多层性金属泰坦酸盐具有分阶结构和优越的电化学性能
Aranee Pleng Teepakakorn1,2, Tomohiro Tanaka1, Nobuyuki Sakai1
1Research Center for Materials Nanoarchitectonics (MANA), National Institute for Materials Science (NIMS), 1-1 Namiki, Tsukuba, Ibaraki 305-0044, Japan.
Inorganic chemistry
|August 4, 2025
概括
研究人员合成了一种具有α-NaFeO2型结构的新型分层酸. 这种材料具有独特的分阶段和卓越的离子储存性能,使其对电化学应用具有前景.
科学领域:
- 材料科学 材料科学 材料科学
- 电化学 电化学 电化学
- 固态化学 固态化学
背景情况:
- 层状酸盐正在研究用于储能应用.
- 控制离子交换和结构性质是提高电化学性能的关键.
研究的目的:
- 为了探索α-NaFeO2型层状酸盐的形成范围.
- 为了研究其离子交换行为和电化学性能.
- 了解结构修改对离子储存能力的影响.
主要方法:
- 在900°C的固态反应合成.
- 在80°C的水溶液中发生离子交换.
- 粉末X射线衍射和瑞特维尔德精细化用于结构分析.
- 对Li+和Na+离子进行电化学测试. +和Na+离子间隙-脱.
主要成果:
- 成功合成了具有α-NaFeO2型结构的分层酸Na_xTi_{1-x/3}Li_{x/3}O2 (x = 0.68-0.70).
- 证明了Na+中间层与金属离子和质子/氧离子之间容易发生离子交换.
- 揭示了一个独特的舞台结构的形成,交替占用层间画廊.
- 观察到 Li+ 和 Na+ 离子储存的分阶结构酸盐的优异电化学性能.
结论:
- α-NaFeO2 类型的层状酸盐可以在特定的组成范围内合成.
- 该材料表现出多功能离子交换特性,导致独特的分阶结构.
- 由于其开放的介层画廊,开发的分阶结构提高了离子存储的电化学性能.
相关概念视频
Bonding in Metals
45.5K
Metallic bonds are formed between two metal atoms. A simplified model to describe metallic bonding has been developed by Paul Drüde called the “Electron Sea Model”.
45.5K
Metallic Solids
16.4K
Metallic solids such as crystals of copper, aluminum, and iron are formed by metal atoms. The structure of metallic crystals is often described as a uniform distribution of atomic nuclei within a “sea” of delocalized electrons. The atoms within such a metallic solid are held together by a unique force known as metallic bonding that gives rise to many useful and varied bulk properties.
All metallic solids exhibit high thermal and electrical conductivity, metallic luster, and...
All metallic solids exhibit high thermal and electrical conductivity, metallic luster, and...
16.4K
EDTA: Chemistry and Properties
4.1K
Polydentate ligands are most widely used in complexometric titrations because they form more stable complexes with the metal ions than mono- or bidentate ligands due to the chelate effect. Examples of polydentate ligands are ethylenediaminetetraacetic acid (EDTA), crown ethers, and cryptands. The most important feature of optimal polydentate ligands is the ability to form 1:1 complexes in a single-step process. Amino carboxylic acid derivatives are frequently used as complexing agents. EDTA is...
4.1K
EDTA: Auxiliary Complexing Reagents
1.6K
EDTA titrations are usually carried out in highly basic conditions, where the fully deprotonated form of EDTA, Y4−, actively complexes with the free metal ions in the solution. Several metal ions precipitate as hydrous oxide (hydroxides, oxides, or oxyhydroxides) under these conditions, lowering the concentration of free metal ions in the solution. For this reason, auxiliary complexing agents or ligands such as ammonia, tartrate, citrate, or triethanolamine are used in EDTA titrations to...
1.6K
Extraction: Advanced Methods
1.3K
Metal ions can be separated from one another by complexation with organic ligands–the chelating agent– to form uncharged chelates. Here, the chelating agent must contain hydrophobic groups and behave as a weak acid, losing a proton to bind with the metal. Since most organic ligands used in this process are insoluble or undergo oxidation in the aqueous phase, the chelating agent is initially added to the organic phase and extracted into the aqueous phase. The metal-ligand complex is...
1.3K
Complexation Equilibria: Factors Influencing Stability of Complexes
997
In complexation reactions, metal cations are the electron pair acceptors, and the ligands are the electron pair donors. The stability of the metal complexes depends primarily on the complexing ability of the central metal ion and the nature of the ligands. Generally, the complexing ability of the metal ion depends on the size and charge of the ion. As the metal ion size increases, the stability of the metal complexes decreases, provided that the valency of the metal ion and the ligands remain...
997


