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Unprecedented Superionicity of Ultra-Low Barrier in A_(0.5)CoO_(2)(A=Li,Zn)
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作者 Xuechen Wang Yaxin Gao Menghao Wu 《Chinese Physics Letters》 2025年第6期102-109,共8页
The ion conductivity of a solid-state ion conductor generally increases exponentially upon reduction in ionmigration barrier.For prevalent cathode material LiCoO_(2),the room-temperature ion conductivity and migration... The ion conductivity of a solid-state ion conductor generally increases exponentially upon reduction in ionmigration barrier.For prevalent cathode material LiCoO_(2),the room-temperature ion conductivity and migrationbarrier are respectively around 10^(−4)S/cm and 0.3 eV.In this Letter,through first-principles calculations we predictthe existence of 1D superionicity as the Li ions in O_(2)LiCoO_(2)are transformed into Zn_(0.5)CoO_(2)or Li_(0.5)CoO_(2)via cation-exchange reaction or deintercalation.The ion migration barriers(0.01-0.02 eV)even lower than roomtemperature∼𝑘B𝑇are reduced by more than an order of magnitude compared with LiCoO_(2),which are facilitatedby facile transition of mobile ions between two coordination configurations.The room-temperature ion conductivityis estimated to be over 50 S/cm,enhanced by 2-3 orders of magnitude compared with the current highestreported value.Such unprecedented superionicity may also exist in other similar layered ion conductors,whichmay lead to technical advances and exotic effects such as ultrafast ion batteries and quantized ferroelectricity. 展开更多
关键词 DEINTERCALATION cathode material unprecedented superionicity d superionicity ion conductivity li ions ultra low barrier cation exchange reaction
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Cation potential guiding structural regulation of lithium halide superionic conductors
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作者 Yinghui Xia Yixi Lin Zhenming Xu 《Chinese Journal of Structural Chemistry》 2025年第3期12-14,共3页
Lithium halide solid-state electrolytes,with the general formula of Li_(3±m)M_(n)X_(6),are regarded as the promising families of electrolyte material for all solid-state lithium-ion batteries because of the relat... Lithium halide solid-state electrolytes,with the general formula of Li_(3±m)M_(n)X_(6),are regarded as the promising families of electrolyte material for all solid-state lithium-ion batteries because of the relatively good ionic conductivity,high oxidative stability against high-voltage oxide cathodes,and broad electrochemical stability window[1].Here,M stands for one or multiple metal elements and X for one or multiple halogen elements. 展开更多
关键词 metal elements lithium halide solid state electrolytes structural regulation halogen elements electrolyte material cation potential ionic conductivityhigh lithium halide superionic conductors
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Cu_(3.21)Bi_(4.79)S_(9):Bimetal superionic strategy boosts ultrafast dynamics for Na-ion storage/extraction
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作者 Xu Han Guoping Liu +6 位作者 Weiqiang Kong Wenruo Li Shun Liu Luzheng Zhao Haoyuan Zhu Jiancong Guo Zhongsheng Wen 《Journal of Energy Chemistry》 2025年第2期769-777,I0017,共10页
Traditional metal sulfides used as anodes for sodium-ion batteries are hindered by sluggish kinetics,which limits their rate performance.Previous attempts to address this issue focused on nanostructured configurations... Traditional metal sulfides used as anodes for sodium-ion batteries are hindered by sluggish kinetics,which limits their rate performance.Previous attempts to address this issue focused on nanostructured configurations with conductive frameworks.However,these nanomaterials often suffer from low packing density and the tendency for nanoparticles to agglomerate,posing significant challenges for practical applications.To overcome these limitations,this study presents a novel bimetal superionic anode material Cu_(3.21)Bi_(4.79)S_(9),which effectively resolves the conflict between sluggish kinetics and micrometer-scale particle size.By leveraging the vacancies created by free Cu and Bi atoms,this material forms rapid migration channels during sodium insertion and extraction,significantly reducing the migration barriers for sodium ions.The development of micrometer-scale Cu_(3.21)Bi_(4.79)S_(9)enables ultrafast chargingdischarging capabilities,achieving a reversible capacity of 325.5 mAh g^(-1)after 4000 cycles at a high rate of 45 C(15 A g^(-1)).This work marks a significant advancement in the field by offering a solution to the inherent trade-off between high capacity and rate performance in coarse-grained materials,reducing the need for reliance on nanostructured configurations for next-generation high-capacity anode materials. 展开更多
关键词 Unordered vacancy superionic structured Cu_(3.21)Bi_(4.79)S_(9) Sodium-ion batteries Anode
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Face-sharing strategy helps achieve lithium superionic conductivity in face-centred cubic oxides
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作者 Yepei Li Kun Lin 《Chinese Journal of Structural Chemistry》 2025年第4期9-11,共3页
All-solid-state lithium ion batteries(ASSLIBs)have attracted much attention due to their high safety and increased energy density,which have become a substitute to conventional liquid electrolyte batteries[1].The deve... All-solid-state lithium ion batteries(ASSLIBs)have attracted much attention due to their high safety and increased energy density,which have become a substitute to conventional liquid electrolyte batteries[1].The development of high-performance solid electrolyte is the key to the development of solid-state battery technology.Solid-state electrolyte(SSE)materials should have high ionic conductivity,poor electronic conductivity,wide electrochemical window,and low electrode and electrolyte interface resistance. 展开更多
关键词 lithium superionic conductivity lithium ion batteries asslibs face centred cubic oxides electronic conductivitywide liquid electrolyte batteries electrode electrolyte interface resistance all solid state lithium ion batteries high safety
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Host–vip Inversion Engineering Induced Superionic Composite Solid Electrolytes for High-Rate Solid-State Alkali Metal Batteries
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作者 Xiong Xiong Liu Long Pan +6 位作者 Haotian Zhang Pengcheng Yuan Mufan Cao Yaping Wang Zeyuan Xu Min Gao Zheng Ming Sun 《Nano-Micro Letters》 2025年第8期278-293,共16页
Composite solid electrolytes(CSEs)are promising for solid-state Li metal batteries but suffer from inferior room-temperature ionic conductivity due to sluggish ion transport and high cost due to expensive active ceram... Composite solid electrolytes(CSEs)are promising for solid-state Li metal batteries but suffer from inferior room-temperature ionic conductivity due to sluggish ion transport and high cost due to expensive active ceramic fillers.Here,a host–vip inversion engineering strategy is proposed to develop superionic CSEs using cost-effective SiO_(2) nanoparticles as passive ceramic hosts and poly(vinylidene fluoride-hexafluoropropylene)(PVH)microspheres as polymer vips,forming an unprecedented“polymer vip-in-ceramic host”(i.e.,PVH-in-SiO_(2))architecture differing from the traditional“ceramic vip-in-polymer host”.The PVH-in-SiO_(2) exhibits excellent Li-salt dissociation,achieving high-concentration free Li+.Owing to the low diffusion energy barriers and high diffusion coefficient,the free Li+is thermodynamically and kinetically favorable to migrate to and transport at the SiO_(2)/PVH interfaces.Consequently,the PVH-in-SiO_(2) delivers an exceptional ionic conductivity of 1.32.10−3 S cm−1 at 25℃(vs.typically 10−5–10−4 S cm−1 using high-cost active ceramics),achieved under an ultralow residual solvent content of 2.9 wt%(vs.8–15 wt%in other CSEs).Additionally,PVH-in-SiO_(2) is electrochemically stable with Li anode and various cathodes.Therefore,the PVH-in-SiO_(2) demonstrates excellent high-rate cyclability in LiFePO4|Li full cells(92.9%capacity-retention at 3C after 300 cycles under 25℃)and outstanding stability with high-mass-loading LiFePO4(9.2 mg cm−1)and high-voltage NCM622(147.1 mAh g−1).Furthermore,we verify the versatility of the host–vip inversion engineering strategy by fabricating Na-ion and K-ion-based PVH-in-SiO_(2) CSEs with similarly excellent promotions in ionic conductivity.Our strategy offers a simple,low-cost approach to fabricating superionic CSEs for large-scale application of solid-state Li metal batteries and beyond. 展开更多
关键词 Host–vip inversion engineering SiO_(2)nanoparticle superionic conductivity Composite solid electrolyte Solid-state alkali metal battery
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Ion Conduction in Superionic Glassy Electrolytes:An Overview 被引量:3
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作者 Angesh Chandra Alok Bhatt Archana Chandra 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2013年第3期193-208,共16页
The various theoretical and experimental models for ion conduction mechanism of fast ion conducting (FIC) glass electrolytes have been reported in the present review paper. Some characterization techniques of FIC gl... The various theoretical and experimental models for ion conduction mechanism of fast ion conducting (FIC) glass electrolytes have been reported in the present review paper. Some characterization techniques of FIC glasses are presented. The experimental methods for determination of some ion transport parameters viz ionic conductivity (σ), ionic mobility (μ), mobile ion concentration (n), ionic drift velocity (Vd), ionic transference number (tion) and activation energies of FIC glasses are explained. The solid state battery fabrication by using some FIC glasses is also reported. 展开更多
关键词 Ion conduction Glassy solid electrolyte Fast ion conducting (FIC) glass superionic solid Relaxation phenomenon
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Prediction of superionic state in LiH_(2) at conditions enroute to nuclear fusion
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作者 李福德 王豪 +1 位作者 李津龙 耿华运 《Chinese Physics B》 SCIE EI CAS CSCD 2023年第10期566-571,共6页
Hydrogen and lithium,along with their compounds,are crucial materials for nuclear fusion research.High-pressure studies have revealed intricate structural transitions in all these materials.However,research on lithium... Hydrogen and lithium,along with their compounds,are crucial materials for nuclear fusion research.High-pressure studies have revealed intricate structural transitions in all these materials.However,research on lithium hydrides beyond LiH has mostly focused on the low-temperature regime.Here,we use density functional theory and ab initio molecular dynamics simulations to investigate the behavior of LiH_(2),a hydrogen-rich compound,near its melting point.Our study is particularly relevant to the low-pressure region of the compression pathway of lithium hydrides toward fusion.We discovered a premelting superionic phase transition in LiH_(2)that has significant implications for its mass transportation,elastic properties,and sound velocity.The theoretical boundary for the superionic transition and melting temperature was then determined.In contrast,we also found that the primary compound of lithium hydrides,LiH,does not exhibit a superionic transition.These findings have important implications for optimizing the compression path to achieve the ignition condition in inertial confinement fusion research,especially when lithium tritium-deuteride(LiTD)is used as the fuel. 展开更多
关键词 lithium polyhydrides high pressure and high temperature superionic state phase transition
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IONIC CONDUCTION MECHANISM IN Na_(5+x)YA1_xSi_(4-x)O_(12) SUPERIONIC CONDUCTORS
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作者 崔万秋 邹云 《Journal of Wuhan University of Technology(Materials Science)》 SCIE EI CAS 1989年第1期13-18,共6页
Na_(5+x) YAl_x Si_(4-x) O_(12) polycrystalline solid electrolytes are prepared by solid reactions. By the analyses of X-ray, TG and DTA, infrared spectu re, and SEM, the variasion of their density with the composition... Na_(5+x) YAl_x Si_(4-x) O_(12) polycrystalline solid electrolytes are prepared by solid reactions. By the analyses of X-ray, TG and DTA, infrared spectu re, and SEM, the variasion of their density with the composition X are discussed Their electric conductivity in the temperature range of R. T. to 300℃ are determined with electric brigde, and their variasions with the compositions X and temperature are studied. Their activations in the tem- perature range 140℃ to 300℃ are calculated, and their variation with the compositons X are discussed. 展开更多
关键词 IONIC Conduction mechanism superionic conductors
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New Superionic Memory Devices Can Provide Clues to the Human Memory Structure and to Consciousness
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作者 Hans Hermann Otto 《Journal of Applied Mathematics and Physics》 2023年第2期377-376,共10页
Since the work of Penrose and Hameroff the possibility is discussed that the location of human memory and consciousness could be connected with tubulin microtubules. If one would use superionic nano-materials rolled u... Since the work of Penrose and Hameroff the possibility is discussed that the location of human memory and consciousness could be connected with tubulin microtubules. If one would use superionic nano-materials rolled up to microtubules with an electrolyte inside the formed channels mediating fast ionic exchange of protons respectively lithium ions, it seems to be possible to write into such materials whole image arrays (pictures) under the action of the complex electromagnetic spectrum that composes these images. The same material and architecture may be recommended for super-computers. Especially microtubules with a protofilament number of 13 are the most important to note. We connected such microtubules before with Fibonacci nets composed of 13 sub-cells that were helically rolled up to deliver suitable channels. Our recent Fibonacci analysis of Wadsley-Roth shear phases such as niobium tungsten oxide , exhibiting channels for ultra-fast lithium-ion diffusion, suggests to use these materials, besides super-battery main application, in form of nanorods or microtubules as effectively working superionic memory devices for computers that work ultra-fast with the complex effectiveness of human brains. Finally, we pose the question, whether dark matter, ever connected with ultrafast movement of ordinary matter, may be responsible for synchronization between interactions of human brains and consciousness. 展开更多
关键词 Memory Device Niobium Tungsten Oxide Crystallographic Shear Lithium Intercalation superionicity Super Battery Fibonacci Nets Fibonacci Stoichiometry Tubulin Microtubules
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Dynamic Probe of Superionic Transition in Fluorite Structured Compounds
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作者 Chen Ling Chuhong Wang 《Renewables》 2024年第3期173-182,共10页
Superionic transition(SIT)is an extraordinary phenomenon where a compound attains high ionic conductivity through anomalous disordering of mobile-ion sublattice.Comprehending SIT offers notable prospects for the advan... Superionic transition(SIT)is an extraordinary phenomenon where a compound attains high ionic conductivity through anomalous disordering of mobile-ion sublattice.Comprehending SIT offers notable prospects for the advancement of superionic conductors(SICs)for diverse applications.However,the investigation of SIT is impeded by its intricate and stochastic characteristics,coupled with the absence of adequate methods for characterizing,quantifying,and analyzing its microscopic properties.Here we show that the SIT can be discerned through the dynamic signatures of disordering events underlying the increase in ionic conductivity.The adoption of a dynamic perspective as opposed to the conventional treatment of equilibrium properties brings significant advantage to scrutinize the microscopic characteristics of SIT.Our results show the SIT in the prototypical family of fluorite compounds is characterized by the scaleinvariant disordering dynamics independent of temperature or extent of disorder.The observation of scale-invariance in the absence of external tuning implies that the superionic conduction is self-tuned to criticality by intrinsic dynamics.The connection between ionic diffusion and self-organized criticality provides a novel platform for understanding,analyzing,and manipulating SIT towards better SICs. 展开更多
关键词 superionic conductor superionic transition allsolid-state battery DISORDER dynamics AVALANCHE self-organized criticality FLUORITE
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Expediting solid electrolyte synthesis:Microwave-assisted wet synthesis of halogen-rich Li-argyrodite
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作者 Suk-Ho Hwang Seung-Deok Seo +3 位作者 Dohyun Kim Jung Been Park Sung-Chul Kim Dong-Wan Kim 《Journal of Energy Chemistry》 2025年第5期527-539,共13页
Li-argyrodites are promising solid electrolytes(SEs)for solid-state Li-ion batteries(SSLBs),but their large-scale industrial application remains a challenge.Conventional synthesis methods for SEs suffer from long reac... Li-argyrodites are promising solid electrolytes(SEs)for solid-state Li-ion batteries(SSLBs),but their large-scale industrial application remains a challenge.Conventional synthesis methods for SEs suffer from long reaction times and high energy consumption.In this study,we present a wet process for the synthesis of halogen-rich argyrodite Li_(6-a)PS_(5-a)Cl_(1+a)precursors(LPSCl_(1+a)-P,a=0–0.7)via an energysaving microwave-assisted process.Utilizing vibrational heating,we accelerate the formation of Liargyrodite precursor,even at excessive Cl-ion concentration,which significantly shortens the reaction time compared to traditional methods.After crystallization,we successfully synthesize the Liargyrodite,Li_(5.5)PS_(4.5)Cl_(1.5),which exhibits the superior ionic conductivity(7.8 mS cm^(-1))and low activation energy(0.23 eV)along with extremely low electric conductivity.The Li_(5.5)PS_(4.5)Cl_(1.5)exhibits superior Li compatibility owing to its high reversible striping/plating ability(over 5000 h)and high current density acceptability(1.3 mA cm^(-2)).It also exhibits excellent cycle reversibility and rate capability with NCM622 cathode(148.3 mA h g^(-1)at 1 C for 100 cycles with capacity retention of 85.6%).This finding suggests a potentially simpler and more scalable synthetic route to produce high-performance SEs. 展开更多
关键词 Solid-state batteries Sulfide solid electrolyte Li-argyrodite superionic conductor Wet-chemical synthesis Scalable
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Structural and transport properties ofα-RbCu_(4)Cl_(3)I_(2)at room temperature by molecular dynamics simulation
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作者 Yueqiang Lan Tushagu Abudouwufu +1 位作者 Alexander Tolstoguzov Dejun Fu 《Chinese Physics B》 2025年第7期470-474,共5页
Consideringα-RbCu_(4)Cl_(3)I_(2)is isostructural withα-RbAg4I5,in this work,we built a molecular dynamics simulation system of the former superionic conductor with an empirical pairwise potential model,which was ver... Consideringα-RbCu_(4)Cl_(3)I_(2)is isostructural withα-RbAg4I5,in this work,we built a molecular dynamics simulation system of the former superionic conductor with an empirical pairwise potential model,which was verified on the latter crystal,including long-ranging Coulomb,short-ranging Born-Mayer,charge-dipole,and dipole-quadrupole interactions.The corresponding parameters were collected from the crystal structure and several reports of interionic potentials in alkali halides.The coordination number of fixed ions was examined,and the dynamic distribution of dissociative Cu+was described by the radial distribution function.The diffusion behavior of the ions was evaluated with mean square displacements and velocity auto-correlation functions.The diffusion coefficient of copper ions obtained is(47.9±6.1)×10-7cm^(2)/s,which is approximately 37 times that of the simulation result(1.3±0.1)×10^(-7)cm^(2)/s of silver inα-RbAg4I5at room temperature.In this work,the diffusion coefficient of Cu+was first discussed by molecule simulation,while there are few experimental reports. 展开更多
关键词 diffusion coefficients Cu+conductors superionic conductor microcanonical ensemble empirical pair potential
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Sodium Superionic Conductors(NASICONs)as Cathode Materials for Sodium‑Ion Batteries 被引量:6
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作者 Qingbo Zhou Linlin Wang +10 位作者 Wenyao Li Kangning Zhao Minmin Liu Qian Wu Yujie Yang Guanjie He Ivan P.Parkin Paul R.Shearing Dan J.L.Brett Jiujun Zhang Xueliang Sun 《Electrochemical Energy Reviews》 SCIE EI 2021年第4期793-823,共31页
Sodium-ion batteries(SIBs)have developed rapidly owing to the high natural abundance,wide distribution,and low cost of sodium.Among the various materials used in SIBs,sodium superion conductor(NASICON)-based electrode... Sodium-ion batteries(SIBs)have developed rapidly owing to the high natural abundance,wide distribution,and low cost of sodium.Among the various materials used in SIBs,sodium superion conductor(NASICON)-based electrode materials with remarkable structural stability and high ionic conductivity are one of the most promising candidates for sodium storage electrodes.Nevertheless,the relatively low electronic conductivity of these materials makes them display poor electrochemical performance,significantly limiting their practical application.In recent years,the strategies of enhancing the inherent conductivity of NASICON-based cathode materials have been extensively studied through coating the active material with a conductive carbon layer,reducing the size of the cathode material,combining the cathode material with various carbon materials,and doping elements in the bulk phase.In this paper,we review the recent progress in the development of NASICON-based cathode materials for SIBs in terms of their synthesis,characterization,functional mechanisms,and performance validation/optimization.The advantages and disadvantages of such SIB cathode materials are analyzed,and the relationship between electrode structures and electrochemical performance as well as the strategies for enhancing their electrical conductivity and structural stability is highlighted.Some technical challenges of NASICON-based cathode materials with respect to SIB performance are analyzed,and several future research directions are also proposed for overcoming the challenges toward practical applications. 展开更多
关键词 Sodium-ion battery Cathode materials Energy storage Sodium superionic conductor(NASICON)
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Amphoteric covalent organic framework as single Li+superionic conductor in all-solid-state 被引量:2
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作者 Zhangzhen Cheng Liping Lu +7 位作者 Siyu Zhang Haiyan Liu Tao Xing Yan Lin Hao Ren Zhongtao Li Linjie Zhi Mingbo Wu 《Nano Research》 SCIE EI CSCD 2023年第1期528-535,共8页
As a novel class of porous crystalline solids,covalent organic frameworks(COFs)based electrolyte can combine the advantages of both inorganic and polymer electrolytes,leading to such as higher structural stability to ... As a novel class of porous crystalline solids,covalent organic frameworks(COFs)based electrolyte can combine the advantages of both inorganic and polymer electrolytes,leading to such as higher structural stability to inhibit lithium dendrites and better processing facility for improving interfacial contact.However,the ionic components of Li salt tend to be closely associated in the form of ion pairs or even ionic aggregates in the channel of COFs due to strong coulombic interactions,thus resulting in slow ionic diffusion dynamics and low ionic conductivity.Herein,we successfully designed and synthesized a novel single-ion conducting nitrogen hybrid conjugated skeleton(NCS)as all solid electrolyte,whose backbone is consisted with triazine and piperazine rings.A loose bonding between the triazine rings and cations would lower the energy barrier during ions transfer,and electrostatic forces with piperazine rings could“anchor”anions to increase the selectivity during ions transfer.Thus,the NCSelectrolyte exhibits excellent room temperature lithium-ion conductivity up to 1.49 mS·cm−1 and high transference number of 0.84 without employing any solvent,which to the best of our knowledge is one of the highest COF-based electrolytes so far.Moreover,the fabricated all-solid-state lithium metal batteries demonstrate highly attractive properties with quite stable cycling performance over 100 cycles with 82%capacity reservation at 0.5 C. 展开更多
关键词 covalent organic framework solid-state electrolyte superionic conductor TRIAZINE AMPHOTERIC
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Stable all-solid-state Li-Te battery with Li_(3)TbBr_(6) superionic conductor 被引量:1
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作者 Zhichao Zeng Xiaomeng Shi +6 位作者 Mingzi Sun Hongtu Zhang Wei Luo Yunhui Huang Bolong Huang Yaping Du Chun-Hua Yan 《Nano Research》 SCIE EI CSCD 2023年第7期9344-9351,共8页
Rare-earth(RE)halide solid electrolytes(HSEs)have been an emerging research area due to their good electrochemical and mechanical properties for all-solid-state lithium batteries(ASSBs).However,only very limited types... Rare-earth(RE)halide solid electrolytes(HSEs)have been an emerging research area due to their good electrochemical and mechanical properties for all-solid-state lithium batteries(ASSBs).However,only very limited types of HSEs have been reported with high performance.In this work,tens of grams of RE-HSE Li_(3)TbBr_(6)(LTbB)was synthesized by a vacuum evaporationassisted method.The as-prepared LTbB displays a high ionic conductivity of 1.7 mS·cm^(-1),a wide electrochemical window,and good formability.Accordingly,the assembled solid lithium-tellurium(Li-Te)battery based on the LTbB HSE exhibits excellent cycling stability up to 600 cycles,which is superior to most previous reports.The processes and the chemicals during the discharge/charge of Li-Te batteries have been studied by various in situ and ex situ characterizations.Theoretical calculations have demonstrated the dominant conductivity contributions of the direct[octahedral]-[octahedral]([Oct]-[Oct])pathway for Li ion migrations in the electrolyte.The Tb sites guarantee efficient electron transfer while the Li 2s orbitals are not affected during migration,leading to a low activation barrier.Therefore,this successful fabrication and application of LTbB have offered a highly competitive solution for solid electrolytes in ASSBs,indicating the great potential of RE-based HSEs in energy devices. 展开更多
关键词 rare-earth halide solid electrolytes all-solid-state lithium batteries superionic conductor Li-Te solid battery
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Superionic conductor-mediated growth of ternary ZnCdS nanorods over a wide composition range 被引量:1
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作者 Yongliang Zhang Jing Cai Tianpei Ji Qiang Wu Yuyang Xu Xizhang Wang Tao Sun Lijun Yang Zheng Hu 《Nano Research》 SCIE EI CAS CSCD 2015年第2期584-591,共8页
Composition regulation of semiconductors can engineer their bandgaps and hence tune their properties. Herein, we report the first synthesis of ternary ZnxCd1-xS semiconductor nanorods by superionic conductor (AgRS)-... Composition regulation of semiconductors can engineer their bandgaps and hence tune their properties. Herein, we report the first synthesis of ternary ZnxCd1-xS semiconductor nanorods by superionic conductor (AgRS)-mediated growth with [(C4H9)2NCS2]2M (M = Zn, ca) as single-source precursors. The compositions of the ZnKCd1-xS nanorods are conveniently tuned over a wide range by adjusting the molar ratio of the corresponding precursors, leading to tunable bandgaps and hence the progressive evolution of the light absorption and photoluminescence spectra. The nanorods present well-distributed size and length, which are controlled by the uniform Ag2S nanoparticles and the fixed amount of the precursors. The results suggest the great potential of superionic conductor-mediated growth in composition regulation and bandgap engineering of chalcogenide nanowires/nanorods. 展开更多
关键词 superionic conductor solution-solid-solid growth ternary ZnxCd1-xS bandgap engineering
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First-principles insight into the entanglements between superionic diffusion and Li/Al antisite in Al-doped Li1+xAlxGe2–x(PO4)3(LAGP) 被引量:1
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作者 JIANG ChangKun LU Xia CAO DaPeng 《Science China(Technological Sciences)》 SCIE EI CAS CSCD 2020年第9期1787-1794,共8页
As an ion conductor, the Al-doped Li1+xAlxGe2-x(PO4)3(LAGP) demonstrates the superionic Li diffusion behavior, however,without the convinced verifications. In this context, the density functional theory(DFT) calculati... As an ion conductor, the Al-doped Li1+xAlxGe2-x(PO4)3(LAGP) demonstrates the superionic Li diffusion behavior, however,without the convinced verifications. In this context, the density functional theory(DFT) calculations are employed to clarify the structural origin of the fast Li ion migration kinetics in LAGP solid electrolytes. The calculated results show that doping of Al leads to an emerging high-energy 36 f Li site, which plays an important role in promoting the Li diffusion and can largely lower the Li ion diffusion energy barrier. Moreover, the Li/Al antisite defect is investigated firstly, with which the Li ions are excited to occupy a relatively high energy site in LAGP. The obvious local structural distortion by Li/Al antisite results in the coordination change upon Li diffusion(lattice field distortion), which facilitates the Li diffusion significantly and is probably the main reason to account for the superionic diffusion phenomenon. Therefore, the occupation of Li at high-energy sites should be an effective method to establish the fast Li diffusion, which implies a rewarding avenue to build better Li-ion batteries. 展开更多
关键词 Li1+xAlxGe2–x(PO4)3(LAGP) Li/Al antisite superionic conductor first-principles calculations Li ion batteries
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RESEARCH ON σ~ω IN AMORPHOUS SUPERIONIC CONDUCTORS
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作者 孙涌 雷敏生 李湘如 《Chinese Science Bulletin》 SCIE EI CAS 1991年第15期1243-1247,共5页
I. INTRODUCTIONIn recent years, people have conducted a lot of experiments and valuable theoretical studies on amorphous superionic conductors. From their results, the σ~ω property of amorphous superionic conductor... I. INTRODUCTIONIn recent years, people have conducted a lot of experiments and valuable theoretical studies on amorphous superionic conductors. From their results, the σ~ω property of amorphous superionic conductors can generally be concluded as follows: 展开更多
关键词 CONDUCTIVITY superionic conductor INFRARED divergence.
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Molecular dynamics simulation of calcium fluoride——Crystalline, superionic, molten and quenched-amorphous phases
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作者 程兆年 郏正明 +1 位作者 张静 陈念贻 《Science China Chemistry》 SCIE EI CAS 1995年第1期28-38,共11页
The results from the molecular dynamics simulations on crystalline, superionic, molten and quenched-amorphous states of calcium fluoride system are reported. The Ca++ and F- sublattices are studied by using the method... The results from the molecular dynamics simulations on crystalline, superionic, molten and quenched-amorphous states of calcium fluoride system are reported. The Ca++ and F- sublattices are studied by using the method of bond order parameters. The result shows that both Ca++ and F- sublattices can be described with the bond-orientation normal distribution model. In the superionic phase the Ca++ cations keep their original stable fcc frame, but in the F- case random distortion generates from their original simple cubic (sc) structure. The simulation on the molten phase gives three radial distribution functions that are difficult to separate from the experimental X-ray diffraction data. The simulation of quenched-amorphous state shows that a dense random packing of equivalent spheres centered by Ca++ cations occurs in the system simulated. However, the system quenched is not stable enough because the Ca++ cation and F- anions around it do not form themselves into a certain configuration. 展开更多
关键词 molecular dynamics simulation CAF2 superionic phase MOLTEN CAF2 CAF2 computer glass BOND orientational order.
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An end-to-end artificial intelligence platform enables real-time assessment of superionic conductors
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作者 Zhilong Wang Yanqiang Han +2 位作者 Junfei Cai An Chen Jinjin Li 《SmartMat》 2023年第6期56-71,共16页
Superionic conductors(SCs)exhibiting low ion migration activation energy(Ea)are critical to the performance of electrochemical energy storage devices such as solid-state batteries and fuel cells.However,it is challeng... Superionic conductors(SCs)exhibiting low ion migration activation energy(Ea)are critical to the performance of electrochemical energy storage devices such as solid-state batteries and fuel cells.However,it is challenging to obtain Ea experimentally and theoretically,and the artificial intelligence(AI)method is expected to bring a breakthrough in predicting Ea.Here,we proposed an AI platform(named AI-IMAE)to predict the Ea of cation and anion conductors,including Li^(+),Na^(+),Ag^(+),Al^(3+),Mg^(2+),Zn^(2+),Cu^((2)+),F^(−),and O^(2−),which is~105 times faster than traditional methods.The proposed AI-IMAE is based on crystal graph neural network models and achieves a holistic average absolute error of 0.19 eV,a median absolute error of 0.09 eV,and a Pearson coefficient of 0.92.Using AI-IMAE,we rapidly discovered 316 promising SCs as solid-state electrolytes and 129 SCs as cathode materials from 144,595 inorganic compounds.AI-IMAE is expected to completely solve the challenge of time-consuming Ea prediction and blaze a new trail for large-scale studies of SCs with excellent performance.As more experimental and high-precision theoretical data become available,AI-IMAE can train custom models and transfer the existing models to new models through transfer learning to constantly meet more demands. 展开更多
关键词 artificial intelligence cathode material solid-state battery solid-state electrolyte superionic conductor
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