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Optimization Strategies of Na_(3)V_(2)(PO_(4))_(3) Cathode Materials for Sodium‑Ion Batteries
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作者 Jiawen Hu Xinwei Li +4 位作者 Qianqian Liang Li Xu Changsheng Ding Yu Liu Yanfeng Gao 《Nano-Micro Letters》 SCIE EI CAS 2025年第2期204-251,共48页
Na_(3)V_(2)(PO_(4))_(3)(NVP)has garnered great attentions as a prospective cathode material for sodium-ion batteries(SIBs)by virtue of its decent theoretical capacity,superior ion conductivity and high structural stab... Na_(3)V_(2)(PO_(4))_(3)(NVP)has garnered great attentions as a prospective cathode material for sodium-ion batteries(SIBs)by virtue of its decent theoretical capacity,superior ion conductivity and high structural stability.However,the inherently poor electronic conductivity and sluggish sodium-ion diffusion kinetics of NVP material give rise to inferior rate performance and unsatisfactory energy density,which strictly confine its further application in SIBs.Thus,it is of significance to boost the sodium storage performance of NVP cathode material.Up to now,many methods have been developed to optimize the electrochemical performance of NVP cathode material.In this review,the latest advances in optimization strategies for improving the electrochemical performance of NVP cathode material are well summarized and discussed,including carbon coating or modification,foreign-ion doping or substitution and nanostructure and morphology design.The foreign-ion doping or substitution is highlighted,involving Na,V,and PO_(4)^(3−)sites,which include single-site doping,multiple-site doping,single-ion doping,multiple-ion doping and so on.Furthermore,the challenges and prospects of high-performance NVP cathode material are also put forward.It is believed that this review can provide a useful reference for designing and developing high-performance NVP cathode material toward the large-scale application in SIBs. 展开更多
关键词 Sodium-ion batteries Na_(3)V_(2)(PO_(4))_(3) cathode materials Electrochemical performance Optimization strategies
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Enhancing Cycle Life of Graphite‖LiFePO_(4)Batteries via Copper Substituted Li_(2)Ni_(1-x)Cu_(x)O_(2)Cathode Prelithiation Additive
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作者 Jian-Ming Zheng Jing-Wen Zhang Tian-Peng Jiao 《电化学(中英文)》 北大核心 2025年第2期17-27,共11页
Lithium nickel oxide(Li_(2)NiO_(2)),as a sacrificial cathode prelithiation additive,has been used to compensate for the lithium loss for improving the lifespan of lithium-ion batteries(LIBs).However,high-cost Li_(2)Ni... Lithium nickel oxide(Li_(2)NiO_(2)),as a sacrificial cathode prelithiation additive,has been used to compensate for the lithium loss for improving the lifespan of lithium-ion batteries(LIBs).However,high-cost Li_(2)NiO_(2)suffers from inferior delithiation kinetics during the first cycle.Herein,we investigated the effects of the cost-effective copper substituted Li_(2)Ni_(1-x)Cu_(x)O_(2)(x=0,0.2,0.3,0.5,0.7)synthesized by a high-temperature solid-phase method on the structure,morphology,electrochemical performance of graphite‖LiFePO_(4)battery.The X-ray diffraction(XRD)refinement result demonstrated that Cu substitution strategy could be favorable for eliminating the NiO_(x)impurity phase and weakening Li-O bond.Analysis on density of states(DOS)indicates that Cu substitution is good for enhancing the electronic conductivity,as well as reducing the delithi-ation voltage polarization confirmed by electrochemical characterizations.Therefore,the optimal Li_(2)Ni_(0.7)Cu_(0.3)O_(2)delivered a high delithiation capacity of 437 mAh·g^(-1),around 8%above that of the pristine Li_(2)NiO_(2).Furthermore,a graphite‖LiFePO_(4)pouch cell with a nominal capacity of 3000 mAh demonstrated a notably improved reversible capacity,energy density and cycle life through introducing 2 wt%Li_(2)Ni_(0.7)Cu_(0.3)O_(2)additive,delivering a 6.2 mAh·g^(-1)higher initial discharge capacity and achieving around 5%improvement in capacity retentnion at 0.5P over 1000 cycles.Additionally,the post-mortem analyses testified that the Li_(2)Ni_(0.7)Cu_(0.3)O_(2)additive could suppress solid electrolyte interphase(SEI)decomposition and homogenize the Li distribution,which benefits to stabilizing interface between graphite and electrolyte,and alleviating dendritic Li plating.In conclusion,the Li_(2)Ni_(0.7)Cu_(0.3)O_(2)additive may offer advantages such as lower cost,lower delithiation voltage and higher prelithiation capacity compared with Li_(2)NiO_(2),making it a promising candidate of cathode prelithiation additive for next-generation LIBs. 展开更多
关键词 Li_(2)Ni_(1-x)Cu_(x)O_(2) cathode prelithiation additive LiFePO_(4)battery Cycle life Grid energy storage
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P2-type low-cost and moisture-stable cathode for sodium-ion batteries
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作者 Xuan Wang Peng Sun +2 位作者 Siteng Yuan Lu Yue Yufeng Zhao 《Chinese Chemical Letters》 2025年第5期679-684,共6页
Mn-based P2-type oxides are considered as promising cathodes for Na-ion batteries;however,they face significant challenges,including structural degradation when charged at high cutoff voltages and structural changes u... Mn-based P2-type oxides are considered as promising cathodes for Na-ion batteries;however,they face significant challenges,including structural degradation when charged at high cutoff voltages and structural changes upon storing in a humid atmosphere.In response to these issues,we have designed an oxide with co-doping of Cu and Al which can balance both cost and structural stability.The redox reaction of Cu^(2+/3+)can provide certain charge compensation,and the introduction of Al can further suppress the Jahn-Teller effect of Mn,thereby achieving superior long-term cycling performance.The ex-situ XRD testing indicates that Cu/Al co-doping can effectively suppress the phase transition of P2-O2 at high voltage,thereby explaining the improvement in electrochemical performance.DFT calculations reveal a high chemical tolerance to moisture,with lower adsorption energy for H_(2)O compared to pure Na_(0.67)Cu_(0.25)Mn_(0.75)O_(2).A representative Na_(0.67)Cu_(0.20)Al_(0.05)Mn_(0.75)O_(2)cathode demonstrates impressive reversible capacities of 148.7 mAh/g at 0.2 C,along with a remarkable capacity retention of 79.1%(2 C,500 cycles). 展开更多
关键词 cathode material P2 phase Moisture sensitivity LOW-COST Sodium-ion batteries
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Construction and electrochemical performance of NaCrO_(2)@Cr_(2)O_(3)cathode material for sodium-ion batteries
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作者 Mu-lan QIN Chao HU +3 位作者 Guo-zhao FANG Shu-quan LIANG Wan-min LIU Bin SHEN 《Transactions of Nonferrous Metals Society of China》 2025年第6期1987-1995,共9页
The electrochemical performance of layered O3-type NaCrO_(2)cathode material is significantly affected by the side reactions between NaCrO_(2)and electrolyte during sodium storage.A uniform Cr_(2)O_(3)coating layer wa... The electrochemical performance of layered O3-type NaCrO_(2)cathode material is significantly affected by the side reactions between NaCrO_(2)and electrolyte during sodium storage.A uniform Cr_(2)O_(3)coating layer was in situ constructed on the surface of NaCrO_(2)by controlling the excess ratio of sodium source.The structure,morphology,valence and electrochemical performance of the Cr_(2)O_(3)-coated NaCrO_(2)were characterized.The results indicate that the Cr_(2)O_(3)coating layer does not alter the crystal structure and morphology of NaCrO_(2),but effectively suppresses the side reactions between NaCrO_(2)and electrolyte,and improves the surface/interfacial stability of NaCrO_(2)material.The Cr_(2)O_(3)-coated NaCrO_(2)exhibits improved electrochemical performance with a capacity retention of 66.4%after 500 cycles at 10C. 展开更多
关键词 NaCrO_(2) Cr_(2)O_(3) sodium-ion battery cathode material electrochemical performance
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Al–Zr dual-doping enhancing the electrochemical performance of spinel LiMn_(2)O_(4) cathodes
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作者 Wei Wu Yuhui Cui +3 位作者 Yuxin Zheng Fei Huang Hong Li Liang Yin 《Chinese Physics B》 2025年第6期581-586,共6页
LiMn_(2)O_(4)(LMO) represents one of the most prevalent cathode materials utilized in lithium-ion batteries(LIBs), yet its broader application is often hampered by its limited achievable capacity and significant capac... LiMn_(2)O_(4)(LMO) represents one of the most prevalent cathode materials utilized in lithium-ion batteries(LIBs), yet its broader application is often hampered by its limited achievable capacity and significant capacity degradation during cycling. In this work, a novel dual-doping strategy involving Al^(3+) and Zr^(4+) ions has been employed to refine the atomic structure of LMO's spinel framework. The resultant dual-doped material, Li_(1.06)Mn_(1.97)Zr_(0.01)Al_(0.02)O_(4), exhibits enhanced electrochemical properties, boasting a discharge capacity of 124.9 m Ah/g at a rate of 0.1 C. Furthermore, the formation of stronger Al–O and Zr–O bonds contributes to the stabilization of the delithiated LMO structure. Impressively, 97.7%of its initial capacity is retained after 100 cycles at a 5 C rate. Additionally, enhancements in rate performance and hightemperature cycling stability have also been observed. This study underscores the potential of Al^(3+) and Zr^(4+) dual-doping as a promising approach to enhance LMO cathodes, providing a scalable and efficient means of improving the performance of lithium manganese oxide cathode materials through the incorporation of multiple ions. 展开更多
关键词 Li-ion battery cathode LiMn_(2)O_(4) dual-doping
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A lithium carbonate-based additive for the interfacial stabilization of LiCoO_(2)cathode at 4.6 V
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作者 Zhen Wang Jun-Ke Liu +10 位作者 Li Deng Jian Liu Zhi-Liang Jin Yu-Xi Luo Guo-Dong Bai Wen-Jing Sun Gao-Yang Bai Jing-Yi Lin Zu-Wei Yin Yao Zhou Jun-Tao Li 《Journal of Energy Chemistry》 2025年第5期404-413,共10页
Extending the charging voltage of LiCoO_(2)(LCO)is an ongoing and promising approach to increase its energy density.However,the main challenge of the approach lies in the insuperable cathodic interfacial processes at ... Extending the charging voltage of LiCoO_(2)(LCO)is an ongoing and promising approach to increase its energy density.However,the main challenge of the approach lies in the insuperable cathodic interfacial processes at high voltage,which leads to rapid failure both in the performance and structure of the LCO cathode.Herein,a Li_(2)CO_(3)-based additive was prepared by a simple sand-milling method,enabling a low electrochemical decomposition voltage<4.6 V from commonly>4.8 V,stabilizing the interface of the LCO cathode at 4.6 V.The decomposition of Li_(2)CO_(3)provides extra Li^(+)and CO_(2)to supplement the Li consumption required in the initial irreversible interfacial reactions and rapidly form a uniform and stable cathode electrolyte interphase layer(less organic and more inorganic components)on the LCO cathode by reducing CO_(2).Thus,the phase transformation and the emergence of high-valent Co ions on the surface of LCO at 4.6 V high voltage were inhibited.Thanks to this,with 2%Li_(2)CO_(3)-based additive,the capacity retention of commercial LCO at a high voltage of 4.6 V at 0.5 C for 100 cycles was improved from 59.3%to 79.3%.This work improves the high-voltage stability of LCO and provides a new idea for realizing the high-voltage operation of batteries. 展开更多
关键词 Lithium-ion batteries High-voltage LiCoO_(2) Interfacial stability cathode additive Lithium carbonate Sand-milling
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Enhancing formability of NiS_(2)cathode by SiO_(2)doping for high-performance thermal batteries
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作者 SONG Ren-hong HU Jing +4 位作者 LI Xiao GUO Hao ZHANG Wen TIAN Qian-qiu HU Wen-bin 《Journal of Central South University》 2025年第4期1272-1283,共12页
As a cathode material for thermal batteries,NiS_(2)has a high theoretical capacity but low thermal stability.Besides,the poor formability of NiS_(2)powders also restricts the cathode performance of thermal batteries.I... As a cathode material for thermal batteries,NiS_(2)has a high theoretical capacity but low thermal stability.Besides,the poor formability of NiS_(2)powders also restricts the cathode performance of thermal batteries.In this paper,the novel NiS_(2)/SiO_(2)composite material was developed by high temperature vulcanization to improve the thermal stability formability of NiS_(2).The good filling and lubrication of spherical SiO_(2)can improve the thermal conductivity of NiS_(2)electrode.The discharge test shows that the NiS_(2)/SiO_(2)cathode has a stable discharge voltage at a current density of 200 mA/cm^(2),and the activation time is shortened by nearly 20%compared with the NiS_(2)cathode.In addition,due to the favorable thermal insulation protection of SiO_(2),the initial decomposition temperature of NiS_(2)is increased by 30℃after the addition of SiO_(2).The incorporation of SiO_(2)not only effectively improves the thermal stability and electrochemical properties of NiS_(2),but also improves the cold pressing forming performance of the NiS_(2)powder.Therefore,the novel NiS_(2)/SiO_(2)composite material is more suitable for thermal batteries with high stability and fast response,which is of great significance for improving the maneuverability and quality reliability of weapons and equipment. 展开更多
关键词 thermal batteries NiS_(2)/SiO_(2)cathode stable discharge voltage FORMABILITY activation time
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Transition metal-based cathode catalysts for Li-CO_(2)batteries
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作者 Wenqing Ma Mingjuan Gao +5 位作者 Jianping Ma Siyu Liu Lishan Yang Yahui Yang Xiangping Chen Tianzhen Jian 《Journal of Energy Chemistry》 2025年第5期225-253,共29页
The Li-CO_(2)battery has been highly rated as an intriguing technique for balancing the carbon cycle for years,but it is still significantly challenged by the obstacles such as limited reversibility,sluggish kinetics,... The Li-CO_(2)battery has been highly rated as an intriguing technique for balancing the carbon cycle for years,but it is still significantly challenged by the obstacles such as limited reversibility,sluggish kinetics,and poor energy efficiency.Hence,the design and development of advance catalysts that can enhance the kinetics and reversibility of the CO_(2)electrochemical cycling reactions are considered the imperative tasks.Transition metal-based catalysts are widely considered appealing owing to their unfilled dorbitals,rich and adjustable valences,as well as processibility.In this review,the working mechanism and the key issues of the CO_(2)electrochemical cycling reaction are discussed first.Then the strategies for composition and structure design of different type of transition metal-based catalysts are highlighted,including their benefits,limitations,and the ways to implement these strategies.Finally,based on the pioneering research,the perspectives on the challenges and key points for the future development of cathode catalyst are proposed. 展开更多
关键词 Li-CO_(2)battery Transition metal cathode catalyst Catalytic mechanism
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Effect of Mg-doping on electrochemical performance of PrBaFe_(2)O_(5+δ) cathode materials for solid oxide fuel cells
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作者 Ke Xue Changkun Cai +3 位作者 Manyi Xie Shuting Li Shengli An Hong Yang 《Journal of Rare Earths》 2025年第10期2238-2247,I0007,共11页
PrBaFe_(2)O_(5+δ)(PBF)is one of the promising cathode materials for intermediate-temperature solid oxide fuel cell(IT-SOFC)technology.However,as the operating temperature decreases,the electrochemical performance of ... PrBaFe_(2)O_(5+δ)(PBF)is one of the promising cathode materials for intermediate-temperature solid oxide fuel cell(IT-SOFC)technology.However,as the operating temperature decreases,the electrochemical performance of this material deteriorates rapidly.To counter this,various doping strategies have been tested and reported in order to improve the electrochemical properties of this material at intermediate-temperatures.In this study,Mg-doping to partially substitute Fe of PBF was investigated.PrBaFe_(2-x)Mg_(x)O_(5+δ)(PBFMgx,x=0.1,0.15,0.2,0.3)materials were successfully synthesized,and their electrochemical performance as IT-SOFC cathode was evaluated.It is shown that Mg-doping enhances the conductivity of PBF between 650 and 800℃,impacts little on the area-specific resistance of oxygen reduction reaction at and above 700℃,and,most significantly,improves the power density of the NiSDC/SDC/PBFMg0.15single cell by 52%compared to the un-doped PBF.This enhanced electrochemical performance is attributed to the improvement in PBF conductivity by Mg-doping. 展开更多
关键词 SOFC cathode PrBaFe_(2)O_(5+δ) Mg doping Rare earths
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Enhanced stability of perovskite cathode via entropy engineering for CO_(2) electrolysis
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作者 Nan Zhang Wen-Yu Zhang +5 位作者 Yan-Sheng Gong Rui Wang Huan-Wen Wang Jun Jin Ling Zhao Bei-Bei He 《Rare Metals》 2025年第4期2416-2427,共12页
The performance of solid oxide electrolysis cells(SOECs)for CO_(2) electrolysis is significantly impeded by the limited electrochemical activity and insufficient durability of the cathode.This study introduces a novel... The performance of solid oxide electrolysis cells(SOECs)for CO_(2) electrolysis is significantly impeded by the limited electrochemical activity and insufficient durability of the cathode.This study introduces a novel(LaSrPrBaCaGd)_(2)Fe_(1.5)Mo_(0.5)O_(6-δ)(LSPBCGFM)perovskite via A-site entropy engineering,to improve both activity and durability.Experimental results reveal that LSPBCGFM cathode-based SOEC achieves a current density of 1.34 A·cm^(−2) at 1.5 V and 800℃,maintaining stable operation for more than 400 h at 1.2 V with negligible degradation.Theoretical calculations suggest that the high-entropy strategy shifts the transition metal d-band center and O-2p-band center closer to the Fermi energy level simultaneously,thereby initiating more favorable CO_(2) adsorption and activation.In addition,a higher O-2p-band center promotes the formation and diffusion of oxygen vacancies.The findings of this study provide crucial insights into the role of conformational entropy strategies in CO_(2) electrolysis and offer potential pathways for the development of highly efficient and stable catalysts. 展开更多
关键词 Solid oxide electrolysis cells High-entropy perovskite cathode CO_(2)electrolysis Oxygen vacancies
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Highly oxygen reduction activity and CO_(2)resistance of Fe-based cathode electrocatalysts for solid oxide fuel cells
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作者 Zunxing Chu Juntao Gao +7 位作者 Qiang Li Tian Xia Liping Sun Hui Zhao Ivan V.Kovalev Rostislav D.Guskov Mikhail P.Popov A.P.Nemudry 《Journal of Materials Science & Technology》 2025年第9期303-311,共9页
The insufficient electrocatalytic activity and CO_(2)resistance hinder the application of cathode mate-rial for solid oxide fuel cells(SOFCs).In this study,we introduce a series of Pr-doped perovskite Bi_(0.8-x)Pr_(x)... The insufficient electrocatalytic activity and CO_(2)resistance hinder the application of cathode mate-rial for solid oxide fuel cells(SOFCs).In this study,we introduce a series of Pr-doped perovskite Bi_(0.8-x)Pr_(x)Ca_(0.2)FeO_(3-δ)(BPCF_(x),x=0,0.10,0.15,0.20)as candidate cathode materials,with a focus on its phase structure,oxygen desorption ability,catalytic activity,and electrochemical reduction kinetics.Among all the components,the Bi_(0.6)Pr_(0.2)Ca_(0.2)FeO_(3-δ)(BPCF0.20)catalyst shows impressive oxygen reduc-tion reaction(ORR)activity,with a low polarization resistance of 0.06Ωcm^(2)at 700℃and peak power density of 810 mW cm^(−2)at 800℃.Moreover,the BPCF0.20 cathode shows outstanding CO_(2)resistance in different CO_(2)concentrations(1%-10%)due to the larger average bond energy and higher relative acidity of Bi,Pr,and Fe ions.These findings demonstrate that BPCF_(x)are advanced cathode electrocatalysts for SOFCs. 展开更多
关键词 Solid oxide fuel cells cathode electrocatalysts Oxygen reduction reaction CO_(2)resistance
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In situ exsolution nanophase decorated perovskite cathode for solid oxide electrolysis cells with efficient CO_(2)electrolysis performance
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作者 Yitong Li Ming Yin +4 位作者 Caichen Yang Ziling Wang Yunfeng Tian Jian Pu Bo Chi 《Journal of Rare Earths》 2025年第5期1018-1025,共8页
CO_(2)electrolysis using solid oxide electrolysis cells is a promising technology for CO_(2)utilization and conversion,which has attracted more and more attention in recent years because of its extremely high efficien... CO_(2)electrolysis using solid oxide electrolysis cells is a promising technology for CO_(2)utilization and conversion,which has attracted more and more attention in recent years because of its extremely high efficiency.However,traditional Ni-yttria-stabilized zirconia(Ni-YSZ)or Ni-Gd_(0.1)Ce_(0.9)O_(2-δ)(Ni-GDC)metal-ceramic cathode faces many problems such as Ni agglomeration and carbon deposition during long-time operation.Herein,a perovskite oxide La_(0.43-x)Ca_(0.37)Ti_(0.9)Ni_(0.1)O_(3-δ)(LCTN,x=0,0.05,0.1)with nanophase-LaVO_(4)exsolution was investigated as the novel cathode of solid oxide electrolysis cell(SOEC)for efficient CO_(2)electrolysis.The results confirm that the exsolution nanophase on LCTN surface can significantly improve the CO_(2)adsorption and conversion performance.For CO_(2)electrolysis at 1.8 V,an electrolysis current density of 1.24 A/cm2at 800℃can be obtained on SOEC with La_(0.43-x)Ca_(0.37)Ti_(0.9)Ni_(0.1)O_(3-δ)decorated with LaVO_(4)(LCTN-V0.05)cathode.Furthermore,the corresponding cell can maintain stable operation up to 100 h without apparent performance degradation.These results demonstrate that doping-induced second nanophase exsolution is a promising way to design high-performance SOEC cathodes for CO_(2)electrolysis. 展开更多
关键词 Rare earths Solid oxide electrolysis cell CO_(2)electrolysis Perovskite cathode V doping Nanophase exsolution
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Turning waste into treasure:A dual-modulation strategy for Ni-rich cathode towards moderate Li/Ni mixing and Li_(2)CO_(3) encapsulation to enhance lithium storage
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作者 Yuze Zhang Juntao Peng +6 位作者 Minying Zhao Qianhong Huang Yuhong Luo Wanxin Mai Yongbo Wu Zhiguang Xu Xiaoming Lin 《Journal of Energy Chemistry》 2025年第10期300-314,共15页
Ni-rich cathodes(Ni≥70%)with high specific capacities emerge as promising candidates for long-range lithium-ion batteries(LIBs).Nevertheless,their practical application is severely limited by two unresolved challenge... Ni-rich cathodes(Ni≥70%)with high specific capacities emerge as promising candidates for long-range lithium-ion batteries(LIBs).Nevertheless,their practical application is severely limited by two unresolved challenges:structural degradation from uncontrolled Li/Ni mixing and interfacial instability exacerbated by air/electrolyte corrosion.Herein,we propose a dual-modulation strategy to synthesize a stable Ni-rich cathode via carboxylate-based metal-organic frameworks(MOFs)-derived precursors,whereby oxygen vacancies in the precursors induce controlled moderate Li/Ni mixing,while their enhanced specific-surface-area property enables dense amorphous Li_(2)CO_(3)encapsulation.The optimal Li/Ni mixing harnesses the Ni pillar effect to stabilize the structure of cathodes upon cycling.Additionally,amorphous Li_(2)CO_(3)coating serves not only as a thermodynamically stable and air-impermeable protective layer for the cathodes,but as a transformative precursor for an F-rich cathode electrolyte interphase(CEI)which enhances interfacial stability and electrochemical properties.This dual-modulated cathode delivers a high discharge capacity of 215.1 mA h g^(-1)at 0.1 C,retains 84.9% capacity after 200 cycles at 1 C in half cells,and achieves 96.0 mA h g^(-1)at 8 C in full-cell tests.Furthermore,we unravel the potential mechanism of Ni pillar effect from optimal Li/Ni mixing and track the evolution mechanism of Li_(2)CO_(3)coating into F-rich CEI.This work offers advanced perspectives for the controllable cation disordering engineering and rational design of surface residual lithium compounds in Ni-rich cathodes,thereby providing new guiding principles for protecting high-capacity cathodes in energy storage devices. 展开更多
关键词 Ni-rich cathode Amorphous Li_(2)CO_(3)coating Li/Ni mixing Lithium-ion batteries MOFs derivatives Electrochemical properties
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Ultrafast synthesis of Na_(3)V_(2)(PO_(4))_(3)cathode for high performance sodium-ion batteries
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作者 Ruofan Yin Zhaoxin Guo +1 位作者 Rui Liu Xian-Sen Tao 《Chinese Chemical Letters》 2025年第2期536-539,共4页
Na_(3)V_(2)(PO_(4))_(3)(NVP)is regarded as alternative cathode material for sodium-ion batteries(SIBs)due to its potential high-rate performance and pronounced long-term cycle stability.However,electronic conductivity... Na_(3)V_(2)(PO_(4))_(3)(NVP)is regarded as alternative cathode material for sodium-ion batteries(SIBs)due to its potential high-rate performance and pronounced long-term cycle stability.However,electronic conductivity and tap density are difficult to be balanced.Herein,we report that high-temperature shock(HTS)can prepare“single crystalline like”NVP which combines high-rate capability with high tap density together into one with the assistance of carbon framework and large particle.Thus,high reversible capacity of 110m Ah/g at 0.1 C with 89.9%capacity retention after 1600 cycles at 1 C and specific capacity of 83.5 m Ah/g at 50 C rate has been exhibited.This study provides a novel strategy to guide the production of high tap density,and rate performance polyanionic cathode materials. 展开更多
关键词 Sodium-ion batteries cathode materials Na_(3)V_(2)(PO_(4))_(3) High-temperature shock Cycling stability
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Breaking boundaries in O_(3)-type NaNi_(1/3)Fe_(1/3)Mn_(1/3)O_(2)cathode materials for sodium-ion batteries:An industrially scalable reheating strategy for superior electrochemical performance
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作者 Manman Chen Cai Zhao +10 位作者 Yan Li Hui Wang Kaihang Wang Shengchen Yang Yue Gao Wenjuan Zhang Chun Chen Tao Zhang Lei Wen Kehua Dai Jing Mao 《Journal of Energy Chemistry》 2025年第3期107-119,共13页
To address the challenges of air stability and slurry processability in layered transition metal oxide O_(3)-type NaNi_(1/3)Fe_(1/3)Mn_(1/3)O_(2)(NFM)for sodium-ion batteries(SIBs),we have designed an innovative 500℃... To address the challenges of air stability and slurry processability in layered transition metal oxide O_(3)-type NaNi_(1/3)Fe_(1/3)Mn_(1/3)O_(2)(NFM)for sodium-ion batteries(SIBs),we have designed an innovative 500℃reheating strategy.This method improves the surface properties of NFM without the need for additional coating layers,making it more efficient and suitable for large-scale applications.Pristine NFM(NFM-P)was first synthesized through a high-temperature solid-state method and then modified using this reheating approach(NFM-HT).This strategy significantly enhances air stability and electrochemical performance,yielding an initial discharge specific capacity of 151.46 mAh/g at 0.1C,with a remarkable capacity retention of 95.04%after 100 cycles at 0.5C.Additionally,a 1.7 Ah NFM‖HC(hard carbon)pouch cell demonstrates excellent long-term cycling stability(94.64%retention after 500 cycles at 1C),superior rate capability(86.48%retention at 9C),and strong low-temperature performance(77%retention at-25℃,continuing power supply at-40℃).Notably,even when overcharged to 8.29 V,the pouch cell remained safe without combustion or explosion.This reheating strategy,which eliminates the need for a coating layer,offers a simpler,more scalable solution for industrial production while maintaining outstanding electrochemical performance.These results pave the way for broader commercial adoption of NFM materials. 展开更多
关键词 Sodium-ion batteries O_(3)-type layered oxide cathode REHEATING Al_(2)O_(3)coating Pouch full cells
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A scalable approach to Na_(4)Fe_(3)(PO_(4))_(2)P_(2)O_(7)@carbon/expanded graphite as cathode for ultralong-lifespan and low-temperature sodium-ion batteries
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作者 Zheng Li Fangkun Li +9 位作者 Xijun Xu Jun Zeng Hangyu Zhang Lei Xi Yiwen Wu Linwei Zhao Jiahe Chen Jun Liu Yanping Huo Shaomin Ji 《Chinese Chemical Letters》 2025年第10期616-622,共7页
Mixed polyanion phosphate Na_(4)Fe_(3)(PO_(4))_(2)P_(2)O_(7)(NFPP)is regarded as the most promising cathode material for sodium-ion batteries(SIBs),due to its high structural stability and low-cost environmental frien... Mixed polyanion phosphate Na_(4)Fe_(3)(PO_(4))_(2)P_(2)O_(7)(NFPP)is regarded as the most promising cathode material for sodium-ion batteries(SIBs),due to its high structural stability and low-cost environmental friendliness.However,its intrinsic low conductivity and sluggish Na^(+)diffusion restricted the fast-charge and low-temperature sodium storage.Herein,an NFPP composite encapsulated by in-situ pyrolytic carbon and coupled with expanded graphite(NFPP@C/EG)was constructed via a sol-gel method followed by a ballmill procedure.Due to the dual-carbon modified strategy,this NFPP@C/EG only enhanced the electronic conductivity,but also endowed more channels for Na^(+)diffusion.As cathode for SIBs,the optimized NFPP(M-NFPP@C/EG)delivers excellent rate capability(capacity of~80.5 mAh/g at 50 C)and outstanding cycling stability(11000 cycles at 50 C with capacity retention of 89.85%).Additionally,cyclic voltammetry(CV)confirmed that its sodium storage behavior is pseudocapacitance-controlled,with in-situ electrochemical impedance spectroscopy(EIS)further elucidating improvements in electrode reaction kinetics.At lower temperatures(0℃),M-NFPP@C/EG demonstrated exceptional cycling performance(8800 cycles at 10 C with capacity retention of 95.81%).Moreover,pouch cells also exhibited excellent stability.This research demonstrates the feasibility of a dual carbon modification strategy in enhancing NFPP and proposes a low-cost,high-rate,and ultra-stable cathode material for SIBs. 展开更多
关键词 Na_(4)Fe_(3)(PO_(4))_(2)P_(2)O_(7) Expanded graphite Dual-carbon modified Polyanionic compounds cathode Sodium-ion batteries
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Elevated temperature resilience of pouch LiNi_(0.8)Co_(0.1)Mn_(0.1)O_(2)/graphite batteries through siloxane-induced cathode electrolyte interphase optimization
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作者 Xiang Gao Peiqi Zhou +6 位作者 Haijia Li Xueyi Zeng Xin He Weizhen Fan Wenlian Wang Zhen Ma Junmin Nan 《Journal of Energy Chemistry》 2025年第5期202-213,共12页
As a potential candidate for high-energy lithium-ion batteries (LIBs),nickel-rich cathodes encounter significant challenges due to structural instability arising from interphases.In this work,tris(ethenyl)-tris(etheny... As a potential candidate for high-energy lithium-ion batteries (LIBs),nickel-rich cathodes encounter significant challenges due to structural instability arising from interphases.In this work,tris(ethenyl)-tris(ethenyl)silyloxysilane (HVDS) with Si–O bonds and unsaturated bonds is introduced as additive designing functional electrolyte to enhance the long-cycle stability of LiNi_(0.8)Co_(0.1)Mn_(0.1)O_(2)(NCM811)/graphite LIBs at elevated temperature.The preferential oxidization and component of HVDS facilitate the generation of an extremely robust and ultra-thin cathode electrolyte interphase (CEI) comprising a chemically bonded silane polymer.This interphase effectively suppresses side-reactions of electrolyte,mitigates HF erosion,and reduces irreversible phase transitions.Benefiting from the above merits,the batteries’capacity retention shows a remarkable increase from 20% to 92% after nearly 1550 cycles conducted at room temperature.And under elevated temperature conditions (45℃),the capacity retention remains 80%after 670 cycles,in comparison to a drop to 80%after only 250 cycles with the blank electrolyte.These findings highlight HVDS’s potential to functionalize the electrolyte,marking a breakthrough in improving the longevity and reliability of NCM811/graphite LIBs under challenging conditions. 展开更多
关键词 High temperature performance Tris(ethenyl)-tris(ethenyl)silyloxysilane additive LiNi_(0.8)Co_(0.1)Mn_(0.1)O_(2)/graphite battery cathode electrolyte interphase
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Preferentially selective extraction of lithium from spent LiCoO_(2)cathodes by medium-temperature carbon reduction roasting 被引量:3
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作者 Daixiang Wei Wei Wang +6 位作者 Longjin Jiang Zhidong Chang Hualei Zhou Bin Dong Dekun Gao Minghui Zhang Chaofan Wu 《International Journal of Minerals,Metallurgy and Materials》 SCIE EI CAS CSCD 2024年第2期315-322,共8页
Lithium recovery from spent lithium-ion batteries(LIBs)have attracted extensive attention due to the skyrocketing price of lithium.The medium-temperature carbon reduction roasting was proposed to preferential selectiv... Lithium recovery from spent lithium-ion batteries(LIBs)have attracted extensive attention due to the skyrocketing price of lithium.The medium-temperature carbon reduction roasting was proposed to preferential selective extraction of lithium from spent Li-CoO_(2)(LCO)cathodes to overcome the incomplete recovery and loss of lithium during the recycling process.The LCO layered structure was destroyed and lithium was completely converted into water-soluble Li2CO_(3)under a suitable temperature to control the reduced state of the cobalt oxide.The Co metal agglomerates generated during medium-temperature carbon reduction roasting were broken by wet grinding and ultrasonic crushing to release the entrained lithium.The results showed that 99.10%of the whole lithium could be recovered as Li2CO_(3)with a purity of 99.55%.This work provided a new perspective on the preferentially selective extraction of lithium from spent lithium batteries. 展开更多
关键词 spent LiCoO_(2)cathodes medium-temperature carbon reduction lithium extraction priority crystal transformation macro-scopic transport resistance
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铁掺杂ε-MnO_(2)纳米片的制备与电化学性能
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作者 严业八 邓碧雯 +1 位作者 陶涛 鲁圣国 《材料研究与应用》 2025年第2期321-326,共6页
二氧化锰因资源丰富、价廉、无污染等特点,有望成为下一代锂电池正极材料。由于二氧化锰结晶形态的多样性,因此可以通过结构状态优化电极材料的制备方法,制备出具有优良的锂嵌入脱出性能的电极。然而,二氧化锰在循环过程中体积的变化及... 二氧化锰因资源丰富、价廉、无污染等特点,有望成为下一代锂电池正极材料。由于二氧化锰结晶形态的多样性,因此可以通过结构状态优化电极材料的制备方法,制备出具有优良的锂嵌入脱出性能的电极。然而,二氧化锰在循环过程中体积的变化及本征电导率低的原因,导致材料的容量衰减十分迅速。为了改善上述问题,可采用多种策略,如制备纳米结构的MnO_(2)、掺入其他元素稳定结构、与高导电的碳材料复合等,改善二氧化锰的电化学性能。以高锰酸钾(KMnO_(4))和十八水合硫酸亚铁(FeSO_(4)·18H_(2)O)为原料,通过水热反应在碳布上(CC)生长Fe掺杂的ε-MnO_(2)纳米片,同时为了提高纳米片正极的导电性和稳定性,将导电炭黑(Super P)和海藻酸钠(SA)的混合物涂敷在电极表面。通过X射线衍射仪(XRD)、场发射扫描电子显微镜(SEM)和拉曼光谱,分别对MnO_(2)纳米片正极样品的形貌和结构进行了表征;使用循环伏安法(CV)、恒流充放电等方法,研究MnO_(2)纳米片正极样品的电化学性能。结果表明,Fe掺杂后的ε-MnO_(2)晶体尺寸减小,同时电荷转移电阻(R_(ct))变小,纳米片正极的电化学性能得到提高。在电极上涂覆Super P和SA后,电极的锂离子扩散系数提高,长循环性能与倍率性能进一步提高,在0.5C电流密度下,循环100圈后,电极的放电比容量为151.8 mA·h·g^(-1),比相同条件下制备的纯MnO_(2)的放电比容量提高了83.4 mA·h·g^(-1);在2C大电流密度下循环120圈后,MnO_(2)纳米片电极的比容量为133.4 mA·h·g^(-1)。 展开更多
关键词 ε-mno_(2) 水热法 FE掺杂 Li-mno_(2)二次电池 锂电池 纳米片 正极材料
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Boosting oxygen reduction activity and CO_(2) resistance on bismuth ferrite-based perovskite cathode for low-temperature solid oxide fuel cells below 600℃ 被引量:2
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作者 Juntao Gao Zhiyun Wei +5 位作者 Mengke Yuan Zhe Wang Zhe Lü Qiang Li Lingling Xu Bo Wei 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2024年第3期600-609,I0013,共11页
Developing efficient and stable cathodes for low-temperature solid oxide fuel cells(LT-SOFCs) is of great importance for the practical commercialization.Herein,we propose a series of Sm-modified Bi_(0.7-x)Sm_xSr_(0.3)... Developing efficient and stable cathodes for low-temperature solid oxide fuel cells(LT-SOFCs) is of great importance for the practical commercialization.Herein,we propose a series of Sm-modified Bi_(0.7-x)Sm_xSr_(0.3)FeO_(3-δ) perovskites as highly-active catalysts for LT-SOFCs.Sm doping can significantly enhance the electrocata lytic activity and chemical stability of cathode.At 600℃,Bi_(0.675)Sm_(0.025)Sr_(0.3)FeO_(3-δ)(BSSF25) cathode has been found to be the optimum composition with a polarization resistance of 0.098 Ω cm^2,which is only around 22.8% of Bi_(0.7)Sr_(0.3)FeO_(3-δ)(BSF).A full cell utilizing BSSF25 displays an exceptional output density of 790 mW cm^(-2),which can operate continuously over100 h without obvious degradation.The remarkable electrochemical performance observed can be attributed to the improved O_(2) transport kinetics,superior surface oxygen adsorption capacity,as well as O_(2)p band centers in close proximity to the Fermi level.Moreover,larger average bonding energy(ABE) and the presence of highly acidic Bi,Sm,and Fe ions restrict the adsorption of CO_(2) on the cathode surface,resulting in excellent CO_(2) resistivity.This work provides valuable guidance for systematic design of efficient and durable catalysts for LT-SOFCs. 展开更多
关键词 Low-temperature solid oxide fuel cell Perovskite cathode DFT calculations CO_(2) tolerance
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