バッテリー操作中のリチウムイオン電解質の塩分濃度分布をX線相画像を用いて定量的に視覚化
Daiko Takamatsu1, Akio Yoneyama1, Yusuke Asari1
1Research & Development Group, Hitachi, Ltd. , Hitachi-shi, Ibaraki 319-1292, Japan.
Journal of the American Chemical Society
|January 17, 2018
まとめ
リチウムイオン電池の電解質の塩分濃度を操作中に視覚化することが重要です. オペランドX線相画像は,これらの分布を定量的にマッピングし,塩分拡散率を決定するための汎用的な方法を提供します.
科学分野:
- 材料科学
- 電気化学
- 化学工学
背景:
- 最適なリチウムイオン電池の性能は,電解質塩の濃度を理解することに依存しています.
- バッテリー操作中の塩分分布を定量化するための現在の技術は限られている.
研究 の 目的:
- 電解質塩濃度の分布を定量的に視覚化するためのインオペラントX線相画像の能力を実証する.
- 塩分濃度が異なる電解質の塩分拡散率を測定する.
主な方法:
- バッテリー電解質内の動的変化を観察するために,オペラントX線相画像に使用されます.
- 安定状態での塩分濃度分布の定量分析を行った.
主要な成果:
- バッテリー操作中に量的な塩分分布をリアルタイムで視覚化しました.
- 異なる初期塩分濃度を持つ電解質の塩分拡散度を取得した.
結論:
- X線相画像は,様々な電気化学システムにおける電解質の行動を評価するための強力で汎用的な技術である.
- この方法は,サンプル制限なく,水性および水性でない電解質の両方に適用できる高空間および時間解像度を提供します.
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