{"title":"超高容量剥离/电镀过程中锂金属微观组织的时间演化","authors":"Arghya Dutta, Yoshimi Kubo","doi":"10.1002/advs.202506474","DOIUrl":null,"url":null,"abstract":"<p>The morphology of deposited lithium (Li) is critical to the stability and reversibility of Li-metal batteries (LMBs). While crystallographic features of Li influence deposition morphology, the orientation of Li crystals during electrodeposition and their temporal evolution under varying kinetic and interphasial conditions remain unclear. This study investigates Li microstructures during electrodeposition at ultra-high capacities (up to 12 mAh cm⁻<sup>2</sup>) and over repeated cycling, using scanning electron microscopy (SEM) and electron backscatter diffraction (EBSD). The results show that the microstructural evolution of Li depends on the interplay between interphasial properties and deposition kinetics. A layer-by-layer epitaxial Li growth with a coherent lattice orientation is achievable under homogeneous interphase and slow deposition kinetics. However, at higher capacities or extended cycling, deterioration of interphase homogeneity disrupts crystal matching, resulting in island-like deposits with randomly oriented single-crystalline grains. In contrast, an inhomogeneous interphase and faster kinetics lead to whisker-like Li deposits. These results demonstrate that while cohesive interactions between depositing Li crystals can result in isolated single-crystalline grains, maintaining interphase homogeneity and stability is essential to enable coherent lattice matching for layer-by-layer epitaxial growth. This study reveals Li microstructural evolution and offers insights for designing stable interphases and optimizing conditions for durable, high-capacity LMBs.</p>","PeriodicalId":117,"journal":{"name":"Advanced Science","volume":"12 33","pages":""},"PeriodicalIF":14.1000,"publicationDate":"2025-06-10","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://advanced.onlinelibrary.wiley.com/doi/epdf/10.1002/advs.202506474","citationCount":"0","resultStr":"{\"title\":\"Temporal Evolution of Lithium Metal Microstructures During Ultra-High-Capacity Stripping/Plating Cycles\",\"authors\":\"Arghya Dutta, Yoshimi Kubo\",\"doi\":\"10.1002/advs.202506474\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>The morphology of deposited lithium (Li) is critical to the stability and reversibility of Li-metal batteries (LMBs). While crystallographic features of Li influence deposition morphology, the orientation of Li crystals during electrodeposition and their temporal evolution under varying kinetic and interphasial conditions remain unclear. This study investigates Li microstructures during electrodeposition at ultra-high capacities (up to 12 mAh cm⁻<sup>2</sup>) and over repeated cycling, using scanning electron microscopy (SEM) and electron backscatter diffraction (EBSD). The results show that the microstructural evolution of Li depends on the interplay between interphasial properties and deposition kinetics. A layer-by-layer epitaxial Li growth with a coherent lattice orientation is achievable under homogeneous interphase and slow deposition kinetics. However, at higher capacities or extended cycling, deterioration of interphase homogeneity disrupts crystal matching, resulting in island-like deposits with randomly oriented single-crystalline grains. In contrast, an inhomogeneous interphase and faster kinetics lead to whisker-like Li deposits. These results demonstrate that while cohesive interactions between depositing Li crystals can result in isolated single-crystalline grains, maintaining interphase homogeneity and stability is essential to enable coherent lattice matching for layer-by-layer epitaxial growth. 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引用次数: 0
摘要
沉积锂的形貌对锂金属电池的稳定性和可逆性至关重要。虽然锂的晶体学特征影响沉积形态,但电沉积过程中锂晶体的取向及其在不同动力学和相间条件下的时间演化尚不清楚。本研究利用扫描电子显微镜(SEM)和电子背散射衍射(EBSD)研究了超高容量(高达12 mAh cm⁻2)和重复循环电沉积过程中的锂微结构。结果表明,锂的微观结构演变取决于相间性质和沉积动力学之间的相互作用。在均匀的界面相和缓慢的沉积动力学下,可以实现具有相干晶格取向的逐层外延锂生长。然而,在更高容量或延长循环时,相间均匀性的恶化破坏了晶体匹配,导致具有随机取向单晶晶粒的岛状沉积物。相反,不均匀的界面相和更快的动力学导致晶须状的锂矿床。这些结果表明,虽然沉积的锂晶体之间的内聚相互作用可以导致孤立的单晶颗粒,但保持相间的均匀性和稳定性对于实现逐层外延生长的相干晶格匹配至关重要。该研究揭示了Li的微观结构演变,为设计稳定的界面相和优化耐用、高容量lmb的条件提供了见解。
Temporal Evolution of Lithium Metal Microstructures During Ultra-High-Capacity Stripping/Plating Cycles
The morphology of deposited lithium (Li) is critical to the stability and reversibility of Li-metal batteries (LMBs). While crystallographic features of Li influence deposition morphology, the orientation of Li crystals during electrodeposition and their temporal evolution under varying kinetic and interphasial conditions remain unclear. This study investigates Li microstructures during electrodeposition at ultra-high capacities (up to 12 mAh cm⁻2) and over repeated cycling, using scanning electron microscopy (SEM) and electron backscatter diffraction (EBSD). The results show that the microstructural evolution of Li depends on the interplay between interphasial properties and deposition kinetics. A layer-by-layer epitaxial Li growth with a coherent lattice orientation is achievable under homogeneous interphase and slow deposition kinetics. However, at higher capacities or extended cycling, deterioration of interphase homogeneity disrupts crystal matching, resulting in island-like deposits with randomly oriented single-crystalline grains. In contrast, an inhomogeneous interphase and faster kinetics lead to whisker-like Li deposits. These results demonstrate that while cohesive interactions between depositing Li crystals can result in isolated single-crystalline grains, maintaining interphase homogeneity and stability is essential to enable coherent lattice matching for layer-by-layer epitaxial growth. This study reveals Li microstructural evolution and offers insights for designing stable interphases and optimizing conditions for durable, high-capacity LMBs.
期刊介绍:
Advanced Science is a prestigious open access journal that focuses on interdisciplinary research in materials science, physics, chemistry, medical and life sciences, and engineering. The journal aims to promote cutting-edge research by employing a rigorous and impartial review process. It is committed to presenting research articles with the highest quality production standards, ensuring maximum accessibility of top scientific findings. With its vibrant and innovative publication platform, Advanced Science seeks to revolutionize the dissemination and organization of scientific knowledge.