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Sn-based Intermetallic Compounds for Li-ion Batteries: Structures, Lithiation Mechanism, and Electrochemical Performances 被引量:5
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作者 Zheng Yi Zhaomin Wang +1 位作者 Yong Cheng Limin Wang 《Energy & Environmental Materials》 SCIE EI CAS 2018年第3期132-147,共16页
On account of the lower theoretical capacity of the traditional graphite,the development of reliable anode materials with high capacity and energy density for application in lithium-ion batteries(LIBs)is zealously pur... On account of the lower theoretical capacity of the traditional graphite,the development of reliable anode materials with high capacity and energy density for application in lithium-ion batteries(LIBs)is zealously pursued to meet the ever-increasing power demands for portable mobile devices or(hybrid)electronic vehicles. 展开更多
关键词 anode materials lithiation mechanism lithium-ion batteries review SN
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A simple model for diffusion-induced dislocations during the lithiation of crystalline materials
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作者 Fuqian Yang 《Theoretical & Applied Mechanics Letters》 CAS 2014年第5期9-12,共4页
Assuming that the lithiation reaction occurs randomly in individual small particles in the vicinity of the reaction front, a simple model of diffusion- induced dislocations was developed. The diffusion-induced disloca... Assuming that the lithiation reaction occurs randomly in individual small particles in the vicinity of the reaction front, a simple model of diffusion- induced dislocations was developed. The diffusion-induced dislocations are con- trolled by the misfit strain created by the diffusion of solute atoms or the phase transformation in the vicinity of the reaction front. The dislocation density is proportional to the total surface area of the "lithiated particle" and inversely pro- portional to the particle volume. The diffusion-induced dislocations relieve the diffusion-induced stresses. 展开更多
关键词 DIFFUSION misfit strain dislocation density lithiation
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In situ tracking of the lithiation and sodiation process of disodium terephthalate as anodes for rechargeable batteries by Raman spectroscopy
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作者 Xiu-Mei Lin Chong Han +6 位作者 Xin-Tao Yang Jia-Sheng Lin Wei-Qiang Yang Hong-Xu Guo Yao-Hui Wang Jin-Chao Dong Jian-Feng Li 《Nano Research》 SCIE EI CSCD 2024年第1期245-252,共8页
Organic compounds represent an appealing group of electrode materials for rechargeable batteries due to their merits of biomass,sustainability,environmental friendliness,and processability.Disodium terephthalate(Na_(2... Organic compounds represent an appealing group of electrode materials for rechargeable batteries due to their merits of biomass,sustainability,environmental friendliness,and processability.Disodium terephthalate(Na_(2)C_(8)H_(4)O_(4),Na_(2)TP),an organic salt with a theoretical capacity of 255 mAh·g^(-1),is electroactive towards both lithium and sodium.However,its electrochemical energy storage(EES)process has not been directly observed via in situ characterization techniques and the underlying mechanisms are still under debate.Herein,in situ Raman spectroscopy was employed to track the de/lithiation and de/sodiation processes of Na2TP.The appearance and then disappearance of the–COOLi Raman band at 1625 cm^(-1) during the de/lithiation,and the increase and then decrease of the–COONa Raman band at 1615 cm^(-1) during the de/sodiation processes of Na2TP elucidate the one-step with the 2Li+or 2Na+transfer mechanism.We also found that the inferior cycling stability of Na2TP as an anode for sodium-ion batteries(SIBs)than lithium-ion batteries(LIBs)could be due to the larger ion radium of Na+than Li+,which results in larger steric resistance and polarization during EES.The Na2TP,therefore,shows greater changes in spectra during de/sodiation than de/lithiation.We expect that our findings could provide a reference for the rational design of organic compounds for EES. 展开更多
关键词 disodium terephthalate(Na_(2)C_(8)H_(4)O_(4) Na2TP) in situ Raman spectroscopy de/lithiation de/sodiation mechanisms
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Tailoring V_(2)CT_(x) to form a derivative hybrid by partial oxidation for enhanced lithiation behavior
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作者 Ming Lu Yaopeng Zhang +4 位作者 Qinhua Gu Wenjuan Han Yujie Qi Xia Zhang Bingsen Zhang 《Particuology》 SCIE EI CAS CSCD 2023年第3期1-8,共8页
Utilizing MXene to form the multifunctional derivative is a route to construct high-performance electrode materials.To address this issue,V_(2)CT_(x) MXene was employed to realize a derivative of VOx/V_(2)CT_(x) MXene... Utilizing MXene to form the multifunctional derivative is a route to construct high-performance electrode materials.To address this issue,V_(2)CT_(x) MXene was employed to realize a derivative of VOx/V_(2)CT_(x) MXene via a partial oxidation process.Relying on the annealing in the air atmosphere,the controlled oxidation behavior transformed V_(2)CT_(x) MXene partially to V_(2)O_(5) and formed a derivative hybrid of V_(2)O_(5)/V_(2)CT_(x) MXene.As a result,a package of capacity,rate performance,and cyclability can be enhanced.This work explores the derived behavior of MXenes and provides a route for constructing the hybrid with less interface contact.Furthermore,these findings can be extended to other MXene materials. 展开更多
关键词 V_(2)CT_(x)MXenes Oxidation lithiation Hybrids
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A chemo-mechanical model for fully-coupled lithiation reaction and stress generation in viscoplastic lithiated silicon 被引量:2
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作者 BUREBI Yi Ming JIA Zheng QU ShaoXing 《Science China(Technological Sciences)》 SCIE EI CAS CSCD 2019年第8期1365-1374,共10页
Development of stresses in silicon(Si) anodes of lithium-ion batteries is strongly affected by its mechanical properties. Recent experiments reveal that the mechanical behavior of lithiated silicon is viscoplastic, th... Development of stresses in silicon(Si) anodes of lithium-ion batteries is strongly affected by its mechanical properties. Recent experiments reveal that the mechanical behavior of lithiated silicon is viscoplastic, thereby indicating that lithiation-induced mechanical stresses are dependent on the lithiation reaction rate. Experimental evidence also accumulates that the rate of lithiation reaction is conversely affected by the magnitude of mechanical stresses. These experimental observations demonstrate that lithiation reaction and stress generation in silicon anodes are fully coupled. In this work, we formulate a chemo-mechanical model considering the two-way coupling between lithiation reaction and viscoplastic deformation in silicon nanoparticle anodes.Based on the model, the position of the lithiation interface, the interface velocity, and the lithiation-induced stresses can be solved simultaneously via numerical methods. The predicted interface velocity is in line with experimental measurements reported in the literature. We demonstrate that the lithiation-induced stress field depends on the lithiation reaction through two parameters:the migration velocity and the position of the lithiation interface. We identify a stress-mitigation mechanism in viscoplastic silicon anodes: the stress-regulated lithiation reaction at the interface serves as a "brake" to reduce the interface velocity and mitigate the lithiation-induced stresses, protecting the Si nanoparticle anode from being subjected to excessive mechanical stresses. 展开更多
关键词 LITHIUM-ION BATTERY lithiation-induced STRESS stress-regulated lithiation VISCOPLASTICITY
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Localized-domains staging structure and evolution in lithiated graphite 被引量:1
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作者 Suting Weng Siyuan Wu +15 位作者 Zepeng Liu Gaojing Yang Xiaozhi Liu Xiao Zhang Chu Zhang Qiuyan Liu Yao Huang Yejing Li Mehmet NAteş Dong Su Lin Gu Hong Li Liquan Chen Ruijuan Xiao Zhaoxiang Wang Xuefeng Wang 《Carbon Energy》 SCIE CAS CSCD 2023年第1期144-153,共10页
Intercalation provides to the host materials a means for controlled variation of many physical/chemical properties and dominates the reactions in metal‐ion batteries.Of particular interest is the graphite intercalati... Intercalation provides to the host materials a means for controlled variation of many physical/chemical properties and dominates the reactions in metal‐ion batteries.Of particular interest is the graphite intercalation compounds with intriguing staging structures,which however are still unclear,especially in their nanostructure and dynamic transition mechanism.Herein,the nature of the staging structure and evolution of the lithium(Li)‐intercalated graphite was revealed by cryogenic‐transmission electron microscopy and other methods at the nanoscale.The intercalated Li‐ions distribute unevenly,generating local stress and dislocations in the graphitic structure.Each staging compound is found macroscopically ordered but microscopically inhomogeneous,exhibiting a localized‐domains structural model.Our findings uncover the correlation between the long‐range ordered structure and short‐range domains,refresh the insights on the staging structure and transition of Li‐intercalated/deintercalated graphite,and provide effective ways to enhance the reaction kinetic in rechargeable batteries by defect engineering. 展开更多
关键词 cryogenic-transmission electron microscopy(cryo-TEM) graphite intercalation compounds lithiated graphite localized-domains structural model staging structures
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Surplus energy utilization of spent lithium-ion batteries for high-profit organolithiums
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作者 Jian Lu Yun Zhao +11 位作者 Yuqiong Kang Chenglei Li Yawen Liu Liguang Wang Hao Du Meicen Fan Yunan Zhou John Wozny Tao Li Naser Tavajohi Feiyu Kang Baohua Li 《Carbon Energy》 SCIE CSCD 2023年第6期11-20,共10页
It is challenging to efficiently and economically recycle many lithium-ion batteries(LIBs)because of the low valuation of commodity metals and materials,such as LiFePO_(4).There are millions of tons of spent LIBs wher... It is challenging to efficiently and economically recycle many lithium-ion batteries(LIBs)because of the low valuation of commodity metals and materials,such as LiFePO_(4).There are millions of tons of spent LIBs where the barrier to recycling is economical,and to make recycling more feasible,it is required that the value of the processed recycled material exceeds the value of raw commodity materials.The presented research illustrates improved profitability and economics for recycling spent LIBs by utilizing the surplus energy in lithiated graphite to drive the preparation of organolithiums to add value to the recycled lithium materials.This study methodology demonstrates that the surplus energy of lithiated graphite obtained from spent LIBs can be utilized to prepare high-value organolithiums,thereby significantly improving the economic profitability of LIB recycling.Organolithiums(R-O-Li and R-Li)were prepared using alkyl alcohol(R-OH)and alkyl bromide(R-Br)as substrates,where R includes varying hindered alkyl hydrocarbons.The organolithiums extracted from per kilogram of recycled LIBs can increase the economic value between$29.5 and$226.5 kg^(−1) cell.The value of the organolithiums is at least 5.4 times the total theoretical value of spent materials,improving the profitability of recycling LIBs over traditional pyrometallurgical($0.86 kg^(−1) cell),hydrometallurgical($1.00 kg^(−1) cell),and physical direct recycling methods($5.40 kg^(−1) cell). 展开更多
关键词 lithiated graphite lithium-ion batteries RECYCLING REGENERATION spent lithium-ion batteries
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First-principles insight into Li and Na ion storage in graphene oxide 被引量:1
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作者 钟淑英 石晶 +1 位作者 罗文崴 雷雪玲 《Chinese Physics B》 SCIE EI CAS CSCD 2019年第7期517-522,共6页
The structural, electronic, and adsorption properties of Li/Na ions on graphene decorated by epoxy groups are investigated by first-principles calculations based on density functional theory.Our results show that the ... The structural, electronic, and adsorption properties of Li/Na ions on graphene decorated by epoxy groups are investigated by first-principles calculations based on density functional theory.Our results show that the concentration of epoxy groups remarkably affects the structural and electronic properties of graphene.The bandgaps change monotonically from0.16 eV to 3.35 eV when the O coverage increases from 12.5% to 50%(O/C ratio).Furthermore, the highest lithiation potential of 2.714 V is obtained for the case of graphene oxide(GO) with 37.5 % O coverage, while the highest sodiation potential is 1.503 V for GO with 12.5% O coverage.This clearly demonstrates that the concentration of epoxy groups has different effects on Li and Na storage in GO.Our results provide a new insight into enhancing the Li and Na storage by tuning the concentration of epoxy groups on GO. 展开更多
关键词 graphene OXIDE lithiation POTENTIAL sodiation POTENTIAL FIRST-PRINCIPLES
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A lithiated gel polymer electrolyte with superior interfacial performance for safe and long-life lithium metal battery 被引量:1
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作者 Jia-Jia Yuan Chuang-Chao Sun +6 位作者 Li-Feng Fang You-Zhi Song Yan Yan Ze-Lin Qiu Yu-Jie Shen Han-Ying Li Bao-Ku Zhu 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2021年第4期313-322,共10页
Rechargeable lithium metal batteries(LMBs)have gained much attention recently.However,the short lifespan and safety issues restrict their commercial applications.Here we report a novel gel polymer electrolyte(GPE)base... Rechargeable lithium metal batteries(LMBs)have gained much attention recently.However,the short lifespan and safety issues restrict their commercial applications.Here we report a novel gel polymer electrolyte(GPE)based on lithiated poly(vinyl chloride-r-acrylic acid)(PVCAALi)to realize dendritesuppressing and long-term stable lithium metal cycling.PVC chains ensure the quick gelation process and high electrolyte uptake,and lithiated PAA segments enable the increase of mechanical strength,acceleration of lithium-ion transmission and improvement of interfacial compatibility.PVCAALi GPE showed much higher mechanical strength compared with other free-standing GPEs in previous works.It displays a superior ionic conductivity of 1.50 m S cm^(-1) and a high lithium-ion transference number of 0.59 at room temperature.Besides,the lithiated GPE exhibits excellent interfacial compatibility with lithium metal anodes.Lithium symmetrical cells with PVCAALi GPE yield low hysteresis of 50 m V over1000 h at 1.0 m A cm^(-2).And the possible mechanism of the lithiated GPE with improved lithium-ion transfer and interfacial property was discussed.Accordingly,both the Li4Ti5O12/Li and lithium-sulfur(Li-S)cells assembled with PVCAALi GPE show outstanding electrochemical performance,retaining high discharge capacities of 133.8 m Ah g^(-1) and 603.8 m Ah g^(-1) over 200 cycles,respectively.This work proves excellent application potential of the highly effective and low-cost PVCAALi GPE in safe and long-life LMBs. 展开更多
关键词 lithiation Gel polymer electrolyte Lithium dendrite Safety Lithium metal battery
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Strong dependency of lithium diffusion on mechanical constraints in high-capacity Li-ion battery electrodes 被引量:1
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作者 Yi-Fan Gao Min Zhou 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2012年第4期1068-1077,共10页
The effect of external constraints on Li diffusion in high-capacity Li-ion battery electrodes is investigated using a coupled finite deformation theory. It is found that thinfilm electrodes on rigid substrates experie... The effect of external constraints on Li diffusion in high-capacity Li-ion battery electrodes is investigated using a coupled finite deformation theory. It is found that thinfilm electrodes on rigid substrates experience much slower diffusion rates compared with free-standing films with the same material properties and geometric dimensions. More importantly, the study reveals that mechanical driving forces tend to retard diffusion in highly-constrained thin films when lithiation-induced softening is considered, in contrast to the fact that mechanical driving forces always enhance diffusion when deformation is fully elastic. The results provide further proof that nano-particles are a better design option for nextgeneration alloy-based electrodes compared with thin films. 展开更多
关键词 Li-ion battery - Inelastic flow lithiation in- duced softening Changing rate
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Ab initio Calculations of the Formation Energies of Lithium Intercalations in SnSb
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作者 ZhufengHOU AiyuLI +2 位作者 ZizhongZHU MeichunHUANG YongYANG 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2004年第6期743-745,共3页
关键词 SnSb lithiation Formation energies Ab initio calculations
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Electrochemical Intercalation of Lithium into Raw and Mild Oxide-treated Carbon Nanotubes Prepared by CVD
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作者 林克芝 《Journal of Wuhan University of Technology(Materials Science)》 SCIE EI CAS 2004年第3期21-25,44,共6页
The raw carbon nanotubes (CNTs) prepared by chemical vapor deposition (CVD) were used in electrochemical lithiation. To remove the impurity the mild oxidation was done on the samples. The electrochemical characteristi... The raw carbon nanotubes (CNTs) prepared by chemical vapor deposition (CVD) were used in electrochemical lithiation. To remove the impurity the mild oxidation was done on the samples. The electrochemical characteristics of the two samples are investigated by the galvanostatic charge-discharge measurements and cyclic voltammetry. The structural and interfacial changes of the CNTs electrode were analyzed by XRD and FT-IR. The samples show a reversibility of lithium intercalation and de-intercalation. The reversible capacities of the first five cycles are larger than 300 mAh/g and the irreversible capacity of the first cycle was much larger than that mentioned in literatures. There is no identical change in the structure during the charge and discharge. The reactions at the interface between electrode and the electrolyte are similar to those of other carbonaceous materials. 展开更多
关键词 carbon nanotubes electrochemical lithiation oxidation reversible capacity
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Lithiated Nafion-garnet ceramic composite electrolyte membrane for solid-state lithium metal battery 被引量:4
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作者 Jing Gao Qinjun Shao Jian Chen 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2020年第7期237-247,I0008,共12页
Single-ion conducting solid polymer electrolytes are expected to play a vital role in the realization of solid-state Li metal batteries.In this work,a lithiated Nafion(Li-Nafion)-garnet ceramic Li6.25La3 Zr2 Al0.25O12... Single-ion conducting solid polymer electrolytes are expected to play a vital role in the realization of solid-state Li metal batteries.In this work,a lithiated Nafion(Li-Nafion)-garnet ceramic Li6.25La3 Zr2 Al0.25O12(LLZAO)composite solid electrolyte(CSE)membrane with 30μm thickness was prepared for the first time.By employing X-ray photoelectron spectroscopy and transmission electron microscope,the interaction between LLZAO and Li-Nafion was investigated.It is found that the LLZAO interacts with the Li-Nafion to form a space charge layer at the interface between LLZAO and Li-Nafion.The space charge layer reduces the migration barrier of Li-ions and improves the ionic conductivity of the CSE membrane.The CSE membrane containing 10 wt%LLZAO exhibits the highest ionic conductivity of2.26×10-4 S cm-1 at 30℃among the pristine Li-Nafion membrane,the membrane containing 5 wt%,20 wt%,and 30 wt%LLZAO,respectively.It also exhibits a high Li-ion transference number of 0.92,and a broader electrochemical window of 0-+4.8 V vs.Li+/Li than that of 0-+4.0 V vs.Li+/Li for the pristine Li-Nafion membrane.It is observed that the CSE membrane not only inhibits the growth of Li dendrites but also keeps excellent electrochemical stability with the Li electrode.Benefitting from the above merits,the solid-state LiFePO4/Li cell fabricated with the CSE membrane was practically charged and discharged at 30℃.The cell exhibits an initial reversible discharge specific capacity of 160 mAh g-1 with 97%capacity retention after 100 cycles at 0.2 C,and maintains discharge specific capacity of 126 mAh g-1 after500 cycles at 1 C.The CSE membrane prepared with Li-Nafion and LLZAO is proved to be a promising solid electrolyte for advanced solid-state Li metal batteries. 展开更多
关键词 Single-ion conductor Composite solid electrolyte Lithiated Nafion Garnet ceramic Solid-state Li metal battery
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A long-life and safe lithiated graphite-selenium cell with competitive gravimetric and volumetric energy densities 被引量:1
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作者 Xiaoqun Qi Qiang Jin +4 位作者 Fengyi Yang Ruining Jiang Quan Sun Long Qie Yunhui Huang 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2021年第9期556-563,共8页
Lithium-selenium(Li-Se) battery is a promising system with high theoretical gravimetric and volumetric energy densities, while its long-term cyclability is hard to realize, especially when a practical Se cathode with ... Lithium-selenium(Li-Se) battery is a promising system with high theoretical gravimetric and volumetric energy densities, while its long-term cyclability is hard to realize, especially when a practical Se cathode with high Se content, high Se loading, and high density is employed. The main obstacles are the sluggish conversion kinetics of the dense Se cathodes and the continuous deterioration of the Li-metal anodes.Here, by introducing an acetonitrile(AN)-based electrolyte and replacing the Li electrode with a lithiated graphite, we successfully build a hybrid conversion-intercalation system using a high-content(80 wt%),decent-loading(3.0 mg cm^(-2)), and low-porosity(44%) Se cathode. The as-designed lithiated graphite||Se(LG||Se) cell demonstrated a high Se utilization(97.4%), a long cycle life(3000 cycles), and an ultrahigh average Coulombic efficiency(99.98%). The cell also works well under lean-electrolyte(2 l L mg^(-1)) condition and shows outstanding safety performance in the nail-penetrating test. The combination affords the competitive comprehensive performances, including high volumetric and gravimetric energy densities, long cycling life, and superb safety of the LG||Se cell. In addition, with a newly-designed threeelectrode pouch cell, the lithiation of the graphite anodes could be done with an in-situ lithiation process,indicating the high potential of the as-proposed LG||Se cell for the practical applications. 展开更多
关键词 Conversion-intercalation Acetonitrile electrolyte Se cathode Lithiated graphite Energy density
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Enhanced Electrochemical Performance of Poly(ethylene oxide)Composite Polymer Electrolyte via Incorporating Lithiated Covalent Organic Framework 被引量:1
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作者 Yuan Yao Yu Cao +4 位作者 Gang Li Cheng Liu Zhongyi Jiang Fusheng Pan Jie Sun 《Transactions of Tianjin University》 EI CAS 2022年第1期67-72,共6页
The lithiated covalent organic framework(named TpPa-SO_(3) Li),which was prepared by a mild chemical lithiation strategy,was introduced in poly(ethylene oxide)(PEO)to produce the composite polymer electrolytes(CPEs).L... The lithiated covalent organic framework(named TpPa-SO_(3) Li),which was prepared by a mild chemical lithiation strategy,was introduced in poly(ethylene oxide)(PEO)to produce the composite polymer electrolytes(CPEs).Li-ion can transfer along the PEO chain or across the layer of TpPa-SO_(3) Li within the nanochannels,resulting in a high Li-ion conductivity of3.01×10^(-4)S/cm at 60℃.When the CPE with 0.75 wt.%TpPa-SO_(3) Li was used in the LiFePO_(4)‖Li solid-state battery,the cell delivered a stable capacity of 125 mA·h/g after 250 cycles at 0.5 C,60℃.In comparison,the cell using the CPE without TpPa-SO_(3) Li exhibited a capacity of only 118 mA·h/g. 展开更多
关键词 Lithiated covalent organic framework Composite polymer electrolytes Poly(ethylene oxide) Solid-state lithium-ion batteries
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Gas electrodes with nickel based current collectors for molten carbonate electrolyte thermo-electrochemical cells
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作者 Sathiyaraj Kandhasamy Geir Martin Haarberg +1 位作者 Signe Kjelstrup Asbjorn Solheim 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2020年第2期34-42,共9页
Thermo-electrochemical cells with inexpensive molten carbonate electrolyte and(CO2|O2) gas electrodes allow the possible conversion of high temperature waste heat from industrial processes into electricity.The cell co... Thermo-electrochemical cells with inexpensive molten carbonate electrolyte and(CO2|O2) gas electrodes allow the possible conversion of high temperature waste heat from industrial processes into electricity.The cell containing eutectic(Li,Na)2CO3 electrolyte with solid Mg O dispersion delivers a large Seebeck coefficient of-1.7 m V/K. At present, the(CO2|O2) gas electrodes use metallic gold as current collectors in order to avoid the formation of interfering oxide layers during operation. For further reduction in energy generation cost, the gold current collectors should be replaced with an inexpensive and stable alternative.In this study, the suitability of the(molten carbonate fuel cell) MCFC’s nickel-based cathodes to operate the molten-carbonate thermo-electrochemical cell, was investigated. Ni current collectors were examined in two different states, as Ni O and as lithiated Ni O(LixNi1-xO). The Ni O phase shows higher stability than the LixNi1-xO while the Seebeck coefficient remains above-1.2 m V/K. 展开更多
关键词 High-temperature thermo-electrochemical cell MOLTEN CARBONATE NIO Lithiated NIO
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Enhanced Li+migration in solid polymer electrolyte driven by anion-containing polymer-chains
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作者 Xingyi Zhang Modeste Venin Mendieev Nitou +8 位作者 Wenjun Li Zhao Wan Longfei Liu Zhaohui Luo Sohail Muhammad Wu Qin Liang An Yinghua Niu Weiqiang Lv 《Chinese Chemical Letters》 SCIE CAS CSCD 2023年第11期342-345,共4页
Li-ion batteries with solid polymer electrolytes(SPEs)are safer than conventional liquid electrolytes due to the absence of highly flammable liquid electrolytes.However,their performance is limited by the poor Li+tran... Li-ion batteries with solid polymer electrolytes(SPEs)are safer than conventional liquid electrolytes due to the absence of highly flammable liquid electrolytes.However,their performance is limited by the poor Li+transport in SPEs at room temperature.Anion-containing polymer-chains incorporated SPEs(ASPEs)are therefore developed to enhance Li^(+) diffusion kinetics.Herein,we propose a novel and feasible strategy to incorporate the anion-containing polymer-chains,such as lithiated perfluorinated sulfonic acid(PFSA),into polyvinylidene fluoride(PVDF)polymer-based SPEs.The immobile anion groups from the PFSA-chains impede the migration of mobile anion groups dissociated from the Li salt.The transference number is thus raised from∼0.3 to 0.52 with the introduction of anion-containing polymer-chains into SPEs.The electrostatic repulsion among anion-containing chains also reduces the close chain stacking and brings 159%increase in the ionic conductivity to 0.83×10^(−3) S/cm at 30℃ in contrast with the pure PVDF-based SPE.In addition,LiFeO_(4)/Li batteries with ASPEs exhibit 55%capacity boost at 0.5 C in contrast to the capacity of batteries with pure-PVDF SPEs,and also offer more than 1000 charge/discharge cycles.Our research findings potentially offer a facile strategy to design thermal stable SPEs with superior Li^(+) transport behaviors towards developing high-performance SPEs-based batteries. 展开更多
关键词 Solid polymer electrolyte Lithiated perfluorinated sulfonic acid Polyvinylidene fluoride Solid-state battery Anion containing polymer
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Generation and α-hydroxyalkylation of a novel 3-piperidinol N-α-carbanion intermediate 被引量:3
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作者 ZHENG Xiao CHEN Guo +1 位作者 RUAN YuanPing HUANG PeiQiang 《Science China Chemistry》 SCIE EI CAS 2009年第10期1631-1638,共8页
The (S)-sulfide 6 has been synthesized as a synthetic equivalent of novel 3-piperidinol N-α-carbanion B via deprotonation and lithium naphthanelide (LN)-mediated reductive lithiation. The reaction of the 3-piperidino... The (S)-sulfide 6 has been synthesized as a synthetic equivalent of novel 3-piperidinol N-α-carbanion B via deprotonation and lithium naphthanelide (LN)-mediated reductive lithiation. The reaction of the 3-piperidinol N-α-carbanion intermediate B with carbonyl compounds gave, besides some reduced product 2a, the desired α-hydroxyalkylation products 12-17 with excellent 2,3-diastereoselectivity. The reductive α-hydroxyalkylation with unsymmetric carbonyl compounds led to only 50:50 to 77:23 diastereoselectivities at the C-1' carbinol center. 展开更多
关键词 sulfide N-α-carbanion lithium-naphthanelide reductive lithiation CARBONYL compounds α-hydroxyalkylation DIASTEREOSELECTIVITY
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Gradually activated lithium uptake in sodium citrate toward high-capacity organic anode for lithium-ion batteries 被引量:2
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作者 Rong Long Gu-Lian Wang +2 位作者 Zhong-Li Hu Peng-Fei Sun Li Zhang 《Rare Metals》 SCIE EI CAS CSCD 2021年第6期1366-1372,共7页
Lithium-ion batteries(LIBs)have been used to power various electric devices and store energy,but their toxic components by using inorganic materials generally cause serious environmental issues when disused.Recently,e... Lithium-ion batteries(LIBs)have been used to power various electric devices and store energy,but their toxic components by using inorganic materials generally cause serious environmental issues when disused.Recently,environmentally friendly and naturally abundant organic compounds have been adopted as promising electrode materials for next-generation LIBs.Herein,a new organic anode electrode based on sodium citrate is proposed,which shows gradually activated electrochemical behavior and delivers a high reversible capacity of 776.8 mAh·g^(-1)after 1770 cycles at a current density of 2 A·g^(-1).With the aid of the electrochemical characterization,Fourier-transform infrared(FTIR)and X-ray photoelectron spectroscopy(XPS)analysis,the lithium uptake mechanism of sodium citrate-based anodes is identified to be a combination of three-electron lithiation/delithiation and fast Li+intercalation/deintercalation processes,in which Faradaic reactions could offer a theoretical contribution of312 mAh·g^(-1)and intercalation pseudocapacitance would provide extra capacity.This work demonstrates the great potential for developing high-capacity organic electrodes for LIBs in future. 展开更多
关键词 Faradaic lithiation Lithium-ion battery Li+intercalation pseudocapacitance Multiple lithium-ion storage mechanism Sodium citrate-based anode
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LiF引发选择性锂化提升硅碳负极可逆容量 被引量:1
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作者 孙金燃 张舒 +11 位作者 张庆华 辛云川 董杉木 刘海胜 李杰东 王超 鲁承龙 杨武海 刘亭亭 马君 谷林 崔光磊 《Science China Materials》 SCIE EI CAS CSCD 2022年第9期2335-2342,共8页
Si@SiO_(x)/C复合负极具有较高比容量,被认为是锂离子电池实际工业应用中最有前途的负极材料.然而,由于硅的严重体积形变,复合负极的循环稳定性依然面临巨大挑战.本工作通过释放负极冗余容量中高度可逆的锂储存能力,提高了复合负极的循... Si@SiO_(x)/C复合负极具有较高比容量,被认为是锂离子电池实际工业应用中最有前途的负极材料.然而,由于硅的严重体积形变,复合负极的循环稳定性依然面临巨大挑战.本工作通过释放负极冗余容量中高度可逆的锂储存能力,提高了复合负极的循环稳定性.基于LiF与不同活性材料之间的界面分离能差,我们针对复合负极提出了一种LiF引发的选择性锂化策略.LiF在Si@SiO_(x)上发生再沉积并富集,分离LiC_(x)和Li_(15)Si_(4)的形成电位,进而促进锂离子在石墨中的存储(未修饰前复合负极中石墨的容量未被充分利用).因此,在不牺牲比容量的前提下,全电池获得了更好的倍率性能和循环性能.超高面容量(NCA/S450,4.9 mA h cm^(-2))的全电池经300次循环后,容量保持率从66.1%显著提高到94.2%.选择性锂化策略在实际工业应用中更加可行,不需要改变现有的电池制造工艺.本研究为长循环寿命硅/石墨复合负极的开发开辟了新途径. 展开更多
关键词 silicon-based composite anode CYCLABILITY selective lithiation LIF interface separation energy
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