材料科学
锂(药物)
磷酸铁锂
离子
原子单位
电化学
相(物质)
化学物理
分析化学(期刊)
纳米技术
化学
电极
物理化学
物理
医学
有机化学
量子力学
色谱法
内分泌学
作者
Nikola Šimić,Anna Jodlbauer,Michael Oberaigner,Manfred Nachtnebel,Stefan Mitsche,Martin Wilkening,Gerald Kothleitner,Werner Grogger,Daniel Knez,Ilie Hanzu
标识
DOI:10.1002/aenm.202304381
摘要
Abstract Lithium iron phosphate (LiFePO 4 , LFP) serves as a crucial active material in Li‐ion batteries due to its excellent cycle life, safety, eco‐friendliness, and high‐rate performance. Nonetheless, debates persist regarding the atomic‐level mechanisms underlying the electrochemical lithium insertion/extraction process and associated phase transitions. A profound clarity on the fundamental lithium storage mechanisms within LFP is achieved through meticulous scanning transmission electron microscopy (STEM) and selected area electron diffraction (SAED) imaging. This study shows systematical tracking of lithium ions within their respective channels and unveils the phase distribution within individual LFP crystallites not only quantitatively but also at unprecedented atomic‐level resolution. Incontrovertible evidence of the co‐existence of segregated yet only partially lithiated Li x FePO 4 regions in electrochemically delithiated LFP crystals are provided using correlative electron microscopic methods and data analysis. Remarkably, by directly tracing ion transport within lithium channels a diffusion coefficient range (10 −13 –10 −15 cm 2 s −1 ) for correlated lithium ion motion in LFP is estimated and Funke's ion transport jump relaxation model is validated experimentally for the first time. These findings significantly advance the understanding of olivine‐type materials, offering invaluable insights for designing superior battery materials.
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