Meiying Zheng, Jan Kuriplach, Ilja Makkonen, Rafael Ferragut, Vito Di Noto, Gioele Pagot, Ekaterina Laakso, Bernardo Barbiellini
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引用次数: 0
摘要
锂离子电池阴极中的碳基涂层可提高电子传导性,实现快速充电。然而,人们对其机理并不十分清楚。在此,我们利用正电子作为非破坏性探针来研究阴极内的纳米界面,从而解决这一问题。我们采用非局部密度近似的 ab initio 方法计算石墨烯叠层钴酸锂异质结中的正电子湮灭寿命,以准确描述电子-正电子相关性。这种理想的异质结构代表了在阴极纳米粒子上进行的标准碳基涂层,以改善阴极的传导性能。我们将钴酸锂和石墨烯之间的界面描述为 p 型肖特基结,并发现了正电子表面态。这些正电子表面态的寿命分量强度可作为正离子超快迁移率的描述因子。因此,通过增强这种强度来优化碳层,并将石墨烯层上的锂离子原子与表面的正电子进行类比,可以改进快速充电通道的设计。
Positron unveiling high mobility graphene stack interfaces in Li-ion cathodes
Carbon-based coatings in Li-ion battery cathodes improve electron conductivity and enable rapid charging. However, the mechanism is not well understood. Here, we address this question by using positrons as non-destructive probes to investigate nano-interfaces within cathodes. We calculate the positron annihilation lifetime in a graphene stack LiCoO2 heterojunction using an ab initio method with a non-local density approximation to accurately describe the electron-positron correlation. This ideal heterostructure represents the standard carbon-based coating performed on cathode nanoparticles to improve the conduction properties of the cathode. We characterize the interface between LiCoO2 and graphene as a p-type Schottky junction and find positron surface states. The intensity of the lifetime component for these positron surface states serves as a descriptor for positive ion ultra-fast mobility. Consequently, optimizing the carbon layer by enhancing this intensity and by analogizing Li-ion adatoms on graphene layers with positrons at surfaces can improve the design of fast-charging channels. Carbon layers in Li-ion battery cathodes are important for fast charging but the underlying mechanism is still not well understood. Here, ab initio calculations of the positron annihilation lifetime in graphene stack LiCoO2 heterojunction gives insights into ultra-fast ion mobility.
期刊介绍:
Communications Materials, a selective open access journal within Nature Portfolio, is dedicated to publishing top-tier research, reviews, and commentary across all facets of materials science. The journal showcases significant advancements in specialized research areas, encompassing both fundamental and applied studies. Serving as an open access option for materials sciences, Communications Materials applies less stringent criteria for impact and significance compared to Nature-branded journals, including Nature Communications.