High-performance composite anodes based on SBA-15 mesoporous silica modified with silicon, silicon oxide, titanium oxide, and germanium oxide for lithium-ion batteries

IF 7.5 Q1 CHEMISTRY, PHYSICAL
Radu Dorin Andrei , Giorgian Cosmin Ungureanu , Luisa Roxana Mandoc , Violeta-Carolina Niculescu , Jeremy Rodriguez , Mihaela Ramona Buga , Athanasios Tiliakos
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Abstract

In this study, SBA-15 mesoporous silica was modified with silicon, silica, titania, and germania particles to prepare composite silica-based anodes for lithium-ion batteries. The materials and the ensuing anodes were extensively characterized at every stage of their synthesis and preparation (BET/BJH, XRD, SAXS, FTIR, SEM, EDX) and the electrochemical performances of the assembled composite anodes were audited by voltammetric and galvanostatic methods to determine their discharge capacities and coulombic efficiencies. The composite anodes, especially Ti/SBA-15 and Ge/SBA-15, displayed stable coulombic efficiencies and gradually increasing capacities with steady trends, with the Ti/SBA-15 anode reaching 240 mAh g–1 and the Ge/SBA-15 one rising higher at 550 mAh g–1 after 500 cycles, thus outperforming the Si/SBA-15 anode which, in contrast, reached the high mark of 550 mAh g–1 within the first 50 cycles but continued with gradually diminishing performance and unstable efficiency. With indications of the underlying driving phenomenon pertaining to electrochemical grinding effects, our work encourages further investigations on the highly probable outcome of much increased lifetimes and higher performances for these types of composite anodes for lithium-ion batteries.
基于SBA-15介孔二氧化硅的高性能复合阳极,经硅、氧化硅、氧化钛和氧化锗改性,用于锂离子电池
本研究采用硅、二氧化硅、二氧化钛和锗粒子对SBA-15介孔二氧化硅进行改性,制备复合硅基锂离子电池负极。在合成和制备的每个阶段(BET/BJH, XRD, SAXS, FTIR, SEM, EDX)对材料和随后的阳极进行了广泛的表征,并通过伏安法和恒流法对组装的复合阳极的电化学性能进行了审计,以确定其放电容量和库仑效率。复合阳极,尤其是Ti/SBA-15和Ge/SBA-15表现出稳定的库仑效率和逐渐增加的容量,经过500次循环后,Ti/SBA-15达到240 mAh g-1, Ge/SBA-15达到550 mAh g-1,优于Si/SBA-15阳极,而Si/SBA-15在前50次循环内达到550 mAh g-1的高位,但性能逐渐下降,效率不稳定。随着电化学研磨效应的潜在驱动现象的迹象,我们的工作鼓励进一步研究这些类型的锂离子电池复合阳极极有可能增加使用寿命和提高性能的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.10
自引率
1.60%
发文量
128
审稿时长
66 days
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