4.8 Article

V Doping in NASICON-Structured Na3MnTi(PO4)3 Enables High-Energy and Stable Sodium Storage

相关参考文献

注意:仅列出部分参考文献,下载原文获取全部文献信息。
Article Chemistry, Physical

Mn-Rich Phosphate Cathodes for Na-Ion Batteries with Superior Rate Performance

Chunliu Xu et al.

Summary: In this study, a selective replacement of vanadium rather than manganese in the Na4VMn(PO4)(3) system was developed to enhance the anode performance and structural stability. Experimental results confirmed that the Al-substituted Na4V0.8Al0.2Mn(PO4)(3) anode exhibited favorable ion kinetics and structure stability.

ACS ENERGY LETTERS (2022)

Article Materials Science, Multidisciplinary

Benefits of vanadium doping in Na3MnTi(PO4)3/C as a potential candidate for sodium-ion batteries

Yingying Jiang et al.

Summary: The study demonstrates that vanadium doping can enhance the electrochemical performance of Na3MnTi(PO4)(3)/C, resulting in higher specific capacity and outstanding cyclability.

MATERIALS CHEMISTRY AND PHYSICS (2022)

Article Chemistry, Physical

Application of Porous Coordination Polymer Containing Aromatic Azo Linkers as Cathode-Active Materials in Sodium-Ion Batteries

Takeshi Shimizu et al.

Summary: This study investigated a method to achieve high capacity and good cycle performance of sodium-ion batteries by combining aromatic azo compounds with redox-active atoms insoluble in the electrolyte. The metal-organic framework CPL-4 was also studied as a cathode-active material for sodium-ion and lithium-ion batteries, showing reversible crystal structural changes and redox reactions. The findings contribute to the design of high-performance sodium-ion batteries.

ACS APPLIED ENERGY MATERIALS (2022)

Article Multidisciplinary Sciences

Slight compositional variation-induced structural disorder-to-order transition enables fast Na+ storage in layered transition metal oxides

Yuansheng Shi et al.

Summary: The study demonstrates that the ordering of Na+ and vacancies can significantly affect the migration of Na+ ions, with specific ordering accelerating the process and resulting in higher diffusivities and lower activation energies.

NATURE COMMUNICATIONS (2022)

Article Chemistry, Multidisciplinary

Stabilized Multi-Electron Reactions in a High-Energy Na4Mn0.9CrMg0.1(PO4)3 Sodium-Storage Cathode Enabled by the Pinning Effect

Jie Li et al.

Summary: In this study, Mg is used to partially substitute Mn in the Na4MnCr(PO4)(3) cathode to improve its cycling stability. The Mg-doped cathode exhibits high capacity retention, impressive rate capability, and excellent energy density. In situ X-ray diffraction and density functional theory calculations confirm the highly reversible structural evolution and improved electrode process kinetics and electronic conductivity after Mg doping.
Article Energy & Fuels

Low-solvation electrolytes for high-voltage sodium-ion batteries

Yan Jin et al.

Summary: The authors develop an electrolyte that effectively suppresses the dissolution of the solid-electrolyte interphase in sodium-ion batteries, enabling long-cycle and high-voltage performance. This study provides a guiding principle in electrolyte design for sodium-ion batteries.

NATURE ENERGY (2022)

Article Chemistry, Multidisciplinary

Heterogeneous NASICON-Type Composite as Low-Cost, High-Performance Cathode for Sodium-Ion Batteries

Jin-Zhi Guo et al.

Summary: A double-carbon-layer decorated heterogeneous composite, Na3V2(PO4)(3)-Na3Fe2(PO4)(P2O7) (NVFPP/C/G), is successfully prepared to address the limitations of sodium-ion battery cathodes. The composite exhibits excellent electrochemical performance in both half-cell and full-cell systems.

ADVANCED FUNCTIONAL MATERIALS (2022)

Article Materials Science, Multidisciplinary

Improving electrochemical performance of Na4MnV(PO4)3 cathode material through Ti substitution

Lu Lu et al.

Summary: Mn-based NASICON compounds with different Ti/V ratios were synthesized and their structure and electrochemical properties were investigated. Among them, Na3.7MnTi0.3V0.7(PO4)(3) showed the best cycle stability and rate capability, demonstrating potential application as a cathode material for Na-ion batteries.

MATERIALS LETTERS (2022)

Article Chemistry, Physical

Ligand-Substitution Chemistry Enabling Wide-Voltage Aqueous Hybrid Electrolyte for Ultrafast-Charging Batteries

Xiliang Zhao et al.

Summary: This study develops a Na+/Zn2+ hybrid electrolyte with a wide electrochemical stability window and high ionic conductivity, providing important guidance for high-performance sodium-zinc hybrid batteries. It also explores the pairing of zinc anode with different types of sodium superionic conductor cathodes, achieving promising rate performance and long cycle life.

ADVANCED ENERGY MATERIALS (2022)

Review Chemistry, Physical

Towards high-performance phosphate-based polyanion-type materials for sodium-ion batteries

Yong Yuan et al.

Summary: Efficient energy storage techniques are crucial for sustainable energy utilization. Sodium-ion batteries are considered as promising alternatives to lithium-ion batteries due to their abundant sodium resources and comparable reaction pattern. Phosphate-based materials, as cathode materials for sodium-ion batteries, have stable structures and high operating potentials, but suffer from low electronic conductivity and limited energy density.

ENERGY STORAGE MATERIALS (2022)

Article Chemistry, Physical

3D porous spheroidal Na4Mn0.9Ce0.1V(PO4)3@CeO2/C cathode for high-energy Na ion batteries

Kun Wang et al.

Summary: The 3D porous spheroidal Ce3+-doped NMVP@CeO2/C cathode showed improved electronic conductivity and stabilized crystalline structure due to the synergistic effect of Ce3+ doping in the crystal framework and CeO2 surface coating. The optimized NMVP cathode delivered superior discharge performance and long cycle life, with potential for practical utilization in full cells demonstrated through successful assembly.

JOURNAL OF MATERIALS CHEMISTRY A (2022)

Article Engineering, Environmental

Experimental and theoretical investigation of Na4MnAl(PO4)3 cathode material for sodium-ion batteries

Qianchen Wang et al.

Summary: The novel NASICON-related structure Na4MnAl(PO4)(3) shows high specific capacity and voltage plateaus, with the sodium ion storage mechanism and diffusion path investigated. The DFT calculations suggest a potential for higher voltage and specific capacity, making it a strong contender for cathode material in sodium-ion batteries.

CHEMICAL ENGINEERING JOURNAL (2021)

Article Chemistry, Physical

Nitroaromatics as High-Energy Organic Cathode Materials for Rechargeable Alkali-Ion (Li+, Na+, and K+) Batteries

Xudong Liu et al.

Summary: This study introduces a group of organic nitroaromatic compounds as novel high-energy cathode materials with record-high reversible capacities, demonstrating potential for next-generation alkali-ion batteries.

ADVANCED ENERGY MATERIALS (2021)

Article Chemistry, Multidisciplinary

Polymer Stabilized Droplet Templating towards Tunable Hierarchical Porosity in Single Crystalline Na3V2(PO4)3 for Enhanced Sodium-Ion Storage

Hailong Xiong et al.

Summary: A novel approach to synthesize porous single crystal structured Na3V2(PO4)(3) material was developed in this study, where the pore structures and specific surface areas of the samples can be easily controlled by tuning the sizes of droplet templates. The hierarchically meso/macropores NVP shows superior sodium storage performances due to its solid-liquid Na+ transmission mode, shortened ion diffusion distance, and large electrode-electrolyte contact area, indicating a promising application in future battery technologies.

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION (2021)

Article Chemistry, Multidisciplinary

Activating a Multielectron Reaction of NASICON-Structured Cathodes toward High Energy Density for Sodium-Ion Batteries

Mingzhe Chen et al.

Summary: The demand for efficiently storing and utilizing electricity from renewable energy resources has led to an increased interest in sodium-ion battery technology. By utilizing a doping strategy with Cr in NASICON-structured cathodes, multielectron redox reactions are activated, resulting in significantly improved energy density, overcoming the bottleneck for commercializing sodium-ion batteries.

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY (2021)

Article Chemistry, Multidisciplinary

A robust carbon coating of Na3V2(PO4)3 cathode material for high performance sodium-ion batteries

Liying Shen et al.

Summary: Na3V2(PO4)(3) is a promising electrode material for sodium-ion batteries, but faces limitations due to poor electronic conductivity. A two-step method was used to prepare carbon-coated Na3V2(PO4)(3) materials with remarkable electrochemical performance, surpassing most advanced cathode materials reported in literature.

CHINESE CHEMICAL LETTERS (2021)

Review Chemistry, Physical

Low-Cost Polyanion-Type Sulfate Cathode for Sodium-Ion Battery

Yun Gao et al.

Summary: The urgent need for developing renewable and clean energy storage devices due to environmental degradation and the energy crisis has led to sodium ion batteries (SIBs) being promising candidates. To accelerate the commercialization of SIBs, stable and high-voltage cathode materials, such as polyanionic sulfate materials (PSMs), are considered to be the most promising for increasing the energy density of SIBs.

ADVANCED ENERGY MATERIALS (2021)

Article Nanoscience & Nanotechnology

Toward a High-Energy-Density Cathode with Enhanced Temperature Adaptability for Sodium-Ion Batteries: A Case Study of Na3MnZr(PO4)3 Microspheres with Embedded Dual-Carbon Networks

Xudong Ma et al.

Summary: A scalable spray-drying strategy was proposed to construct interconnected conductive networks in microspheres, which showed excellent rate performance and long-term cycling stability in a wide temperature range for sodium-ion batteries.

ACS APPLIED MATERIALS & INTERFACES (2021)

Article Chemistry, Physical

Achieving highly reversible and fast sodium storage of Na4VMn(PO4)3/C-rGO composite with low-fraction rGO via spray-drying technique

Guijia Cui et al.

Summary: In this study, an ultrahigh rate capable and long cycle life NVMP/C-rGO composite was successfully prepared using spray-drying technique, showing excellent electron conductivity as a cathode in sodium ion batteries. This composite material delivered high reversible capacities at different rates, with outstanding capacity retention over 500 cycles.

NANO ENERGY (2021)

Article Chemistry, Physical

Unlocking fast and reversible sodium intercalation in NASICON Na4MnV(PO4)3 by fluorine substitution

Jingrong Hou et al.

Summary: A novel sodium-deficient NASICON fluorinated phosphate cathode material for sodium ion batteries has been developed in this study, demonstrating high energy and high power densities as well as high sodium diffusion kinetics. Compared to traditional materials, this cathode shows improved performance including higher energy density, enhanced rate capability, and long cycling life. The findings open up promising prospects for high-performance sodium ion batteries by unlocking the potential of NASICON phosphate materials through fluorine substitution.

ENERGY STORAGE MATERIALS (2021)

Article Chemistry, Physical

Improved Performance of Na3TiMn(PO4)3 Using a Non-stoichiometric Synthesis Strategy

Jiansheng Zhang et al.

Summary: The study demonstrates that NTMP material synthesized using a non-stoichiometric strategy can significantly improve its performance, including reducing discharge plateau and suppressing voltage hysteresis, making it have higher cycling stability.

ACS ENERGY LETTERS (2021)

Article Multidisciplinary Sciences

Hidden diversity of vacancy networks in Prussian blue analogues

Arkadiy Simonov et al.

NATURE (2020)

Article Multidisciplinary Sciences

Reversible structural evolution of sodium-rich rhombohedral Prussian blue for sodium-ion batteries

Wanlin Wang et al.

NATURE COMMUNICATIONS (2020)

Article Chemistry, Physical

Concentration-Gradient Prussian Blue Cathodes for Na-Ion Batteries

Pu Hu et al.

ACS ENERGY LETTERS (2020)

Article Multidisciplinary Sciences

Rational design of layered oxide materials for sodium-ion batteries

Chenglong Zhao et al.

SCIENCE (2020)

Article Chemistry, Physical

Reversible densification in nano-Li2MnO3 cation disordered rock-salt Li-ion battery cathodes

Maria Diaz-Lopez et al.

JOURNAL OF MATERIALS CHEMISTRY A (2020)

Review Chemistry, Multidisciplinary

Polyanion-type cathode materials for sodium-ion batteries

Ting Jin et al.

CHEMICAL SOCIETY REVIEWS (2020)

Article Chemistry, Physical

Multidimensional Na4VMn0.9Cu0.1(PO4)3/C cotton-candy cathode materials for high energy Na-ion batteries

Vaiyapuri Soundharrajan et al.

JOURNAL OF MATERIALS CHEMISTRY A (2020)

Article Chemistry, Physical

Unraveling the Relationship between Ti4+ Doping and Li+ Mobility Enhancement in Ti4+ Doped Li3V2 (PO4)3

Qihang Wang et al.

ACS APPLIED ENERGY MATERIALS (2020)

Review Chemistry, Multidisciplinary

Layer-Based Heterostructured Cathodes for Lithium-Ion and Sodium-Ion Batteries

Ya-Ping Deng et al.

ADVANCED FUNCTIONAL MATERIALS (2019)

Review Chemistry, Physical

Polyanionic Insertion Materials for Sodium-Ion Batteries

Prabeer Barpanda et al.

ADVANCED ENERGY MATERIALS (2018)

Article Chemistry, Physical

Rational Architecture Design Enables Superior Na Storage in Greener NASICON-Na4MnV(PO4)(3) Cathode

Huangxu Li et al.

ADVANCED ENERGY MATERIALS (2018)

Article Electrochemistry

Sodium intercalation/de-intercalation mechanism in Na4MnV(PO4)(3) cathode materials

Umair Nisar et al.

ELECTROCHIMICA ACTA (2018)

Article Chemistry, Multidisciplinary

Na3MnZr(PO4)3: A High-Voltage Cathode for Sodium Batteries

Hongcai Gao et al.

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY (2018)

Review Chemistry, Multidisciplinary

Electrolyte design strategies and research progress for room-temperature sodium-ion batteries

Haiying Che et al.

ENERGY & ENVIRONMENTAL SCIENCE (2017)

Article Materials Science, Multidisciplinary

F-doped O3-NaNi1/3Fe1/3Mn1/3O2 as high-performance cathode materials for sodium-ion batteries

Qin Zhang et al.

SCIENCE CHINA-MATERIALS (2017)

Review Chemistry, Multidisciplinary

Challenges and Perspectives for NASICON-Type Electrode Materials for Advanced Sodium-Ion Batteries

Shuangqiang Chen et al.

ADVANCED MATERIALS (2017)

Article Chemistry, Multidisciplinary

NaxMV(PO4)3 (M = Mn, Fe, Ni) Structure and Properties for Sodium Extraction

Weidong Zhou et al.

NANO LETTERS (2016)

Review Chemistry, Physical

Recent Progress in Electrode Materials for Sodium-Ion Batteries

Hyungsub Kim et al.

ADVANCED ENERGY MATERIALS (2016)

Review Chemistry, Multidisciplinary

Recent Advances and Prospects of Cathode Materials for Sodium-Ion Batteries

Xingde Xiang et al.

ADVANCED MATERIALS (2015)

Article Multidisciplinary Sciences

Unraveling the storage mechanism in organic carbonyl electrodes for sodium-ion batteries

Xiaoyan Wu et al.

SCIENCE ADVANCES (2015)

Article Chemistry, Multidisciplinary

Sodium-Ion Batteries

Michael D. Slater et al.

ADVANCED FUNCTIONAL MATERIALS (2013)

Article Chemistry, Physical

Defects in Hydrothermally Synthesized LiFePO4 and LiFe1-xMnxPO4 Cathode Materials

Kirsten M. O. Jensen et al.

CHEMISTRY OF MATERIALS (2013)