と分離を可能にします. この突破は化学反応と バイオアッセイを向上させ 先進的なドロップレット技術への道を切り開きます
科学分野:
- 化学について
- マイクロ流体
- バイオテクノロジー
背景:
- ドロップレットベースのマイクロフリウジックは,小さな量で高速で並行した反応を可能にします.
- ドロップレット内濃度の濃縮は反応速度と測定感度にとって極めて重要ですが,依然として課題です.
研究 の 目的:
- 電動現象を用いたドロップレット濃度の濃縮と分離の方法を開発する.
- ドロップレット微流体と電動的濃度偏振の統合を実証する.
主な方法:
- ドロップレット微流体と電動的濃度の分極を接点にする.
- 濃縮と分離のために電荷を積んだ種を用いる.
- カルシウム結合染料を用いて,カチオン交換を証明する.
主要な成果:
- 素早く (数秒で) 強固なドロップレットの脱混合と濃度濃縮を達成した.
- ドロップレット内の2つのアニオン型フッ素素の電動分離が実証された.
- カルシウム結合染料を用いてカチオン交換を成功させた.
結論:
- ドロップレット操作の強力なツールです.
- この技術は,ドロップレットテンプレート合成,グラデント粒子の形成,および高度なバイオアッセイに広く適用できます.
- 開発された方法は,新しいドロップレットマイクロ流体アプリケーションの基礎を築いています.
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