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1.
金属锂由于其高的比容量,低的电极电势和轻质等特点被认为是下一代高能量密度锂金属二次电池负极材料的最佳选择。然而,充放电循环中不均匀的锂沉积会导致严重的体积变化和大量的锂枝晶形成,从而影响了电池的库伦效率甚至会带来严重的安全隐患。为此,本文设计了一种亲锂的三维二硫化锡@碳纤维布复合基底材料,并作为集流体将其应用于金属锂电池上。一者,高比表面积的三维碳纤维骨架可以适应充放电过程中的体积变化并且有效地降低局部电流密度,从而确保锂的均匀沉积。二者,表面修饰的SnS2层在锂沉积过程中可以形成Li-Sn合金界面层,诱导锂的沉积并降低过电势。最终,实验结果表明:使用所制备的复合集流体与金属锂搭配组成的半电池可以在5 mA·cm-2的高电流密度下以>98%的库伦效率稳定循环100周以上。此外,在承载10 mAh·cm-2的金属锂后,复合的锂负极无论是在对称电池还是与磷酸铁锂组装成的实际电池中,均可以在高的电流密度下实现稳定的循环。我们相信这一复合的集流体构建策略对于设计安全稳定的锂金属电池或器件具有重要意义。  相似文献   

2.
全固态无负极锂金属电池(AFSSLB)是一种通过初次充电形成金属锂负极的新型锂电池,它的负极与正极容量比为1,能使任意锂化正极系统达到最大能量密度。无机固态电解质的引入使无负极锂金属体系兼具高安全性。然而,电池循环过程中的锂离子通量不均导致的界面接触损失和锂枝晶生长会不断加剧,从而造成电池循环容量迅速衰减。本文构筑了纳米化的银碳复合集流体,显著增强了全固态无负极锂金属电池中集流体-电解质界面的性能。使用该集流体的固态电池循环过程中接触良好,界面阻抗为~10?·cm-2。从而实现了超过7.0mAh·cm-2锂金属的均匀稳定沉积,并在0.25mA·cm-2的电流条件下实现循环200次以上。  相似文献   

3.
随着电动汽车和便携式电子产品的快速发展, 人们对于高比能二次电池的需求越来越迫切. 锂金属以其极高的理论比容量和极低的电极电势被视为下一代高比能电池理想负极材料之一. 但是, 锂枝晶的生长及体积膨胀等问题限制了金属锂负极的实际应用. 在金属锂负极中引入三维骨架可以有效抑制锂枝晶生长, 缓解体积膨胀. 其中亲锂骨架可以降低锂的形核能垒, 诱导锂的均匀成核, 更加有效地调控锂沉积行为. 本文结合国内外的研究进展总结了锂金属负极中亲锂骨架的研究成果. 根据亲锂材料的不同对亲锂骨架进行了分类, 总结了各类亲锂骨架在调控锂沉积行为和提高电池性能方面取得的成果, 并对其今后的研究和发展进行了展望.  相似文献   

4.
将轻质、三维多孔且亲锂的泡沫铝用作锂(Li)金属负极骨架,通过简单的机械挤压方法,将泡沫铝与金属Li复合,制得Al@Li复合负极。泡沫铝自身的高亲锂性,能够为Li金属成核提供丰富且均匀的活性位点,诱导Li在泡沫铝内部的快速成核和均匀电沉积。同时,泡沫铝的三维多孔结构,可以容纳Li金属负极在充放电过程中的巨大体积应变,降低局部电流密度,从而有效抑制Li枝晶的生长。因此,与纯Li金属负极相比,所获得的Al@Li复合负极在对称电池和LiFePO4||Al@Li半电池中,均表现出了更加优异的循环稳定性。  相似文献   

5.
将轻质、三维多孔且亲锂的泡沫铝用作锂(Li)金属负极骨架,通过简单的机械挤压方法,将泡沫铝与金属 Li复合,制得Al@Li复合负极。泡沫铝自身的高亲锂性,能够为Li金属成核提供丰富且均匀的活性位点,诱导Li在泡沫铝内部的快速成核和均匀电沉积。同时,泡沫铝的三维多孔结构,可以容纳Li金属负极在充放电过程中的巨大体积应变,降低局部电流密度,从而有效抑制Li枝晶的生长。因此,与纯Li金属负极相比,所获得的Al@Li复合负极在对称电池和LiFePO4||Al@Li半电池中,均表现出了更加优异的循环稳定性。  相似文献   

6.
锂金属作为下一代储能电池的理想负极材料一直受到极大的关注,然而锂枝晶的不可控生长和负极副反应带来的低库伦效率问题严重限制了锂金属电池的发展。这里,我们提出了一种多孔泡沫铜和硫脲协同作用的策略,利用硫脲分子的超填充作用实现锂金属在多孔泡沫铜表面的均匀沉积。在电解液中添加0.02 mol·L-1硫脲作为电解质添加剂,采用多孔泡沫铜的Li||Cu半电池在循环300圈以后,库伦效率仍保持在98%以上。此外,在5C的高倍率条件下,Li||Li FePO4全电池循环300圈以后仍有94%的容量保持率。本工作为锂金属负极保护提供了一种新的策略并且该策略也可以扩展到其他金属负极保护中,非常有利于下一代高能量密度储能电池的开发。  相似文献   

7.
对高比能量锂离子电池需求的不断增加激发了锂金属负极的应用研究。锂金属具有高放电比容量(3860 mAh·g?1),低电极电位(?3.04 V),是锂离子电池的理想负极材料。然而,锂金属在循环过程中会形成不稳定的固态电解质(SEI)膜,而且会生成枝晶,枝晶的生长会引发电池短路等安全问题,极大地阻碍了其应用。理想的SEI膜应具有良好的锂离子传导性、表面电子绝缘性和机械强度,可调控锂离子在表面均匀沉积,促进离子传输,抑制枝晶生长,因此构筑功能化SEI膜是解决锂金属负极所面临挑战的一项有效策略。本综述以锂金属枝晶形成和生长的机理为出发点,分析总结SEI膜的构建策略、不同组成SEI膜的结构和功能特性及其对锂金属负极性能的影响,并对锂金属实用化面临的挑战及未来发展方向进行了展望。  相似文献   

8.
金属锂具有超高理论比容量密度(3680 mA·h·g?1)和低还原电位(?3.04 V vs.SHE),被认为是高能量密度电池负极材料的“圣杯”.然而,由于锂枝晶不可控生长和对电解质高反应性导致的库仑效率低、循环寿命短及内短路等问题严重制约着金属锂负极的实用化进展.在实际的电化学体系中,集流体作为金属锂沉积/脱出的基底,其表面性质对锂负极的循环稳定性起着至关重要的作用.本文从负极、集流体表面成分以及微结构设计两方面系统总结了构建三维亲锂骨架材料的改性策略.利用金属、金属氧化物、杂原子掺杂、聚合物材料及有机框架材料等高亲锂材料对集流体和负极的界面及结构进行针对性调控修饰,可以有效调控金属锂的电沉积,推进金属锂负极在高能量密度电池体系中的实用化进程.  相似文献   

9.
锂金属具有理论比容量高、电位低等优点,被认为是电极中的“圣杯”。然而,锂金属负极在循环过程当中存在着不可控的枝晶生长、体积膨胀等问题,严重地阻碍了锂金属电池的商业化进程。本综述首先概述了锂枝晶的形成机理,然后对由小及大,自内而外,总结了近年来三种不同层次的锂金属电池复合负极:锂金属负极内部结构的复合、锂金属电池内部结构的复合以及锂金属电池内部环境与外界操作条件的复合。最后,本综述对未来多层次锂金属电池复合负极的前景做出了展望。  相似文献   

10.
锂金属因其具有超高比容量(3860 mAh·g-1)以及较低的氧化还原电势(-3.04 V vs 标准氢电极),被认为是下一代高能量密度二次电池的理想负极材料。然而“无宿主”的金属锂在金属/电解液界面层进行沉积/剥离,不可避免地会生长枝晶,不仅使电极表面电流分布不均,同时可能会刺穿电池隔膜而导致电池短路。通过构造三维集流体/锂金属复合负极可以有效调控锂沉积行为并抑制枝晶生长,从而提升电池的库仑效率、循环寿命以及倍率性能,该领域近年来一直都是研究的热点。本文首先总结了基于三维集流体抑制锂枝晶的相关原理和模型;其次针对用于负极的铜基集流体,根据构成三维结构基底单元的维度,总结了三维铜基集流体的制备方法及其在锂金属负极保护方面的应用;最后,对三维集流体构造复合锂负极进行了总结和展望。  相似文献   

11.
The garnet electrolyte presents poor wettability with Li metal, resulting in an extremely large interfacial impedance and drastic growth of Li dendrites. Herein, a novel ultra-stable conductive composite interface (CCI) consisting of LiySn alloy and Li3N is constructed in situ between Li6.4La3Zr1.4Ta0.6O12 (LLZTO) pellet and Li metal by a conversion reaction of SnNx with Li metal at 300 °C. The LiySn alloy as a continuous and robust bridge between LLZTO and Li metal can effectively reduce the LLZTO/Li interfacial resistance from 4468.0 Ω to 164.8 Ω. Meanwhile, the Li3N as a fast Li-ion channel can efficiently transfer Li ions and give their uniform distribution at the LLZTO/Li interface. Therefore, the Li/LLZTO@CCI/Li symmetric battery stably cycles for 1200 h without short circuit, and the all-solid-state high-voltage Li/LLZTO@CCI/LiNi0.5Co0.2Mn0.3O2 battery achieves a specific capacity of 161.4 mAh g−1 at 0.25 C with a capacity retention rate of 92.6 % and coulombic efficiency of 100.0 % after 200 cycles at 25 °C.  相似文献   

12.
The garnet electrolyte presents poor wettability with Li metal, resulting in an extremely large interfacial impedance and drastic growth of Li dendrites. Herein, a novel ultra‐stable conductive composite interface (CCI) consisting of LiySn alloy and Li3N is constructed in situ between Li6.4La3Zr1.4Ta0.6O12 (LLZTO) pellet and Li metal by a conversion reaction of SnNx with Li metal at 300 °C. The LiySn alloy as a continuous and robust bridge between LLZTO and Li metal can effectively reduce the LLZTO/Li interfacial resistance from 4468.0 Ω to 164.8 Ω. Meanwhile, the Li3N as a fast Li‐ion channel can efficiently transfer Li ions and give their uniform distribution at the LLZTO/Li interface. Therefore, the Li/LLZTO@CCI/Li symmetric battery stably cycles for 1200 h without short circuit, and the all‐solid‐state high‐voltage Li/LLZTO@CCI/LiNi0.5Co0.2Mn0.3O2 battery achieves a specific capacity of 161.4 mAh g?1 at 0.25 C with a capacity retention rate of 92.6 % and coulombic efficiency of 100.0 % after 200 cycles at 25 °C.  相似文献   

13.
Uneven lithium (Li) electrodeposition hinders the wide application of high-energy-density Li metal batteries (LMBs). Current efforts mainly focus on the side-reaction suppression between Li and electrolyte, neglecting the determinant factor of mass transport in affecting Li deposition. Herein, guided Li+ mass transport under the action of a local electric field near magnetic nanoparticles or structures at the Li metal interface, known as the magnetohydrodynamic (MHD) effect, are proposed to promote uniform Li deposition. The modified Li+ trajectories are revealed by COMSOL Multiphysics simulations, and verified by the compact and disc-like Li depositions on a model Fe3O4 substrate. Furthermore, a patterned mesh with the magnetic Fe−Cr2O3 core-shell skeleton is used as a facile and efficient protective structure for Li metal anodes, enabling Li metal batteries to achieve a Coulombic efficiency of 99.5 % over 300 cycles at a high cathode loading of 5.0 mAh cm−2. The Li protection strategy based on the MHD interface design might open a new opportunity to develop high-energy-density LMBs.  相似文献   

14.
Lithium metal batteries (LMBs) have attracted extensive attention owing to their high energy density. However, the uncontrolled volume changes and serious dendrite growth of the Li metal anode have hindered their commercialization. Herein, a three-dimensional Cu foam decorated with Au nanoparticles and conformal graphene layer was designed to tune the Li plating/stripping behaviors. The 3D−Cu conductive host anchored by lithiophilic Au nanoparticles can effectively alleviate the volume expansion caused by the continuous plating/stripping of Li and reduce the nucleation energy barrier. Notably, the conductive graphene not only facilitates the transfer of electrons, but also acts as an ionic rectifier, thereby avoiding the aggregation of local current density and Li+ ions around Au nanoparticles and enabling the uniform Li+ flux. As a result, the G−Au@3D−Cu/Li anode ensures the non-dendritic and homogeneous Li+ plating/stripping. Electrochemical results show that the symmetric G−Au@3D−Cu/Li cell delivers a low voltage hysteresis of 110 mV after 1000 h at 1 mA cm−2. Matched with a layered LiNi0.6Co0.2Mn0.2O2 cathode, the NCM622||G−Au@3D−Cu/Li full cell exhibits a long cycle life of 2000 cycles and an ultra-low capacity decay rate (0.01 % per cycle).  相似文献   

15.
A proof‐of‐concept study on a liquid/liquid (L/L) two‐phase electrolyte interface is reported by using the polarity difference of solvent for the protection of Li‐metal anode with long‐term operation over 2000 h. The L/L electrolyte interface constructed by non‐polar fluorosilicane (PFTOS) and conventionally polar dimethyl sulfoxide solvents can block direct contact between conventional electrolyte and Li anode, and consequently their side reactions can be significantly eliminated. Moreover, the homogeneous Li‐ion flow and Li‐mass deposition can be realized by the formation of a thin and uniform solid‐electrolyte interphase (SEI) composed of LiF, LixC, LixSiOy between PFTOS and Li anode, as well as the super‐wettability state of PFTOS to Li anode, resulting in the suppression of Li dendrite formation. The cycling stability in a lithium–oxygen battery as a model is improved 4 times with the L/L electrolyte interface.  相似文献   

16.
《中国化学快报》2023,34(2):107594
Li metal has been regarded as the holy grail for the next-generation Li-ion battery. Li dendrites issues, however, impede its practical application. In general, prolonging the sand time of Li nucleation and regulating homogeneous Li+ flux are effective approaches to suppress the dendrites formation and growth. Regarding this view, a functional polypropylene (PP) separator is developed to regulate ion transportation via a newly designed Li-based metal-organic framework (Li-MOF) coating. The Li-MOF crystallizes in the orthorhombic space group P212121 and features a double-walled three-dimensional (3D) structure with 1D channels. The well-defined intrinsic nanochannels of Li-MOF and the steric-hinerance effect both restrict free migration of anions, contributing to a high Li+ transference number of 0.65, which improve the Sand time of Li nucleation. Meanwhile, the Li-MOF coating with uniform porous structure promotes homogeneous Li+ flux at the surface of Li metal. Furthermore, the Li-MOF coating layer helps to build solid-electrolyte interphase (SEI) layer that comprises of inorganic LiF and Li3N, which further prohibits the dendrites growth. Consequently, a highly stable Li plating/stripping cycling for over 1000 h is achieved. The functional separator also enables high-performance full lithium metal cells, the high-rate and long-stable cycling performance of LiNi0.8Mn0.1Co0.1 (NMC811)-Li and LiCoO2 (LCO)-Li cells further demonstrate the feasibility of this concept.  相似文献   

17.
Pursuing high power density lithium metal battery with high safety is essential for developing next-generation energy-storage devices, but uncontrollable electrolyte degradation and the consequence formed unstable solid-electrolyte interface (SEI) make the task really challenging. Herein, an ionic liquid (IL) confined MOF/Polymer 3D-porous membrane was constructed for boosting in situ electrochemical transformations of Janus-heterarchical LiF/Li3N-rich SEI films on the nanofibers. Such a 3D-Janus SEI-incorporated into the separator offers fast Li+ transport routes, showing superior room-temperature ionic conductivity of 8.17×10−4 S cm−1 and Li+ transfer number of 0.82. The cryo-TEM was employed to visually monitor the in situ formed LiF and Li3N nanocrystals in SEI and the deposition of Li dendrites, which is greatly benefit to the theoretical simulation and kinetic analysis of the structural evolution during the battery charge and discharge process. In particular, this membrane with high thermal stability and mechanical strength used in solid-state Li||LiFePO4 and Li||NCM-811 full cells and even in pouch cells showed enhanced rate-performance and ultra-long life spans.  相似文献   

18.
The practical application of Li–S batteries demands low cell balance (Licapacity/Scapacity), which involves uniform Li growth, restrained shuttle effect, and fast redox reaction kinetics of S species simultaneously. Herein, with the aid of W2C nanocrystals, a freestanding 3D current collector is applied as both Li and S hosts owing to its lithiophilic and sulfilic property. On the one hand, the highly conductive W2C can reduce Li nucleation overpotentials, thus guiding uniform Li nucleation and deposition to suppress Li dendrite growth. On the other hand, the polar W2C with catalytic effect can enhance the chemisorption affinity to lithium polysulfides (LiPSs) and guarantee fast redox kinetics to restrain S species in cathode region and promote the utilization of S. Surprisingly, a full Li–S battery with ultralow cell balance of 1.5:1 and high sulfur loading of 6.06 mg cm−2 shows obvious redox plateaus of S and maintains high reversible specific capacity of 1020 mAh g−1 (6.2 mAh cm−2) after 200 cycles. This work may shed new sights on the facile design of full Li–S battery with low excessive Li supply.  相似文献   

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