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Nuclear magnetic resonance spectroscopy of rechargeable pouch cell batteries: beating the skin depth by excitation and detection via the casing

机译:可充电袋电池的核磁共振光谱:通过壳体通过激励和检测击打皮肤深度

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Rechargeable batteries are notoriously difficult to examine nondestructively, and the obscurity of many failure modes provides a strong motivation for developing efficient and detailed diagnostic techniques that can provide information during realistic operating conditions. In-situ NMR spectroscopy has become a powerful technique for the study of electrochemical processes, but has mostly been limited to laboratory cells. One significant challenge to applying this method to commercial cells has been that the radiofrequency, required for NMR excitation and detection, cannot easily penetrate the battery casing due to the skin depth. This complication has limited such studies to special research cell designs or to ‘inside-out’ measurement approaches. This article demonstrates that it is possible to use the battery cell as a resonator in a tuned circuit, thereby allowing signals to be excited inside the cell, and for them to subsequently be detected via the resonant circuit. Employing this approach, 7Li NMR signals from the electrolyte, as well as from intercalated and plated metallic lithium in a multilayer (rolled) commercial pouch cell battery were obtained. Therefore, it is anticipated that critical nondestructive device characterization can be performed with this technique in realistic and even commercial cell designs.
机译:可充电电池难以破坏性地难以检查,许多故障模式的默默无闻提供了开发有效和详细的诊断技术,可以在现实操作条件下提供信息。原位NMR光谱已成为研究电化学过程的强大技术,但大多数限于实验室细胞。将这种方法应用于商业电池的一个重大挑战是NMR激励和检测所需的射频不能容易地穿透电池外壳由于皮肤深度。这种并发症有限于特殊研究细胞设计或“内外”测量方法的研究。本文表明,可以将电池单元用作调谐电路中的谐振器,从而允许在电池内部振兴信号,并随后通过谐振电路检测它们。采用该方法,获得来自电解质的7LI NMR信号,以及来自多层(轧制的商业袋电池电池中的嵌入和电镀金属锂。因此,预计可以在现实甚至商业细胞设计中利用这种技术进行关键的非破坏性装置表征。

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