轨道杂化化学刺激氧氧还原与可逆相进化在层氧化物阴极
Haojie Dong1, Haoliang Liu1, Yu-Jie Guo2,3
1Center of Nanomaterials for Renewable Energy, State Key Laboratory of Electrical Insulation and Power Equipment, School of Electrical Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi 710049, PR China.
Journal of the American Chemical Society
|August 2, 2024
概括
研究人员使用轨道杂交开发了用于离子电池的新型阴极材料. 这种方法增强了氧氧还原化学,提高了先进电池应用的能量密度和稳定性.
科学领域:
- 材料科学
- 电化学
- 能量储存
背景情况:
- 离子电池需要高能量密度的阴极材料.
- 阴极中的离子氧化还原反应具有高容量,但具有较差的可逆性和结构不稳定性.
- 稳定氧氧还原对于高性能离子电池阴极至关重要.
研究的目的:
- 设计一种可增强电化学可逆性和结构稳定的阴极材料.
- 研究轨道杂交在缺乏的间隔化合物中稳定氧氧还原的作用.
主要方法:
- 一个P2层Na缺乏的正极材料原型的合成:Na43/60Li1/20Mg7/60Cu1/6Mn2/3O2 (P2-NaLMCM').
- 使用轨道混合, 在材料中创建Na-O-Li配置.
- 描述材料的结构和电化学性能.
主要成果:
- 过渡金属板中的Li+离子刺激了非混合的O2p轨道,在高电荷状态下实现了稳定的氧氧还原.
- 将镜型结构转化为交叉生长的Z阶段结构得到了缓解.
- P2-NaLMCM'在0.05°C时达到183.8mAhg-1的高特异容量,在200个循环 (2.0-4.5V) 上保持了80.2%的容量.
结论:
- 轨道杂交是一种有效的策略,用于调整电池材料中的氧氧还原化学.
- 开发的P2-NaLMCM'阴极显示了离子电池的稳定性和高能量密度.
- 这项工作为下一代高能阴极材料的动态结构演变提供了洞察力.
更多相关视频
相关概念视频
Electrolysis
26.2K
In a galvanic cell, the electrical work is done by a redox system on its surroundings as electrons produced by the spontaneous redox reactions are transferred through an external circuit. Alternatively, an external circuit does work on a redox system by imposing a voltage sufficient to drive an otherwise nonspontaneous reaction in a process known as electrolysis. For instance, recharging a battery involves the use of an external power source to drive the spontaneous (discharge) cell reaction in...
26.2K
Ionic Bonding and Electron Transfer
41.3K
Ions are atoms or molecules bearing an electrical charge. A cation (a positive ion) forms when a neutral atom loses one or more electrons from its valence shell, and an anion (a negative ion) forms when a neutral atom gains one or more electrons in its valence shell. Compounds composed of ions are called ionic compounds (or salts), and their constituent ions are held together by ionic bonds: electrostatic forces of attraction between oppositely charged cations and anions.
41.3K
Oxidation-Reduction Reactions
64.6K
Oxidation–Reduction Reactions
64.6K
Ladder Diagrams: Redox Equilibria
446
Ladder diagrams are useful tools for understanding redox equilibrium reactions, especially the effects of concentration changes on the electrochemical potential of the reaction. The vertical axis in the redox ladder diagrams represents the electrochemical potential, E. The area of predominance is demarcated using the Nernst equation.
Consider the Fe3+/Fe2+ half-reaction, which has a standard-state potential of +0.771 V. At potentials more positive than +0.771 V, Fe3+ predominates, whereas Fe2+...
Consider the Fe3+/Fe2+ half-reaction, which has a standard-state potential of +0.771 V. At potentials more positive than +0.771 V, Fe3+ predominates, whereas Fe2+...
446
Voltaic/Galvanic Cells
56.9K
Spontaneous Chemical Reactions
Spontaneous redox reactions occur abundantly in nature. The chemical reaction occurring in a disposable AA battery powering our remote controls is one such example of a spontaneous redox reaction. Another example is the immersion of coiled copper wire into an aqueous silver nitrate solution. The reaction shows a gradual, visually impressive color change from colorless to bright blue and the formation of a grey precipitate on the copper wire. In this experiment,...
Spontaneous redox reactions occur abundantly in nature. The chemical reaction occurring in a disposable AA battery powering our remote controls is one such example of a spontaneous redox reaction. Another example is the immersion of coiled copper wire into an aqueous silver nitrate solution. The reaction shows a gradual, visually impressive color change from colorless to bright blue and the formation of a grey precipitate on the copper wire. In this experiment,...
56.9K
Redox Equilibria: Overview
548
A reduction-oxidation reaction is commonly called a redox reaction. In a redox reaction, electrons are transferred from one species to another rather than being shared between or among atoms. The reducing agent or reductant is the species that loses electrons and gets oxidized in the process. The species that gains electrons and gets reduced in the process is the oxidizing agent or oxidant. Redox reactions are represented as two separate equations called half-reactions, where one equation...
548


