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高功率锂离子电池研究进展 被引量:17
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作者 陈港欣 孙现众 +2 位作者 张熊 王凯 马衍伟 《工程科学学报》 EI CSCD 北大核心 2022年第4期612-624,共13页
高功率快放型锂离子电池是目前锂离子电池领域研究的重点方向之一.为了获得具有高功率密度的锂离子电池,正极材料须具有较高的电压和较高的电子与离子导电率,正极材料主要包括高电压钴酸锂、镍锰酸锂和高电压三元材料,负极材料包括碳系... 高功率快放型锂离子电池是目前锂离子电池领域研究的重点方向之一.为了获得具有高功率密度的锂离子电池,正极材料须具有较高的电压和较高的电子与离子导电率,正极材料主要包括高电压钴酸锂、镍锰酸锂和高电压三元材料,负极材料包括碳系材料、钛基材料和金属氧化物材料,以及为提高首效和降低负极电位而采用的预嵌锂方法,并对锂离子电池电解液用锂盐、溶剂和添加剂进行了综述.最终总结了功率密度测试方法,并对高功率锂离子电池的研究进行展望. 展开更多
关键词 高功率锂离子电池 正极材料 负极材料 电解液 预嵌锂 功率密度
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Recent progress and perspectives on silicon anode:Synthesis and prelithiation for LIBs energy storage 被引量:13
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作者 Yuanxing Zhang Borong Wu +3 位作者 Ge Mu Chengwei Ma Daobin Mu Feng Wu 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2022年第1期615-650,I0016,共37页
The ever-increasing environmental/energy crisis as well as the rapid upgrading of mobile devices had stimulated intensive research attention on promising alternative energy storage and conversion devices.Among these d... The ever-increasing environmental/energy crisis as well as the rapid upgrading of mobile devices had stimulated intensive research attention on promising alternative energy storage and conversion devices.Among these devices,alkali metal ion batteries,such as lithium-ion batteries(LIBs) had attracted increasing research attention due to its several advantages including,environmental friendliness,high power density,long cycle life and excellent reversibility.It had been widely used in consumer electronics,electric vehicles,and large power grids et ac.Silicon-based(silicon and their oxides,carbides) anodes had been widely studied.Its several advantages including low cost,high theoretical capacity,natural abundance,and environmental friendliness,which shows great potential as anodes of LIBs.In this review,we summarized the recently progress in the synthetic method of silicon matrix composites.The empirical method for prelithiation of silicon-based materials were also provided.Further,we also reviewed some novel characterization methods.Finally,the new design,preparation methods and properties of these nano materials were reviewed and compared.We hoped that this review can provide a general overview of recent progress and we briefly highlighted the current challenges and prospects,and will clarify the future trend of silicon anode LIBs research. 展开更多
关键词 Si anodes Lithium-ion batteries prelithiation CHARACTERIZATION Energy storage and conversion
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Regulating the Solvation Structure of Li^(+) Enables Chemical Prelithiation of Silicon-Based Anodes Toward High-Energy Lithium-Ion Batteries 被引量:5
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作者 Wenjie He Hai Xu +5 位作者 Zhijie Chen Jiang Long Jing Zhang Jiangmin Jiang Hui Dou Xiaogang Zhang 《Nano-Micro Letters》 SCIE EI CAS CSCD 2023年第7期293-305,共13页
The solvation structure of Li^(+) in chemical prelithiation reagent plays a key role in improving the low initial Coulombic efficiency(ICE) and poor cycle performance of silicon-based materials. Never theless, the che... The solvation structure of Li^(+) in chemical prelithiation reagent plays a key role in improving the low initial Coulombic efficiency(ICE) and poor cycle performance of silicon-based materials. Never theless, the chemical prelithiation agent is difficult to dope active Li^(+) in silicon-based anodes because of their low working voltage and sluggish Li^(+) diffusion rate. By selecting the lithium–arene complex reagent with 4-methylbiphenyl as an anion ligand and 2-methyltetrahydrofuran as a solvent, the as-prepared micro-sized Si O/C anode can achieve an ICE of nearly 100%. Interestingly, the best prelithium efficiency does not correspond to the lowest redox half-potential(E_(1/2)), and the prelithiation efficiency is determined by the specific influencing factors(E_(1/2), Li^(+) concentration, desolvation energy, and ion diffusion path). In addition, molecular dynamics simulations demonstrate that the ideal prelithiation efficiency can be achieved by choosing appropriate anion ligand and solvent to regulate the solvation structure of Li^(+). Furthermore, the positive effect of prelithiation on cycle performance has been verified by using an in-situ electrochemical dilatometry and solid electrolyte interphase film characterizations. 展开更多
关键词 Lithium-ion batteries Silicon-based anodes prelithiation Molecular dynamics simulations Solvation structure
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预锂化技术及其在高比能硅负极中的应用 被引量:9
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作者 聂平 徐桂银 +5 位作者 蒋江民 王江 付瑞瑞 方姗 窦辉 张校刚 《储能科学与技术》 CAS CSCD 2017年第5期889-903,共15页
开发具有高能量密度、高安全性和长循环寿命的锂离子电池成为当今储能领域的研究热点,高容量合金及转换反应材料引起了广泛的关注,主要包括硅基、锡基、金属氧化物等。与锂离子嵌入反应负极材料不同,在充放电过程中,这类材料存在较大的... 开发具有高能量密度、高安全性和长循环寿命的锂离子电池成为当今储能领域的研究热点,高容量合金及转换反应材料引起了广泛的关注,主要包括硅基、锡基、金属氧化物等。与锂离子嵌入反应负极材料不同,在充放电过程中,这类材料存在较大的首次不可逆容量损失。首次不可逆容量损失消耗了大量的电解液和正极材料中脱出的锂离子,导致较低的库仑效率。锂的损失降低了电池的能量密度和循环寿命,从而严重制约了此类材料在高比能锂离子电池中的应用。预锂化技术为解决不可逆容量损失、提高库仑效率提供了有效的解决方案。本文重点综述了高容量合金和转换反应负极材料首次不可逆容量形成的原因以及近年来预锂化技术的最新研究进展,预锂化技术主要包括物理混合、稳定的金属锂粉、电化学预锂化、接触短路反应、化学预锂化以及新发展的预锂化添加材料等,并进一步总结了预锂化在基于高容量硅基负极的锂离子电池以及锂硫电池中的应用。系统分析预锂化技术的最新进展可为其它储能系统(离子电容器、钠离子电池、钾离子电池、锂空气电池等)的进一步发展提供科学参考和理论指导。 展开更多
关键词 预锂化 库仑效率 硅负极 锂离子电池 锂硫电池
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锂离子电池预锂化技术的研究现状 被引量:6
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作者 朱亮 严长青 倪涛来 《电池》 CAS CSCD 北大核心 2018年第3期206-209,共4页
综述近年来锂离子电池预锂化技术,展望预锂化技术的发展方向。负极补锂的方法有锂箔补锂、锂粉补锂、硅化锂粉和电解锂盐水溶液等;正极补锂添加剂有富锂化合物、基于转化反应的纳米复合材料和二元锂化合物等。
关键词 锂离子电池 预锂化 正极补锂 负极补锂 首次库仑效率
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Prelithiation strategies for silicon-based anode in high energy density lithium-ion battery 被引量:5
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作者 Tianqi Jia Geng Zhong +8 位作者 Yao Lv Nanrui Li Yanru Liu Xiaoliang Yu Jinshuo Zou Zhen Chen Lele Peng Feiyu Kang Yidan Cao 《Green Energy & Environment》 SCIE EI CAS CSCD 2023年第5期1325-1340,共16页
Green energy storage devices play vital roles in reducing fossil fuel emissions and achieving carbon neutrality by 2050.Growing markets for portable electronics and electric vehicles create tremendous demand for advan... Green energy storage devices play vital roles in reducing fossil fuel emissions and achieving carbon neutrality by 2050.Growing markets for portable electronics and electric vehicles create tremendous demand for advanced lithium-ion batteries(LIBs)with high power and energy density,and novel electrode material with high capacity and energy density is one of the keys to next-generation LIBs.Silicon-based materials,with high specific capacity,abundant natural resources,high-level safety and environmental friendliness,are quite promising alternative anode materials.However,significant volume expansion and redundant side reactions with electrolytes lead to active lithium loss and decreased coulombic efficiency(CE)of silicon-based material,which hinders the commercial application of silicon-based anode.Prelithiation,preembedding extra lithium ions in the electrodes,is a promising approach to replenish the lithium loss during cycling.Recent progress on prelithiation strategies for silicon-based anode,including electrochemical method,chemical method,direct contact method,and active material method,and their practical potentials are reviewed and prospected here.The development of advanced Si-based material and prelithiation technologies is expected to provide promising approaches for the large-scale application of silicon-based materials. 展开更多
关键词 Si-based materials prelithiation Coulombic efficiency Lithium loss Lithium-ion battery
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Lithium sulfide:a promising prelithiation agent for high-performance lithium-ion batteries
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作者 Junkang Huang Weifeng Li +5 位作者 Wenli Zhang Bixia Lin Yang Wang SiuWing Or Shuhui Sun Zhenyu Xing 《SusMat》 SCIE EI 2024年第1期34-47,共14页
Lithium-ion batteries are widely used in portable electronics and electric vehicles due to their high energy density,stable cycle life,and low self-discharge.However,irreversible lithium loss during the formation of t... Lithium-ion batteries are widely used in portable electronics and electric vehicles due to their high energy density,stable cycle life,and low self-discharge.However,irreversible lithium loss during the formation of the solid electrolyte interface greatly impairs energy density and cyclability.To compensate for the lithium loss,introducing an external lithium source,that is,a prelithiation agent,is an effective strategy to solve the above problems.Compared with other prelithiation strategies,cathode prelithiation is more cost-effective with simpler operation.Among various cathode prelithiation agents,we first systematically summarize the recent progress of Li_(2)S-based prelithiation agents,and then propose some novel strategies to tackle the current challenges.This review provides a comprehensive understanding of Li_(2)S-based prelithiation agents and new research directions in the future. 展开更多
关键词 Li-ion batteries prelithiation Li2S prelithiation agent metallothermic reduction reaction
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Progress and challenges of prelithiation technology for lithium-ion battery 被引量:7
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作者 Zhenyu Huang Zhe Deng +7 位作者 Yun Zhong Mingkang Xu Sida Li Xueting Liu Yu Zhou Kai Huang Yue Shen Yunhui Huang 《Carbon Energy》 SCIE CAS 2022年第6期1107-1132,共26页
Prelithiation technology is widely considered a feasible route to raise the energy density and elongate the cycle life of lithium-ion batteries.The principle of prelithiation is to introduce extra active Li ions in th... Prelithiation technology is widely considered a feasible route to raise the energy density and elongate the cycle life of lithium-ion batteries.The principle of prelithiation is to introduce extra active Li ions in the battery so that the lithium loss during the first charge and long-term cycling can be compensated.Such an effect does not need to change the major electrode material or battery structure and is compatible with the majority of current lithium-ion battery production lines.At this stage,various prelithiation methods have been reported,some of which are already in the pilot-scale production stage.But there is still no definitive development roadmap for prelithiation.In this review,we first introduce the influence of prelithiation on electrochemical performance from a theoretical point of view and then compare the pros and cons of different prelithiation methods in different battery manufacturing stages.Finally,we discuss the challenges and future development trends of prelithiation.We aim to build up a bridge between academic research and industrial application.Some engineering problems in the promotion of prelithiation technique are extensively discussed,including not only the implementation of prelithiation but also some collateral issues on battery designing and management. 展开更多
关键词 cycle life ELECTROCHEMISTRY initial coulombic efficiency lithium-ion battery prelithiation
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Recent advances and perspectives on prelithiation strategies for lithium-ion capacitors 被引量:6
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作者 Jiang-Min Jiang Zhi-Wei Li +7 位作者 Zhao-Ting Zhang Shi-Jing Wang Hai Xu Xin-Ran Zheng Ya-Xin Chen Zhi-Cheng Ju Hui Dou Xiao-Gang Zhang 《Rare Metals》 SCIE EI CAS CSCD 2022年第10期3322-3335,共14页
Lithium-ion capacitors(LICs),consisting of a capacitor-type material and a battery-type material together with organic electrolytes,are the state-of-the-art electrochemical energy storage devices compared with superca... Lithium-ion capacitors(LICs),consisting of a capacitor-type material and a battery-type material together with organic electrolytes,are the state-of-the-art electrochemical energy storage devices compared with supercapacitors and batteries.Owing to their unique characteristics,LICs received a lot of attentions,and great progresses have been achieved,especially in the exploration of cathode and anode materials.Prelithiation techniques are regarded as indispensable procedures for LICs systems,which can compensate for the initial irreversible capacity loss,increase the Li^(+)concentration in the electrolyte,raise the working voltage and resolve the safety and cycle stability issues;however,its research progress is slow,and there is not enough attention until now.In this overview,we look into the ongoing processes on the recent development of prelithiation technologies,especially in organic electrolyte consumption-type LICs.In particular,some prelithiation strategies for LICs are summarized and discussed in detail,including the ex situ electrochemical method,in situ electrochemical method,and cathode prelithiation additives method.Moreover,we propose some unresolved challenges and prospects for prelithiation technologies from the basic research ideas and future key research directions.This work aims to bring up new insights to reassess the significance of premetallation strategies for advanced hybrid-ion capacitors based on the currently proposed prelithiation strategies. 展开更多
关键词 Lithium-ion capacitors(LICs) prelithiation Initial irreversible capacity Stabilized lithium metal powder Self-sacrificial additives
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高比能锂离子电池的预锂化技术研究进展 被引量:7
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作者 肖宇雄 左朋建 《有色金属工程》 CAS 北大核心 2021年第11期56-79,共24页
由于电动车和电子设备等技术的快速发展,高能量密度锂离子电池的需求不断增加。作为提高电池能量密度的重要措施之一,高比容量负极材料的应用也受到越来越多的关注。然而,高比容量负极材料与传统石墨基材料相比具有较大的初始不可逆容... 由于电动车和电子设备等技术的快速发展,高能量密度锂离子电池的需求不断增加。作为提高电池能量密度的重要措施之一,高比容量负极材料的应用也受到越来越多的关注。然而,高比容量负极材料与传统石墨基材料相比具有较大的初始不可逆容量和较低的循环稳定性,严重影响了电池的能量密度和使用寿命。针对高容量负极的实际应用,迫切需要开发商业可用的预锂化技术来补偿其初始及循环过程中的不可逆容量损失。因此,从电池电极改进的角度系统地总结和分析了各种预锂化方法的优势和挑战,可为锂离子电池的预锂化技术开发和高比能量电池的性能优化提供重要的参考价值。 展开更多
关键词 锂离子电池 电极材料 预锂化 高比能 硅负极
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Mo_(2)C催化的低压纳米Li_(2)C_(2)O_(4)预锂化用于高能量锂离子电池 被引量:3
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作者 钟伟 张策 +4 位作者 李思吾 张薇 曾子琪 程时杰 谢佳 《Science China Materials》 SCIE EI CAS CSCD 2023年第3期903-912,共10页
初始循环中不可逆的锂损失显著降低了锂离子电池的能量密度预锂化是补偿锂损失的有效方法之一,但目前的方法存在预锂化试剂不稳定或容量低的问题.草酸锂(Li_(2)C_(2)O_(4))作为一种高理论容量(相当于锂金属)、低成本和空气稳定的锂补偿... 初始循环中不可逆的锂损失显著降低了锂离子电池的能量密度预锂化是补偿锂损失的有效方法之一,但目前的方法存在预锂化试剂不稳定或容量低的问题.草酸锂(Li_(2)C_(2)O_(4))作为一种高理论容量(相当于锂金属)、低成本和空气稳定的锂补偿材料已显示出巨大的潜力.然而低电化学活性和高分解电位严重阻碍了其实际应用.本文中,我们报道了一种低压预锂化技术.通过配合使用Mo_(2)C催化剂和纳米Li_(2)C_(2)O_(4)Mo_(2)C催化剂改变了Li_(2)C_(2)O_(4)周围的电子云分布,大大降低了活化能,从而显著加速了锂从Li_(2)C_(2)O_(4)中的释放.通过冷冻干燥制备的纳米Li_(2)C_(2)O_(4)与Mo_(2)C催化剂形成良好接触并展现出快速的离子和电子传导.得益于这种协同效应,Li_(2)C_(2)O_(4)的分解电位降低了0.5 V,分解效率接近100%.纳米Li_(2)C_(2)O_(4)/Mo_(2)C复合材料补偿的LiCoO_(2)||SiO全电池展现出可以高于对照组46.9%的比容量,显示出巨大的实际应用潜力. 展开更多
关键词 锂离子电池 理论容量 预锂化 电化学活性 分解电位 全电池 电子传导 能量密度
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Practical evaluation of prelithiation strategies for next-generation lithium-ion batteries 被引量:3
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作者 Shiming Chen Zhen Wang +6 位作者 Meng Zhang Xiaoze Shi Lu Wang Weifeng An Zikun Li Feng Pan Luyi Yang 《Carbon Energy》 SCIE CSCD 2023年第8期55-77,共23页
With the increasing market demand for high-performance lithium-ion batteries with high-capacity electrode materials,reducing the irreversible capacity loss in the initial cycle and compensating for the active lithium ... With the increasing market demand for high-performance lithium-ion batteries with high-capacity electrode materials,reducing the irreversible capacity loss in the initial cycle and compensating for the active lithium loss during the cycling process are critical challenges.In recent years,various prelithiation strategies have been developed to overcome these issues.Since these approaches are carried out under a wide range of conditions,it is essential to evaluate their suitability for large-scale commercial applications.In this review,these strategies are categorized based on different battery assembling stages that they are implemented in,including active material synthesis,the slurry mixing process,electrode pretreatment,and battery fabrication.Furthermore,their advantages and disadvantages in commercial production are discussed from the perspective of thermodynamics and kinetics.This review aims to provide guidance for the future development of prelithiation strategies toward commercialization,which will potentially promote the practical application of next-generation high-energy-density lithium-ion batteries. 展开更多
关键词 high-energy-density irreversible capacity loss lithium-ion batteries practical application prelithiation
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Innovative Solutions for High-Performance Silicon Anodes in Lithium-Ion Batteries:Overcoming Challenges and Real-World Applications 被引量:1
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作者 Mustafa Khan Suxia Yan +6 位作者 Mujahid Ali Faisal Mahmood Yang Zheng Guochun Li Junfeng Liu Xiaohui Song Yong Wang 《Nano-Micro Letters》 SCIE EI CAS CSCD 2024年第9期341-384,共44页
Silicon(Si)has emerged as a potent anode material for lithium-ion batteries(LIBs),but faces challenges like low electrical conductivity and significant volume changes during lithiation/delithiation,leading to material... Silicon(Si)has emerged as a potent anode material for lithium-ion batteries(LIBs),but faces challenges like low electrical conductivity and significant volume changes during lithiation/delithiation,leading to material pulverization and capacity degradation.Recent research on nanostructured Si aims to mitigate volume expansion and enhance electrochemical performance,yet still grapples with issues like pulverization,unstable solid electrolyte interface(SEI)growth,and interparticle resistance.This review delves into innovative strategies for optimizing Si anodes’electrochemical performance via structural engineering,focusing on the synthesis of Si/C composites,engineering multidimensional nanostructures,and applying non-carbonaceous coatings.Forming a stable SEI is vital to prevent electrolyte decomposition and enhance Li^(+)transport,thereby stabilizing the Si anode interface and boosting cycling Coulombic efficiency.We also examine groundbreaking advancements such as self-healing polymers and advanced prelithiation methods to improve initial Coulombic efficiency and combat capacity loss.Our review uniquely provides a detailed examination of these strategies in real-world applications,moving beyond theoretical discussions.It offers a critical analysis of these approaches in terms of performance enhancement,scalability,and commercial feasibility.In conclusion,this review presents a comprehensive view and a forward-looking perspective on designing robust,high-performance Si-based anodes the next generation of LIBs. 展开更多
关键词 Silicon anode Energy storage NANOSTRUCTURE prelithiation BINDER
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高比能高功率全石墨烯锂离子电容器 被引量:6
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作者 顾晓瑜 洪晔 +2 位作者 艾果 王朝阳 毛文峰 《化学学报》 SCIE CAS CSCD 北大核心 2018年第8期644-648,共5页
石墨烯由于拥有超高比表面积和超高电导率而被作为电化学电容器材料广泛研究.本文采用树脂为碳源,通过一种方便快捷的树脂交换法制备一种具有高比表面积的多级孔三维石墨烯(3DG).经过此种方法的催化、造孔、热处理等主要工艺步骤后,可... 石墨烯由于拥有超高比表面积和超高电导率而被作为电化学电容器材料广泛研究.本文采用树脂为碳源,通过一种方便快捷的树脂交换法制备一种具有高比表面积的多级孔三维石墨烯(3DG).经过此种方法的催化、造孔、热处理等主要工艺步骤后,可显著增加石墨烯材料的小、介孔数量,从而提高材料的电化学性能.通过BET测试表明,3DG的比表面积可达2400 m^2/g,孔体积达到2.0 cm^3/g.以3DG作为正负极材料制备高比能量高功率型锂离子电容器(3DG-LIC),可使3DG-LIC的工作电压从传统超级电容器的2.5 V扩展到4.0 V,能量密度也从20 Wh/kg提高到105Wh/kg.另外,相同的化学和微观结构能很好地平衡正负极的容量及速率,使高比能量高功率的3DG-LIC具有更宽阔的应用领域. 展开更多
关键词 三维石墨烯 多级孔 锂离子电容器 预嵌锂
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Mg-doped,carbon-coated,and prelithiated SiO_(x) as anode materials with improved initial Coulombic efficiency for lithium-ion batteries
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作者 Bin Liu Jie Liu +1 位作者 Cheng Zhong Wenbin Hu 《Carbon Energy》 SCIE EI CAS CSCD 2024年第3期204-214,共11页
Silicon suboxide(SiO_(x),x≈1)is promising in serving as an anode material for lithium-ion batteries with high capacity,but it has a low initial Coulombic efficiency(ICE)due to the irreversible formation of lithium si... Silicon suboxide(SiO_(x),x≈1)is promising in serving as an anode material for lithium-ion batteries with high capacity,but it has a low initial Coulombic efficiency(ICE)due to the irreversible formation of lithium silicates during the first cycle.In this work,we modify SiO_(x) by solid-phase Mg doping reaction using low-cost Mg powder as a reducing agent.We show that Mg reduces SiO_(2) in SiO_(x) to Si and forms MgSiO_(3) or Mg_(2)SiO_(4).The MgSiO_(3) or Mg_(2)SiO_(4) are mainly distributed on the surface of SiO_(x),which suppresses the irreversible lithium-ion loss and enhances the ICE of SiO_(x).However,the formation of MgSiO_(3) or Mg_(2)SiO_(4) also sacrifices the capacity of SiO_(x).Therefore,by controlling the reaction process between Mg and SiO_(x),we can tune the phase composition,proportion,and morphology of the Mg-doped SiO_(x) and manipulate the performance.We obtain samples with a capacity of 1226 mAh g^(–1) and an ICE of 84.12%,which show significant improvement over carbon-coated SiO_(x) without Mg doping.By the synergistical modification of both Mg doping and prelithiation,the capacity of SiO_(x) is further increased to 1477 mAh g^(–1) with a minimal compromise in the ICE(83.77%). 展开更多
关键词 initial Coulombic efficiency lithium-ion batteries magnesium doping prelithiation silicon suboxide
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Lithiophilic Li-Si alloy-solid electrolyte interface enabled by high-concentration dual salt-reinforced quasi-solid-state electrolyte
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作者 Yuanxing Zhang Ling Zhang +7 位作者 Zhiguang Zhao Yuxiang Zhang Jingwen Cui Chengcai Liu Daobin Mu Yuefeng Su Borong Wu Feng Wu 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2024年第8期216-230,I0005,共16页
Solid polymer electrolytes(SPEs)are urgently required to achieve practical solid-state lithium metal batteries(LMBs)and lithium-ion batteries(LIBs),Herein,we proposed a mechanism for modulating interfacial conduction ... Solid polymer electrolytes(SPEs)are urgently required to achieve practical solid-state lithium metal batteries(LMBs)and lithium-ion batteries(LIBs),Herein,we proposed a mechanism for modulating interfacial conduction and anode interfaces in high-concentration SPEs by LiDFBOP.Optimized electrolyte exhibits superior ionic conductivity and remarkable interface compatibility with salt-rich clusters:(1)polymer-plastic crystal electrolyte(P-PCE,TPU-SN matrix)dissociates ion pairs to facilitate Li+transport in the electrolyte and regulates Li^(+)diffusion in the SEI.The crosslinking structure of the matrix compensates for the loss of mechanical strength at high-salt concentrations;(2)dual-anion TFSI^(-)_(n)-DFBOP^(-)_(m)in the Li^(+)solvation sheath facilitates facile Li^(+)desolvation and formation of salt-rich clusters and is conducive to the formation of Li conductive segments of TPU-SN matrix;(3)theoretical calculations indicate that the decomposition products of LiDFBOP form SEI with lower binding energy with LiF in the SN system,thereby enhancing the interfacial electrochemical redox kinetics of SPE and creating a solid interface SEI layer rich in LiF.As a result,the optimized electrolyte exhibits an excellent ionic conductivity of9.31×10^(-4)S cm^(-1)at 30℃and a broadened electrochemical stability up to 4.73 V.The designed electrolyte effectively prevents the formation of Li dendrites in Li symmetric cells for over 6500 h at0.1 mA cm^(-2).The specific Li-Si alloy-solid state half-cell capacity shows 711.6 mAh g^(-1)after 60 cycles at 0.3 A g^(-1).Excellent rate performance and cycling stability are achieved for these solid-state batteries with Li-Si alloy anodes and NCM 811 cathodes.NCM 811‖Prelithiated silicon-based anode solid-state cell delivers a discharge capacity of 195.55 mAh g^(-1)and a capacity retention of 97.8%after 120 cycles.NCM 811‖Li solid-state cell also delivers capacity retention of 84.2%after 450 cycles. 展开更多
关键词 prelithiation Li-Si alloy anode Solid-state electrolyte SEI layer
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Facilitating prelithiation of silicon carbon anode by localized high-concentration electrolyte for high-rate and long-cycle lithium storage
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作者 Yuanxing Zhang Borong Wu +6 位作者 Jiaying Bi Xinyu Zhang Daobin Mu Xin-Yu Zhang Ling Zhang Yao Xiao Feng Wu 《Carbon Energy》 SCIE EI CAS CSCD 2024年第6期216-233,共18页
The commercialization of silicon-based anodes is affected by their low initial Coulombic efficiency(ICE)and capacity decay,which are attributed to the formation of an unstable solid electrolyte interface(SEI)layer.Her... The commercialization of silicon-based anodes is affected by their low initial Coulombic efficiency(ICE)and capacity decay,which are attributed to the formation of an unstable solid electrolyte interface(SEI)layer.Herein,a feasible and cost-effective prelithiation method under a localized highconcentration electrolyte system(LHCE)for the silicon-silica/graphite(Si-SiO_(2)/C@G)anode is designed for stabilizing the SEI layer and enhancing the ICE.The thin SiO_(2)/C layers with-NH_(2) groups covered on nano-Si surfaces are demonstrated to be beneficial to the prelithiation process by density functional theory calculations and electrochemical performance.The SEI formed under LHCE is proven to be rich in ionic conductivity,inorganic substances,and flexible organic products.Thus,faster Li+transportation across the SEI further enhances the prelithiation effect and the rate performance of Si-SiO_(2)/C@G anodes.LHCE also leads to uniform decomposition and high stability of the SEI with abundant organic components.As a result,the prepared anode shows a high reversible specific capacity of 937.5 mAh g^(-1)after 400 cycles at a current density of 1 C.NCM 811‖Li-SSGLHCE full cell achieves a high-capacity retention of 126.15 mAh g^(-1)at 1 C over 750 cycles with 84.82%ICE,indicating the great value of this strategy for Si-based anodes in large-scale applications. 展开更多
关键词 localized high-concentration electrolytes prelithiation SEI layer silicon anode
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Boosting High-Voltage Dynamics Towards High-Energy-Density Lithium-Ion Capacitors 被引量:2
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作者 Junfeng Huang Xin Lu +9 位作者 Teng Sun Daiyao Yu Zhong Xu Yanting Xie Xinglin Jiang Yongbin Wang Shenglong Wang Xiong Zhang Weiqing Yang Haitao Zhang 《Energy & Environmental Materials》 SCIE EI CAS CSCD 2023年第4期211-217,共7页
Lithium-ion capacitors(LICs)are becoming important electrochemical energy storage systems due to their great potential to bridge the gap between supercapacitors and lithium-ion batteries.However,capacity lopsidedness ... Lithium-ion capacitors(LICs)are becoming important electrochemical energy storage systems due to their great potential to bridge the gap between supercapacitors and lithium-ion batteries.However,capacity lopsidedness and low output voltage greatly hinder the realization of high-energy-density LICs.Herein,a strategy of balancing capacity towards fastest dynamics is proposed to enable high-voltage LICs.Through electrochemical prelithiation of Nb_(2)C to be 1.1 V with 165 mAh g^(-1),Nb_(2)C//LiFePO_(4) LICs show a broadened potential window from 3.0 to 4.2 V and an according high energy density of 420 Wh kg^(-1).Moreover,the underlying mechanism between prelithiation and high voltage is disclosed by electrochemical dynamic analysis.Prelithiation declines the Nb_(2)C anode potential that facilitates electron transmission in the interlayer of two-dimensional Nb_(2)C MXene.This effect induces small drive force for Li^(+)ions deposition and hence weakens the repulsive force from adsorbed ions on the electrode surface.Benefiting from even more Li^(+)ions deposition,a higher voltage is eventually delivered.In addition,prelithiation significantly increases Coulomb efficiency of the 1st cycle from 74%to 90%,which is crucial to commercial application of LICs. 展开更多
关键词 electrochemical dynamics high voltage lithium-ion capacitors Nb2C MXene prelithiation
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锂离子电池稳定金属锂粉预锂化策略研究进展
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作者 静若盈 侯果林 +1 位作者 杨井玉 荣峻峰 《化学试剂》 CAS 2024年第7期66-74,共9页
随着经济社会全面绿色转型和新能源汽车产业的蓬勃发展,人们对具有高能量密度的先进锂离子电池产生了巨大需求。然而,锂离子电池在首次充放电过程中,由于固体电解质界面(SEI)膜和不可逆产物的生成会产生巨大的初始活性锂损失,降低了电... 随着经济社会全面绿色转型和新能源汽车产业的蓬勃发展,人们对具有高能量密度的先进锂离子电池产生了巨大需求。然而,锂离子电池在首次充放电过程中,由于固体电解质界面(SEI)膜和不可逆产物的生成会产生巨大的初始活性锂损失,降低了电池的能量密度,严重阻碍了其商业应用。预锂化使电极材料提前接触额外的活性锂源,补偿其在首次循环过程中造成的活性锂损失,是目前提高锂离子电池首效和能量密度的最有效的手段。稳定化金属锂粉末(SLMP)预锂化具有超高的预锂容量,并且预锂工艺简单,是最常用的预锂化方法。综述了SLMP预锂化方法的研究进展,分析其优势及挑战,并展望其未来发展方向,为稳定金属锂粉在预锂化及锂粉稳定化处理等方面的进一步研究提供思路和启发,为提高锂离子电池的首次库伦效率和能量密度提供参考。 展开更多
关键词 锂离子电池 负极 预锂化 稳定金属锂粉 锂损失
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锂离子电池硅基负极预锂化技术的研究进展
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作者 冶伟冬 叶岗 《安徽化工》 CAS 2024年第3期14-17,22,共5页
硅基负极具有高理论容量、高安全性、环境友好性等优点,因此被认为是有潜力的新型负极材料。硅材料在首次充放电过程中会生成不可逆的硅酸盐,导致首次库伦效率降低、循环过程中体积膨胀与电解液的严重副反应,进而导致活性锂损失,严重阻... 硅基负极具有高理论容量、高安全性、环境友好性等优点,因此被认为是有潜力的新型负极材料。硅材料在首次充放电过程中会生成不可逆的硅酸盐,导致首次库伦效率降低、循环过程中体积膨胀与电解液的严重副反应,进而导致活性锂损失,严重阻碍了硅极负极的工业化进程。预锂化可以补偿初始活性锂损失来提升首效。总结了近年来硅基负极预锂化方法的研究进展以及各种预锂化技术的优缺点,并对其应用前景进行了展望。 展开更多
关键词 锂离子电池 硅负极 库伦效率 容量损失 预锂化
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