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Utilizing BBr_(3)plasma to create high-quality solid electrolyte interphases for enhanced lithium metal anodes
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作者 Xueqi Du Ge Gao +7 位作者 Guoxiang Pan Zhong Qiu Yongqi Zhang Shenghui Shen Tianqi Yang Xinqi Liang Ping Liu Xinhui Xia 《Chinese Chemical Letters》 2025年第11期557-562,共6页
The escalating demand for advanced energy storage solutions has positioned lithium metal anodes at the forefront of battery technology research.However,the practical implementation of lithium metal anodes is impeded b... The escalating demand for advanced energy storage solutions has positioned lithium metal anodes at the forefront of battery technology research.However,the practical implementation of lithium metal anodes is impeded by challenges such as dendrite formation and the inherent instability of the native oxide layer.This study introduces a novel liquid-source plasma technique to create a high-quality solid electrolyte interphase(SEI)composed of LiBr and LiBO_(2).According to first-principal calculation,LiBO_(2)optimizes the electrochemical dynamics and LiBr improves Li diffusion at the interfaces,thus protecting the Li metal from severe Li dendrite growth.This well-designed artificial SEI endows the Li metal with remarkable cycling stability over 550 cycles at a current density of 1 m A/cm^(2),significantly superior to the bare Li anode.Meanwhile,the full cell paired with a high-voltage LiNi_(0.8)Co_(0.1)Mn_(0.1)O_(2)cathode delivers long-term stability with capacity retention(78%after 200 cycles)at 1 C and excellent rate performance.The findings highlight the importance of interface engineering in optimizing battery performance and longevity. 展开更多
关键词 BBr_(3) PLASMA Artificial solid electrolyte interphases Lithium metal anodes In situ
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Recent progress in constructing fluorinated solid-electrolyte interphases for stable lithium metal anodes
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作者 Di Zhang Pengfei Lv +2 位作者 Wei Qin Xin He Yuanhua He 《International Journal of Minerals,Metallurgy and Materials》 SCIE EI CAS 2025年第2期270-291,共22页
Lithium metal batteries(LMBs)are emerging as a promising energy storage solution owing to their high energy density and specific capacity.However,the non-uniform plating of lithium and the potential rupture of the sol... Lithium metal batteries(LMBs)are emerging as a promising energy storage solution owing to their high energy density and specific capacity.However,the non-uniform plating of lithium and the potential rupture of the solid-electrolyte interphase(SEI)during extended cycling use may result in dendrite growth,which can penetrate the separator and pose significant short-circuit risks.Forming a stable SEI is essential for the long-term operation of the batteries.Fluorine-rich SEI has garnered significant attention for its ability to effectively passivate electrodes,regulate lithium deposition,and inhibit electrolyte corrosion.Understanding the structural components and preparation methods of existing fluorinated SEI is crucial for optimizing lithium metal anode performance.This paper reviews the research on optimizing LiF passivation interfaces to protect lithium metal anodes.It focuses on four types of compositions in fluorinated SEI that work synergistically to enhance SEI performance.For instance,combining compounds with LiF can further enhance the mechanical strength and ionic conductivity of the SEI.Integrating metals with LiF significantly improves electrochemical performance at the SEI/anode interface,with a necessary focus on reducing electron tunneling risks.Additionally,incorporating polymers with LiF offers balanced improvements in interfacial toughness and ionic conductivity,though maintaining structural stability over long cycles remains a critical area for future research.Although alloys combined with LiF increase surface energy and lithium affinity,challenges such as dendrite growth and volume expansion persist.In summary,this paper emphasizes the crucial role of interfacial structures in LMBs and offers comprehensive guidance for future design and development efforts in battery technology. 展开更多
关键词 LIF lithium metal anodes solid-electrolyte interphase interface cycling stability
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Towards high-performance lithium metal anodes via the modification of solid electrolyte interphases 被引量:9
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作者 Zhen Hou Jiaolong Zhang +3 位作者 Wenhui Wang Qianwen Chen Baohua Li Chaolin Li 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2020年第6期7-17,I0001,共12页
Li metal has been regarded as one of the most promising anodes for high-energy-density storage systems due to its high theoretical capacity and lowest electrochemical potential.Unfortunately,an unstable and non-unifor... Li metal has been regarded as one of the most promising anodes for high-energy-density storage systems due to its high theoretical capacity and lowest electrochemical potential.Unfortunately,an unstable and non-uniform solid electrolyte interphase(SEI)deriving from the spontaneous reaction between Li metal anode and electrolyte causes uneven Li deposition,resulting in the growth of Li dendrites and low Coulombic efficiency,which have greatly hindered the practical application of Li metal batteries.Thus,the construction of a stable SEI is an effective approach to suppress the growth of Li dendrites and enhance the electrochemical performances of Li metal anode.In this review,we firstly introduce the formation process of inferior SEI of Li metal anode and the corresponding challenges caused by the unstable SEI.Next,recent progresses to modify SEI layer through the regulation of electrolyte compositions and exsitu protective coating are summarized.Finally,the remained issues,challenges,and perspectives are also proposed on the basis of current research status and progress. 展开更多
关键词 Li metal ANODE Coulombic efficiency DENDRITES Solid ELECTROLYTE interphases Coating
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Mechanical and electromagnetic wave absorption properties of Cf-Si3N4 ceramics with PyC/SiC interphases 被引量:7
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作者 Wei Zhou Lan Long Yang Li 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2019年第12期2809-2813,共5页
Aiming to obtain microwave absorbing materials with excellent mechanical and microwave absorption properties, carbon fiber reinforced Si3N4 ceramics(Cf-Si3N4) with pyrolytic carbon(PyC)/SiC interphases were fabricated... Aiming to obtain microwave absorbing materials with excellent mechanical and microwave absorption properties, carbon fiber reinforced Si3N4 ceramics(Cf-Si3N4) with pyrolytic carbon(PyC)/SiC interphases were fabricated by gel casting. The influences of carbon fibers content on mechanical and microwave absorption properties of as-prepared Si3N4 based ceramics were investigated. Results show that chemical compatibility between carbon fibers and Si3N4 matrix in high temperature environment can be significantly improved after introduction of Py C/SiC interphases. As carbon fibers content increases from 0 to 4 wt%, flexural strength of Si3N4 based ceramics decreases slightly while fracture toughness obviously increases. Moreover, both the real and imaginary parts of complex permittivity increase with the rising of carbon fibers content within the frequency range of 8.2–12.4 GHz. Investigation of microwave absorption shows that the microwave attenuation ability of Cf-Si3N4 ceramics with Py C/SiC interphases is remarkably enhanced compared with pure Si3N4 ceramics. Effective absorption bandwidth(<-10 d B) of10.17–12.4 GHz and the minimum reflection less of-19.6 d B are obtained for Si3N4 ceramics with 4 wt%carbon fibers in 2.0 mm thickness. Cf-Si3N4 ceramics with Py C/SiC interphases are promising candidates for microwave absorbing materials with favorable mechanical property. 展开更多
关键词 Silicon nitride Carbon fibers PyC/SiC interphases Mechanical properties Microwave absorption
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Regulating solid electrolyte interphases on phosphorus/carbon anodes via localized high-concentration electrolytes for potassium-ion batteries 被引量:1
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作者 Wei Xiao Peiyi Shi +7 位作者 Zhengkui Li Chong Xie Jian Qin Huijuan Yang Jingjing Wang Wenbin Li Jiujun Zhang Xifei Li 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2023年第3期589-605,I0016,共18页
The resourceful and inexpensive red phosphorus has emerged as a promising anode material of potassium-ion batteries(PIBs) for its large theoretical capacities and low redox potentials in the multielectron alloying/dea... The resourceful and inexpensive red phosphorus has emerged as a promising anode material of potassium-ion batteries(PIBs) for its large theoretical capacities and low redox potentials in the multielectron alloying/dealloying reactions,yet chronically suffering from the huge volume expansion/shrinkage with a sluggish reaction kinetics and an unsatisfactory interfacial stability against volatile electrolytes.Herein,we systematically developed a series of localized high-concentration electrolytes(LHCE) through diluting high-concentration ether electrolytes with a non-solvating fluorinated ether to regulate the formation/evolution of solid electrolyte interphases(SEI) on phosphorus/carbon(P/C) anodes for PIBs.Benefitting from the improved mechanical strength and structural stability of a robust/uniform SEI thin layer derived from a composition-optimized LHCE featured with a unique solvation structure and a superior K+migration capability,the P/C anode with noticeable pseudocapacitive behaviors could achieve a large reversible capacity of 760 mA h g^(-1)at 100 mA g^(-1),a remarkable capacity retention rate of 92.6% over 200 cycles at 800 mA g^(-1),and an exceptional rate capability of 334 mA h g^(-1)at8000 mA g^(-1).Critically,a suppressed reduction of ether solvents with a preferential decomposition of potassium salts in anion-derived interfacial reactions on P/C anode for LHCE could enable a rational construction of an outer organic-rich and inner inorganic-dominant SEI thin film with remarkable mechanical strength/flexibility to buffer huge volume variations and abundant K+diffusion channels to accelerate reaction kinetics.Additionally,the highly reversible/durable full PIBs coupling P/C anodes with annealed organic cathodes further verified an excellent practical applicability of LHCE.This encouraging work on electrolytes regulating SEI formation/evolution would advance the development of P/C anodes for high-performance PIBs. 展开更多
关键词 Potassium-ion batteries Phosphorus/carbon anodes Localized high-concentration electrolytes Solid electrolyte interphases Interfacial stability
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Analysis of lattices with non-linear interphases
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作者 S. Haq A. B. Movchan G. J. Rodin 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2006年第4期323-330,共8页
Anti-plane deformation of square lattices containing interphases is analyzed. It is assumed that lattices are linear elastic but not necessarily isotropic, whereas interphases exhibit non-linear elastic behavior. It i... Anti-plane deformation of square lattices containing interphases is analyzed. It is assumed that lattices are linear elastic but not necessarily isotropic, whereas interphases exhibit non-linear elastic behavior. It is demonstrated that such problems can be treated effectively using Green's functions, which allow to eliminate the degrees of freedom outside of the interphase. Illustrative numerical examples focus on the determination of applied stresses leading to lattice instability. 展开更多
关键词 interphases in lattices Stability Green's functions Evolution algroithm
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Artificial interphases enable dendrite-free Li-metal anodes 被引量:4
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作者 Qiankui Zhang Si Liu +2 位作者 Yitong Lu Lidan Xing Weishan Li 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2021年第7期198-206,共9页
Li-metal is an ideal anode that can provide rechargeable batteries with high energy density,but its application in large scale is restricted by its high activity that leads to the severe decomposition of electrolyte c... Li-metal is an ideal anode that can provide rechargeable batteries with high energy density,but its application in large scale is restricted by its high activity that leads to the severe decomposition of electrolyte components(solvents and salts) and the growth of Li dendrites.These parasitic reactions are responsible for the cycle life deterioration and the safety accidents of rechargeable Li-metal batteries.Correspondingly,much effort has been made to regulate Li/electrolyte interface chemistry.In this review,we summarize some strategies that have been developed recently to stabilize Li/electrolyte interface by constructing protective interphases on Li-metal anodes.Firstly,the currently available understandings on the instability of Li/electrolyte interface are outlined.Then,artificial interphases recently constructed exsitu and in-situ are illustrated in detail.Finally,possible approaches to acquire more efficiently protective interphases are prospected. 展开更多
关键词 Li-metal battery ANODE DENDRITE Interface chemistry INTERPHASE
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Modeling of interphases in multiple heterogeneities reinforced composites using Voronoi cell finite elements 被引量:5
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作者 Rui Zhang Ting Wang Ran Guo 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2020年第4期887-901,共15页
In this paper,a Voronoi cell finite element model is developed to study the microscopic and macroscopic mechanical behaviors of heterogenous materials,including arbitrary distributed heterogeneity(inclusions or fibers... In this paper,a Voronoi cell finite element model is developed to study the microscopic and macroscopic mechanical behaviors of heterogenous materials,including arbitrary distributed heterogeneity(inclusions or fibers)coated with interphase layers,based on linear elasticity theory.The interphase between heterogeneity and a matrix are regarded as in the third phase(elastic layers),in contrast to the perfect interface of the spring-like Voronoi cell finite element model(VCFEM)in the literature.In this model,both stress and the displacement field are assumed to be independent in an element.Formulations of stress are derived for each of the three phases in an element,as is the type of functional.Numerical examples were used to study the microscopic and macroscopic properties,such as the effective modulus,of the composites.The results of the proposed VCFEM were compared with analytical solution and numerical results obtained from a standard finite element analysis to confirm its effectiveness. 展开更多
关键词 Voronoi cell finite element method INTERPHASE Multiple fiber composites Effective elastic property
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Protective electrode/electrolyte interphases for high energy lithium-ion batteries with p-toluenesulfonyl fluoride electrolyte additive 被引量:5
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作者 Yanxia Che Xiuyi Lin +6 位作者 Lidan Xing Xiongcong Guan Rude Guo Guangyuan Lan Qinfeng Zheng Wenguang Zhang Weishan Li 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2021年第1期361-371,I0012,共12页
High energy density lithium-ion batteries using Ni-rich cathode(such as LiNi0.6Co0.2Mn0.2O2) suffer from severe capacity decay.P-toluenesulfonyl fluoride(pTSF) has been investigated as a novel film-forming electrolyte... High energy density lithium-ion batteries using Ni-rich cathode(such as LiNi0.6Co0.2Mn0.2O2) suffer from severe capacity decay.P-toluenesulfonyl fluoride(pTSF) has been investigated as a novel film-forming electrolyte additive to enhance the cycling performances of graphite/LiNi0.6Co0.2Mn0.2O2 pouch cell.In comparison with the baseline electrolyte,a small dose of pTSF can significantly improve the cyclic stability of the cell.Theoretical calculations together with experimental results indicate that pTSF would be oxidized and reduced to construct protective interphase film on the surfaces of LiNi0.6Co0.2Mn0.2O2 cathode and graphite anode,respectively.These S-containing surface films derived from pTSF effectively mitigate the decomposition of electrolyte,reduce the interphasial impedance,as well as prevent the dissolution of transition metal ions from Ni-rich cathode upon cycling at high voltage.This finding is beneficial for the practical application of high energy density graphite/LiNi0.6Co0.2Mn0.2O2 cells. 展开更多
关键词 Lithium-ion batteries Electrolyte additive P-toluenesulfonyl fluoride Electrode/electrolyte interphase Graphite/LiNi0.6Co0.2Mn0.2O2
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Calcium-and sulfate-functionalized artificial cathode–electrolyte interphases of Ni-rich cathode materials 被引量:3
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作者 Kwangeun Jung Taeeun Yim 《Rare Metals》 SCIE EI CAS CSCD 2021年第10期2793-2801,共9页
Ni-rich lithium nickel–cobalt-manganese oxides(NCM) are considered the most promising cathode materials for lithium-ion batteries(LIBs);however, relatively poor cycling performance is a bottleneck preventing their wi... Ni-rich lithium nickel–cobalt-manganese oxides(NCM) are considered the most promising cathode materials for lithium-ion batteries(LIBs);however, relatively poor cycling performance is a bottleneck preventing their widespread use in energy systems. In this work, we propose the use of a dually functionalized surface modifier, calcium sulfate(CaSO_(4), CSO), in an efficient one step method to increase the cycling performance of Ni-rich NCM cathode materials. Thermal treatment of LiNi_(0.8)Co_(0.1)Mn_(0.1)O_(2)(NCM811) cathode materials with a CSO precursor allows the formation of an artificial Ca-and SO_(x)-functionalized cathode–electrolyte interphase(CEI) layer on the surface of Ni-rich NCM cathode materials. The CEI layer then inhibits electrolyte decomposition at the interface between the Ni-rich NCM cathode and the electrolyte. Successful formation of the CSO-modified CEI layer is confirmed by scanning electron microscopy(SEM) and Fourier transform infrared(FTIR) spectroscopy analyses, and the process does not affect the bulk structure of the Ni-rich NCM cathode material. During cycling, the CSO-modified CEI layer remarkably decreases electrolyte decomposition upon cycling at both room temperature and 45 ℃, leading to a substantial increase in cycling retention of the cells. A cell cycled with a 0.1 CSO-modified(modified with 0.1% CSO)NCM811 cathode exhibits a specific capacity retention of90.0%, while the cell cycled with non-modified NCM811 cathode suffers from continuous fading of cycling retention(74.0%) after 100 cycles. SEM, electrochemical impedance spectroscopy(EIS), X-ray photoelectron spectroscopy(XPS), and inductively coupled plasma mass spectrometry(ICP-MS) results of the recovered electrodes demonstrate that undesired surface reactions such as electrolyte decomposition and metal dissolution are well controlled in the cell because of the artificial CSO-modified CEI layer present on the surface of Ni-rich NCM811 cathodes. 展开更多
关键词 Lithium-ion battery CATHODE Cathode–electrolyte interphase Calcium sulfate Electrochemical performance
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Additive regulating Li^(+)solvation structure to construct dual LiF-rich electrode electrolyte interphases for sustaining 4.6 V Li||LiCoO_(2)batteries
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作者 Xi Tang Chunlei Zhu +4 位作者 Yulu Yang Shihan Qi Mengqiu Cai Abdullah N.Alodhayb Jianmin Ma 《Chinese Chemical Letters》 SCIE CAS CSCD 2024年第12期285-288,共4页
The battery energy density can be improved by raising the operating voltage,however,which may lead to rapid capacity decay due to the continuous electrolyte decomposition and the thickening of electrode electrolyte in... The battery energy density can be improved by raising the operating voltage,however,which may lead to rapid capacity decay due to the continuous electrolyte decomposition and the thickening of electrode electrolyte interphases.To address these challenges,we proposed tripropyl phosphate(TPP)as an additive-regulating Li~+solvation structure to construct a stable Li F–rich electrode carbonate-based electrolyte interphases for sustaining 4.6 V Li||LiCoO_(2)batteries.This optimized interphases could help reduce the resistance and achieve better rate performance and cycling stability.As expected,the Li||LiCoO_(2)battery retained 79.4%capacity after 100 cycles at 0.5 C,while the Li||Li symmetric cell also kept a stable plating/stripping process over 450 h at the current density of 1.0 mA/cm^(2)with a deposited amount of0.5 mAh/cm^(2). 展开更多
关键词 Lithium metal batteries Electrolyte additive Solid electrolyte interphase Cathode electrolyte interphase Solvation structure
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Liquid-source plasma technology for construction of dual bromine-fluorine-enriched interphases on lithium metal anodes with enhanced performance
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作者 Ping Liu Zhong Qiu +10 位作者 Feng Cao Yongqi Zhang Xinping He Shenghui Shen Xinqi Liang Minghua Chen Chen Wang Wangjun Wan Yang Xia Xinhui Xia Wenkui Zhang 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2024年第10期68-78,共11页
The electrochemical performance of Li metal anode is closely bound up with the interphase between Li and lithium-loaded skeleton as well as solid electrolyte interphase(SEI)on Li surface.Herein,for the first time,we p... The electrochemical performance of Li metal anode is closely bound up with the interphase between Li and lithium-loaded skeleton as well as solid electrolyte interphase(SEI)on Li surface.Herein,for the first time,we propose a novel liquid-source CHBr_(2)F plasma technology to simultaneously construct dual bromine-fluorine-enriched interphases:NiBr_(2)-NiF_(2) interphase on sponge Ni(SN)skeleton and LiBr-LiF-enriched SEI on Li anode,respectively.Based on density functional theory(DFT)calculations and COMSOL multiphysics simulation results,SN skeleton with NiBr_(2)-NiF_(2)interphase can effectively decrease the local current density with good lithiophilicity.And the LiBr-LiF-enriched SEI on Li surface can function to block electron tunneling and hinder side electrochemical reduction of electrolyte components,thus suppressing the growth of dendrite and facilitating the homogeneous transportation of lithium ions.Consequently,the Li/SN electrodes with modified interphases show remarkable stability with a low overpotential of 22.6 mV over 1800 h at 1 mA cm^(-2)/1 mAh cm^(-2)and an exceptional average Coulombic efficiency of 99.6%.When coupled with LiNi_(0.8)Co_(0.1)Mn_(0.1)O_(2)(NCM811)cathode,the full cells deliver improved cycling stability with a capacity retention of 79.5%even after 350 cycles at 0.5 C.This study provides a facile and new plasma method for the construction of advanced Li anodes for energy storage. 展开更多
关键词 Plasma Solid electrolyte interphase LIBR LIF Lithium metal anodes
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Voronoi Cell Finite Element Study on Particle-Reinforced Composites Containing Interphases Considering Both Interfacial Debonding and Thermal Stress
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作者 Jianfei Li Rui Zhang +1 位作者 Ran Guo Guohua Li 《Acta Mechanica Solida Sinica》 SCIE EI CSCD 2022年第6期1055-1067,共13页
This paper derives the complementary energy functional based on the Voronoi element of particle-reinforced composites containing interphases to compute the interfacial debonding and thermal stress.When calculating int... This paper derives the complementary energy functional based on the Voronoi element of particle-reinforced composites containing interphases to compute the interfacial debonding and thermal stress.When calculating interfacial debonding stress,it is assumed that the surface force is zero at the interface where debonding occurs,and a new modified complementary energy functional is derived with this boundary condition.When considering the thermal stress due to temperature change,the thermal strain is introduced into the complementary energy functional,and the thermal stress is then calculated.According to the derived formula,a Fortran program named Voronoi cell finite element model(VCFEM)is written.The interfacial debonding and thermal stress is calculated using both VCFEM and the finite element software MARC,and the calculation results are compared.It shows that the calculation results of the VCFEM are roughly comparable to those of the MARC,verifying the effectiveness of the VCFEM. 展开更多
关键词 VORONOI VCFEM INTERPHASE Interfacial debonding Thermal stress
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ANALYTICAL SOLUTIONS FOR ELASTOSTATIC PROBLEMS OF PARTICLE-AND FIBER-REINFORCED COMPOSITES WITH INHOMOGENEOUS INTERPHASES
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作者 段慧玲 王建祥 +1 位作者 黄筑平 黄红波 《Applied Mathematics and Mechanics(English Edition)》 SCIE EI 2005年第3期336-344,共9页
By transforming the governing equations for displacement components into Riccati equations, analytical solutions for displacements, strains and stresses for Representive Volume Elements (RVEs) of particle_ and fiber_r... By transforming the governing equations for displacement components into Riccati equations, analytical solutions for displacements, strains and stresses for Representive Volume Elements (RVEs) of particle_ and fiber_reinforced composites containing inhomo geneous interphases were obtained. The analytical solutions derived here are new and general for power_law variations of the elastic moduli of the inhomogeneous interphases. Given a power exponent, analytical expressions for the bulk moduli of the composites with inho mogeneous interphases can be obtained. By changing the power exponent and the coefficients of the power terms, the solutions derived here can be applied to inhomogeneous interphases with many different property profiles. The results show that the modulus variation and the thickness of the inhomogeneous interphase have great effect on the bulk moduli of the composites. The particle will exhibit a sort of “size effect”, if there is an interphase. 展开更多
关键词 inhomogeneous interphase particle-reinforced composite fiber-reinforced composite analytical solution bulk modulus
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In situ high-quality LiF/Li_(3)N inorganic and phenyl-based organic solid electrolyte interphases for advanced lithium–oxygen batteries
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作者 Qianyan Wang Minsheng Wu +7 位作者 Yunkai Xu Chuyue Li Yuanjia Rong Yaling Liao Menglin Gao Xiaoping Zhang Weirong Chen Jun Lu 《Carbon Energy》 SCIE EI CAS CSCD 2024年第9期29-38,共10页
Lithium metal shows a great advantage as the most promising anode for its unparalleled theoretical specific capacity and extremely low electrochemical potential.However,uncontrolled lithium dendrite growth and severe ... Lithium metal shows a great advantage as the most promising anode for its unparalleled theoretical specific capacity and extremely low electrochemical potential.However,uncontrolled lithium dendrite growth and severe side reactions of the reactive intermediates and organic electrolytes still limit the broad application of lithium metal batteries.Herein,we propose 4-nitrobenzenesulfonyl fluoride(NBSF)as an electrolyte additive for forming a stable organic-inorganic hybrid solid electrolyte interphase(SEI)layer on the lithium surface.The abundance of lithium fluoride and lithium nitride can guarantee the SEI layer's toughness and high ionic conductivity,achieving dendrite-free lithium deposition.Meanwhile,the phenyl group of NBSF significantly contributes to both the chemical stability of the SEI layer and the good adaptation to volume changes of the lithium anode.The lithium-oxygen batteries with NBSF exhibit prolonged cycle lives and excellent cycling stability.This simple approach is hoped to improve the development of the organic-inorganic SEI layer to stabilize the lithium anodes for lithium-oxygen batteries. 展开更多
关键词 lithium anode lithium-oxygen batteries reactive oxygen species solid electrolyte interphase
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Tailored Interphases Construction for Enhanced Si Anode and Ni-Rich Cathode Performance in Lithium-Ion Batteries 被引量:1
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作者 Yuxiang Huang Yuchen Ji +8 位作者 Guorui Zheng Hongbin Cao Haoyu Xue Xiangming Yao Lu Wang Shiming Chen Zuwei Yin Feng Pan Luyi Yang 《CCS Chemistry》 2025年第2期429-439,共11页
As promising candidates for high-energy-density lithium-ion batteries,both silicon(Si)anodes and nickel-rich cathodes face significant challenges due to structural instability arising from interphases.In this study,we... As promising candidates for high-energy-density lithium-ion batteries,both silicon(Si)anodes and nickel-rich cathodes face significant challenges due to structural instability arising from interphases.In this study,we introduced tetravinylsilane(TVSi)as a multifunctional electrolyte additive to engineer tai-lored interphases simultaneously on Si anode and LiNi_(0.92)Mn_(0.05)Co_(0.03)O_(2)cathode,thereby enhancing their electrochemical performance.On one front,TVSi underwent polymerization,leading to the for-mation of a composite solid electrolyte interphase(SEI)with an interpenetrating network structure on the Si surface.This SEI effectively accommodated volume changes during cycling,which inhibited SEI growth,hence,preserving the battery capacity.On the other hand,the TVSi-induced cathode electrolyte interphase(CEI)exhibited a dense structure com-prising a chemically bonded silicate-silane polymer.This CEI effectively mitigated transition metal disso-lution by scavenging hydrofluoric acid(HF)and re-duced irreversible phase transitions by minimizing side reactions.As a result of the enhanced interfacial stability achieved on both electrodes,TVSi enabled improved performance in full cells fabricated with a LiNi_(0.92)Mn_(0.05)Co_(0.03)O_(2)cathode paired with a Si anode.This multifunctional additive strategy offers a novel perspective on additive design for high-energy-density lithium-ion batteries,showcasing its potential for advancing battery technology. 展开更多
关键词 electrolyte additive solid electrolyte interphase cathode electrolyte interphase in situ interface characterization lithium-ion battery
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Solid-electrolyte interphases for all-solid-state batteries
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作者 Yu Xia Xu Han +9 位作者 Yue Ji Simeng Zhang Saiqi Wei Yue Gong Junyi Yue Yueyue Wang Xiaona Li Zhiqiang Fang Changtai Zhao Jianwen Liang 《ChemPhysMater》 2025年第1期9-29,共21页
Interfacial engineering,particularly the design of artificial solid-electrolyte interphases(SEIs),has been successfully applied in all-solid-state batteries(ASSLBs)for industrial applications.However,a fundamental und... Interfacial engineering,particularly the design of artificial solid-electrolyte interphases(SEIs),has been successfully applied in all-solid-state batteries(ASSLBs)for industrial applications.However,a fundamental understanding of the synthesis and mechanism models of artificial SEIs in all-solid-state Li-ion batteries remains limited.In this review,recent advances in designing and synthesizing artificial SEIs for ASSLBs to solve interfacial issues are thoroughly discussed,covering three main preparation methods and their technical routes:1)atomic layer deposition,2)sol-gel methods,and 3)mechanical ball-milling methods.Moreover,advanced ex-situ characterization techniques for artificial SEIs are comprehensively summarized.Finally,this review provides perspectives on techniques for the interface engineering of artificial SEIs for ASSLBs,with focus on promising methods for industrial applications. 展开更多
关键词 All-solid-state lithium batteries Interfacial engineering Solid-electrolyte interphase Atomic layer deposition Sol-gel Mechanical ball-milling
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Regulating anion chemistry in electrolytes from molecular principles to interphases engineering for high energy batteries
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作者 Huipeng Zeng Kai Yu +2 位作者 Ruifan Lin Hao Zhang Jijian Xu 《Science China Chemistry》 2025年第12期6307-6327,共21页
Anion chemistry in electrolytes has recently attracted increasing attention due to its important role in governing solvation structure,interfacial reactions,and the formation of anion-derived electrode-electrolyte int... Anion chemistry in electrolytes has recently attracted increasing attention due to its important role in governing solvation structure,interfacial reactions,and the formation of anion-derived electrode-electrolyte interphases.However,it remains challenging to elucidate the influence of anion coordination on the solvation dynamics and its correlation with interfacial reactions,and design principles for constructing anion-modulated solvation structures are still lacking.In this review,the coordination mechanism of anions in electrolyte solvation structures is elaborated in detail,as well as their effects on the electrochemical stability window of electrolytes,transport dynamics of solvation structures,and interfacial chemistry.We summarize universal strategies for regulating the interactions between electrolyte components to achieve anion-modulated solvation,with particular emphasis on salt design and solvent-anion interaction tuning.Furthermore,the influence of anions on the redox potential of solvation structures was correlated with interfacial behavior,while the resulting interphases and interfacial kinetics under anion chemistry are elucidated.Advances in characterization methods and their integration with simulations are also discussed,providing new opportunities for probing the dynamic evolution of anions in real time.By tuning the spotlight on anions,this review offers a unique perspective and theoretical foundation for electrolyte design for next-generation high-energydensity batteries. 展开更多
关键词 electrolyte design anion chemistry solvation structure electrode-electrolyte interphase
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Liquid-phase sintering enabling mixed ionic-electronic interphases and free-standing composite cathode architecture toward high energy solid-state battery 被引量:1
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作者 Xiang Han Weijun Zhou +7 位作者 Minfeng Chen Linshan Luo Lanhui Gu Qiaobao Zhang Jizhang Chen Bo Liu Songyan Chen Wenqing Zhang 《Nano Research》 SCIE EI CSCD 2022年第7期6156-6167,共12页
Solid-state batteries(SSBs)will potentially offer increased energy density and,more importantly,improved safety for next generation lithium-ion(Li-ion)batteries.One enabling technology is solid-state composite cathode... Solid-state batteries(SSBs)will potentially offer increased energy density and,more importantly,improved safety for next generation lithium-ion(Li-ion)batteries.One enabling technology is solid-state composite cathodes with high operating voltage and area capacity.Current composite cathode manufacturing technologies,however,suffer from large interfacial resistance and low active mass loading that with excessive amounts of polymer electrolytes and conductive additives.Here,we report a liquidphase sintering technology that offers mixed ionic-electronic interphases and free-standing electrode architecture design,which eventually contribute to high area capacity.A small amount(~4 wt.%)of lithium hydroxide(LiOH)and boric acid(H_(3)BO_(3))with low melting point are utilized as sintering additives that infiltrate into single-crystal Ni-rich LiNi_(0.8)Mn_(0.1)Co_(0.1)(NMC811)particles at a moderately elevated temperature(~350℃)in a liquid state,which not only enable intimate physical contact but also promote the densification process.In addition,the liquid-phase additives react and transform to ionic-conductive lithium boron oxide,together with the indium tin oxide(ITO)nanoparticle coating,mixed ionic-electronic interphases of composite cathode are successfully fabricated.Furthermore,the liquid-phase sintering performed at high-temperature(~800℃)also enables the fabrication of highly dense and thick composite cathodes with a novel free-standing architecture.The promising performance characteristics of such composite cathodes,for example,delivering an area capacity above 8 mAh·cm^(−2) within a wide voltage window up to 4.4 V,open new opportunities for SSBs with a high energy density of 500 Wh·kg^(−1) for safer portable electronic and electrical transport. 展开更多
关键词 solid-state battery single-crystal Ni-rich LiNi_(0.8)Mn_(0.1)Co_(0.1) liquid-phase sintering mixed ionic-electronic interphases freestanding architecture
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Low-Temperature Electrolytes for Lithium-Ion Batteries:Current Challenges,Development,and Perspectives
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作者 Yang Zhao Limin Geng +1 位作者 Weijia Meng Jiaye Ye 《Nano-Micro Letters》 2026年第2期692-741,共50页
Lithium-ion batteries(LIBs),while dominant in energy storage due to high energy density and cycling stability,suffer from severe capacity decay,rate capability degradation,and lithium dendrite formation under low-temp... Lithium-ion batteries(LIBs),while dominant in energy storage due to high energy density and cycling stability,suffer from severe capacity decay,rate capability degradation,and lithium dendrite formation under low-temperature(LT)operation.Therefore,a more comprehensive and systematic understanding of LIB behavior at LT is urgently required.This review article comprehensively reviews recent advancements in electrolyte engineering strategies aimed at improving the low-temperature operational capabilities of LIBs.The study methodically examines critical performance-limiting mechanisms through fundamental analysis of four primary challenges:insufficient ionic conductivity under cryogenic conditions,kinetically hindered charge transfer processes,Li+transport limitations across the solidelectrolyte interphase(SEI),and uncontrolled lithium dendrite growth.The work elaborates on innovative optimization approaches encompassing lithium salt molecular design with tailored dissociation characteristics,solvent matrix optimization through dielectric constant and viscosity regulation,interfacial engineering additives for constructing low-impedance SEI layers,and gel-polymer composite electrolyte systems.Notably,particular emphasis is placed on emerging machine learning-guided electrolyte formulation strategies that enable high-throughput virtual screening of constituent combinations and prediction of structure-property relationships.These artificial intelligence-assisted rational design frameworks demonstrate significant potential for accelerating the development of next-generation LT electrolytes by establishing quantitative composition-performance correlations through advanced data-driven methodologies. 展开更多
关键词 Lithium-ion batteries Low-temperature electrolyte Solid electrolyte interphase Solvation structure Artificial intelligence-assisted design
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