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用于锂离子电池的物理气相沉积硅/碳基负极材料的进展

Advances in physical vapor deposited silicon/carbon based anode materials for Li-ion batteries.

作者信息

El Omari Ghizlane, El Kindoussy Khadija, Aqil Mohamed, Dahbi Mouad, Alami Jones, Makha Mohammed

机构信息

Material Science, Energy and Nano-engineering department, University Mohammed VI Polytechnic (UM6P), Lot 660 Hay Moulay Rachid, 43150, Benguerir, Morocco.

出版信息

Heliyon. 2024 Apr 27;10(9):e30431. doi: 10.1016/j.heliyon.2024.e30431. eCollection 2024 May 15.

Abstract

This paper explores the latest developments in physical vapor deposition (PVD) techniques for fabricating silicon-carbon (Si/C) based thin films as anodes of Lithium-Ion batteries (LiBs). Properties of Si/C based materials, such as high thermal stability, electrical conductivity and mechanical strength, have addressed the critical challenges associated with the use silicon as anode material for LiBs, including as volume expansion during lithiation, structural stability and electrode degradation. The review article aims to provide recent advances in the use of Si/C-based thin film materials deposited via PVD processes as anodes for LiBs. PVD deposition processes provide numerous benefits including the precise control over the structure, thickness, morphology, as well as the design of deposited thin-film materials, and this article provides an in-depth analysis on the design and synthesis of Si/C thin films, as well as its electrochemical performance and stability when used as anode for LiBs. The primary aim of this paper is to underscore the advantages provided by PVD processes in overcoming challenges associated with using pure silicon as anode material for LiBs, or in improving the electrochemical performance of Si/C-based anode materials through the design of several Si/C films, covering both multilayer and nanocomposite Si/C film configurations outlined in sections 2 and 3, respectively. Insights into the mechanisms governing lithium-ion insertion/extraction processes within the Si/C matrix are provided, offering an understanding of the material's behavior during battery cycling.

摘要

本文探讨了用于制造作为锂离子电池(LiBs)阳极的硅碳(Si/C)基薄膜的物理气相沉积(PVD)技术的最新进展。Si/C基材料的特性,如高热稳定性、导电性和机械强度,解决了与将硅用作LiBs阳极材料相关的关键挑战,包括锂化过程中的体积膨胀、结构稳定性和电极降解。这篇综述文章旨在介绍通过PVD工艺沉积的Si/C基薄膜材料作为LiBs阳极的最新进展。PVD沉积工艺具有诸多优点,包括对结构、厚度、形态以及沉积薄膜材料的设计进行精确控制,本文对Si/C薄膜的设计与合成,以及其用作LiBs阳极时的电化学性能和稳定性进行了深入分析。本文的主要目的是强调PVD工艺在克服将纯硅用作LiBs阳极材料所面临的挑战方面的优势,或者通过设计几种Si/C薄膜来提高Si/C基阳极材料的电化学性能,分别涵盖第2节和第3节中概述的多层和纳米复合Si/C薄膜结构。文中还提供了对Si/C基体中锂离子嵌入/脱出过程控制机制的见解,有助于理解材料在电池循环过程中的行为。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2105/11079090/7207b64c26ca/gr1.jpg

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