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溶剂化添加剂驱动溶液介导的电化学并增强非水电解液 Li-O₂ 电池中的环型生长。

Solvating additives drive solution-mediated electrochemistry and enhance toroid growth in non-aqueous Li-O₂ batteries.

机构信息

IBM Almaden Research Center, San Jose, California 95120, USA.

1] IBM Almaden Research Center, San Jose, California 95120, USA [2] Department of Chemical and Biomolecular Engineering, University of California, Berkeley, California 94720, USA [3] Environmental Energy Technologies Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720.

出版信息

Nat Chem. 2015 Jan;7(1):50-6. doi: 10.1038/nchem.2132. Epub 2014 Dec 15.

Abstract

Given their high theoretical specific energy, lithium-oxygen batteries have received enormous attention as possible alternatives to current state-of-the-art rechargeable Li-ion batteries. However, the maximum discharge capacity in non-aqueous lithium-oxygen batteries is limited to a small fraction of its theoretical value due to the build-up of insulating lithium peroxide (Li₂O₂), the battery's primary discharge product. The discharge capacity can be increased if Li₂O₂ forms as large toroidal particles rather than as a thin conformal layer. Here, we show that trace amounts of electrolyte additives, such as H₂O, enhance the formation of Li₂O₂ toroids and result in significant improvements in capacity. Our experimental observations and a growth model show that the solvating properties of the additives prompt a solution-based mechanism that is responsible for the growth of Li₂O₂ toroids. We present a general formalism describing an additive's tendency to trigger the solution process, providing a rational design route for electrolytes that afford larger lithium-oxygen battery capacities.

摘要

鉴于其高理论比能量,锂-氧电池作为当前最先进的可充电锂离子电池的替代品而受到极大关注。然而,由于不溶于水的锂-氧电池中的绝缘性过氧化锂(Li₂O₂),即电池的主要放电产物的形成,其最大放电容量被限制在其理论值的一小部分以内。如果 Li₂O₂ 形成大的环形颗粒而不是薄的保形层,则放电容量可以增加。在这里,我们表明痕量的电解质添加剂(例如 H₂O)可以促进 Li₂O₂ 环形物的形成,并导致容量的显著提高。我们的实验观察和生长模型表明,添加剂的溶剂化性质促使溶液基机制负责 Li₂O₂ 环形物的生长。我们提出了一种通用形式主义,用于描述添加剂引发溶液过程的倾向,为提供更大的锂-氧电池容量的电解质提供了合理的设计途径。

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