返回
Mn-based cathode materials for rechargeable batteries
DOI:10.1007/s11426-023-1706-8.png)
摘要
En 中文
The rapid expansion of renewable energies asks for great progress of energy-storage technologies for sustainable energy supplies, which raises the compelling demand of high-performance rechargeable batteries. To satisfy the huge demand from the coming energy-storage market, the resource and cost-effectiveness of rechargeable batteries become more and more important. Manganese (Mn) as a key transition element with advantages including high abundance, low cost, and low toxicity derives various kinds (spinels, layered oxides, polyanions, Prussian blue analogs, etc.) of high-performance Mn-based electrode materials, especially cathodes, for rechargeable batteries ranging from Li-ion batteries, Na-ion batteries, aqueous batteries, to multivalent metal-ion batteries. It is anticipated that Mn-based materials with Mn as the major transition-metal element will constitute a flourishing family of Mn-based rechargeable batteries (MnRBs) for large-scale and differentiated energy-storage applications. On the other hand, several critical issues including Jahn-Teller effect, Mn dissolution, and O release greatly hinder the pace of MnRBs, which require extensive material optimizations and battery/system improvements. This review aims to provide an investigation about Mn-based materials and batteries for the coming energy-storage demands, with compelling issues and challenges that must be overcome.
Keyword:
manganese
cathode materials
Mn-based rechargeable batteries
energy storage
期刊
IF:
9.7
论文数:
5.5K
被引数:
1.5W
机构
引用论文
High performance manganese-based layered oxide cathodes: overcoming the challenges of sodium ion batteries高性能锰基层状氧化物阴极: 克服钠离子电池的挑战
Electrode Engineering by Atomic Layer Deposition for Sodium-Ion Batteries: From Traditional to Advanced Batteries钠离子电池的原子层沉积电极工程: 从传统电池到先进电池
Perspective on cycling stability of lithium-iron manganese phosphate for lithium-ion batteries锂离子电池用磷酸铁锰锂的循环稳定性展望
RARE METALS
IF11
Recent advances in the research of polyanion-type cathode materials for Li-ion batteries聚阴离子型锂离子电池正极材料的研究进展
Reviving the lithium-manganese-based layered oxide cathodes for lithium-ion batteries锂离子电池锂锰基层状氧化物正极的再生
MATTER
IF17.5
Post-lithium-ion battery cell production and its compatibility with lithium-ion cell production infrastructure后锂离子电池生产及其与锂离子电池生产基础设施的兼容性
NATURE ENERGY
IF60.1
Composition-Tailored Synthesis of Gradient Transition Metal Precursor Particles for Lithium-Ion Battery Cathode Materials用于锂离子电池正极材料的梯度过渡金属前体颗粒的成分定制合成
Modifying Li@Mn6 Superstructure Units by Al Substitution to Enhance the Long-Cycle Performance of Co-Free Li-Rich Cathode通过Al取代修饰Li @ Mn6超结构单元以增强无Co富锂阴极的长循环性能
Targeted masking enables stable cycling of LiNi0.6Co0.2Mn0.2O2 at 4.6V有针对性的掩蔽使LiNi0.6Co0.2Mn0.2O2在4.6V下稳定循环
NANO ENERGY
IF17.1

