Fictitious phase separation in Li layered oxides driven by electro-autocatalysis

自催化 材料科学 锂(药物) 粒子(生态学) 多稳态 人口 电极 电化学 电池(电) 相变 锂离子电池 相(物质) 衍射 化学物理 热力学 化学 动力学 物理化学 非线性系统 物理 人口学 功率(物理) 有机化学 医学 社会学 内分泌学 量子力学 地质学 光学 海洋学
作者
Jungjin Park,Hongbo Zhao,Stephen Dongmin Kang,Ki Moo Lim,Chia‐Chin Chen,Young‐Sang Yu,Richard D. Braatz,David A. Shapiro,Jin Hong,Michael F. Toney,Martin Z. Bazant,William C. Chueh
出处
期刊:Nature Materials [Springer Nature]
卷期号:20 (7): 991-999 被引量:103
标识
DOI:10.1038/s41563-021-00936-1
摘要

Layered oxides widely used as lithium-ion battery electrodes are designed to be cycled under conditions that avoid phase transitions. Although the desired single-phase composition ranges are well established near equilibrium, operando diffraction studies on many-particle porous electrodes have suggested phase separation during delithiation. Notably, the separation is not always observed, and never during lithiation. These anomalies have been attributed to irreversible processes during the first delithiation or reversible concentration-dependent diffusion. However, these explanations are not consistent with all experimental observations such as rate and path dependencies and particle-by-particle lithium concentration changes. Here, we show that the apparent phase separation is a dynamical artefact occurring in a many-particle system driven by autocatalytic electrochemical reactions, that is, an interfacial exchange current that increases with the extent of delithiation. We experimentally validate this population-dynamics model using the single-phase material Lix(Ni1/3Mn1/3Co1/3)O2 (0.5 < x < 1) and demonstrate generality with other transition-metal compositions. Operando diffraction and nanoscale oxidation-state mapping unambiguously prove that this fictitious phase separation is a repeatable non-equilibrium effect. We quantitatively confirm the theory with multiple-datastream-driven model extraction. More generally, our study experimentally demonstrates the control of ensemble stability by electro-autocatalysis, highlighting the importance of population dynamics in battery electrodes (even non-phase-separating ones). Although layered oxides electrodes in lithium-ion batteries are designed under conditions avoiding phase transitions, phase separation during delithiation has been observed. This apparent phase separation is shown to be a dynamical artefact occurring in a many-particle system driven by autocatalytic electrochemical reactions.
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