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具有显著电化学稳定性和宽工作温度窗口的 closo-硼酸盐凝胶聚合物电解质。

Closo-Borate Gel Polymer Electrolyte with Remarkable Electrochemical Stability and a Wide Operating Temperature Window.

机构信息

Department of Chemistry and Biochemistry, California State University Northridge, 18111 Nordhoff St., Northridge, CA, 91330, USA.

Advanced Manufacturing and Energy Science, Savannah River National Laboratory, Aiken, SC, 29803, USA.

出版信息

Adv Sci (Weinh). 2022 May;9(16):e2106032. doi: 10.1002/advs.202106032. Epub 2022 Apr 7.

Abstract

A major challenge in the pursuit of higher-energy-density lithium batteries for carbon-neutral-mobility is electrolyte compatibility with a lithium metal electrode. This study demonstrates the robust and stable nature of a closo-borate based gel polymer electrolyte (GPE), which enables outstanding electrochemical stability and capacity retention upon extensive cycling. The GPE developed herein has an ionic conductivity of 7.3 × 10  S cm at room temperature and stability over a wide temperature range from -35 to 80 °C with a high lithium transference number ( = 0.51). Multinuclear nuclear magnetic resonance and Fourier transform infrared are used to understand the solvation environment and interaction between the GPE components. Density functional theory calculations are leveraged to gain additional insight into the coordination environment and support spectroscopic interpretations. The GPE is also established to be a suitable electrolyte for extended cycling with four different active electrode materials when paired with a lithium metal electrode. The GPE can also be incorporated into a flexible battery that is capable of being cut and still functional. The incorporation of a closo-borate into a gel polymer matrix represents a new direction for enhancing the electrochemical and physical properties of this class of materials.

摘要

对于追求用于碳中和出行的更高能量密度锂电池而言,一个主要挑战是与锂金属电极相兼容的电解质。本研究展示了一种基于笼型硼酸酯的凝胶聚合物电解质(GPE)的坚固和稳定性质,它在广泛的循环中实现了出色的电化学稳定性和容量保持。本文所开发的 GPE 在室温下具有 7.3×10 ² S cm 的离子电导率,并且在-35 至 80°C 的宽温度范围内具有稳定性,同时具有较高的锂离子迁移数(t⁺=0.51)。通过多核核磁共振和傅立叶变换红外光谱来理解 GPE 成分的溶剂化环境和相互作用。利用密度泛函理论计算来深入了解配位环境,并支持光谱解释。当与锂金属电极配对时,GPE 也被确立为与四种不同活性电极材料进行扩展循环的合适电解质。GPE 还可以被整合到柔性电池中,即使被切割也仍然具有功能性。将笼型硼酸酯纳入凝胶聚合物基质中代表了提高这类材料的电化学和物理性质的一个新方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0570/9165492/ee60e9b68cef/ADVS-9-2106032-g007.jpg

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