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基于第一性原理的界面效应对CN/石墨烯多层异质结构锂存储容量影响的识别

First-principles identification of interface effect on Li storage capacity of CN/graphene multilayer heterostructure.

作者信息

Gavali Deepak S, Kawazoe Yoshiyuki, Thapa Ranjit

机构信息

Department of Physics, SRM University - AP, Amaravati, Andhra Pradesh 522 240, India.

New Industry Creation Hatchery Center, Tohoku University, Sendai, 980-8577, Japan; School of Physics, Suranaree University of Technology, 111 University Avenue Muang, Nakhon Ratchasima 30000, Thailand.

出版信息

J Colloid Interface Sci. 2022 Mar 15;610:80-88. doi: 10.1016/j.jcis.2021.12.052. Epub 2021 Dec 9.

Abstract

The design and development of new and light weight two-dimensional (2D) heterostructures as anode materials to enhance the electrochemical properties for Li-ion batteries (LIB's) is a challenge. In this work, using first-principles study, we have demonstrated that the ratio of two-dimensional polyaniline (CN) and graphene in the multilayer heterostructures plays a major role to define the Li storage properties and to provide metallicity for easy conduction of electrons. We have found that charge transfer between Li and the host depends on the interface and site, which helps in the improvement in specific capacity. The proposed heterostructures shows specific capacity varies from 558 mAh/gm to 423 mAh/gm. The specific capacity is high for heterostructures with more graphene in ratio which is correlated to higher charge accumulation in the host. Also, graphene helps to minimize the open-circuit voltage (OCV) of CN and maintained an average of 0.4 V. The volume expansion for fully lithiated heterostructures is within 22 %. Li diffusion barrier energy varies in the range of 0.57 to 0.25 eV. The proposed 2D heterostructures could be a future material for anode in LIB's and the description of the interface effect on Li storage properties will help for further development of 2D heterostructure materials.

摘要

设计和开发新型轻质二维(2D)异质结构作为锂离子电池(LIB)的阳极材料以增强其电化学性能是一项挑战。在这项工作中,通过第一性原理研究,我们证明了多层异质结构中二维聚苯胺(CN)与石墨烯的比例在定义锂存储性能以及为电子的轻松传导提供金属性方面起着主要作用。我们发现锂与主体之间的电荷转移取决于界面和位点,这有助于提高比容量。所提出的异质结构的比容量在558 mAh/gm至423 mAh/gm之间变化。对于石墨烯比例更高的异质结构,比容量较高,这与主体中更高的电荷积累相关。此外,石墨烯有助于使CN的开路电压(OCV)最小化,并保持在平均0.4 V。完全锂化的异质结构的体积膨胀在22%以内。锂扩散势垒能量在0.57至0.25 eV范围内变化。所提出的二维异质结构可能成为未来LIB阳极的材料,并且对锂存储性能的界面效应的描述将有助于二维异质结构材料的进一步发展。

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