对超级电容器的离子间叠层双氧化物的进展:研究化学修饰和分类
Sonali P Sadavar1, Swapnajit V Mulik1,2, Pramod A Koyale1,3
1Nanoscience Research Laboratory, Department of Chemistry, Shivaji University, Kolhapur 416 004, Maharashtra, India. sdd_chem@unishivaji.ac.in.
Materials horizons
|April 22, 2025
概括
基于阳离子的分层双氧化物 (LDH) 通过增强电容和稳定性,显著提高了超级电容器 (SC) 中的能量储存. 本综述探讨了它们的机制,修改以及用于先进的储能应用的潜力.
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
- 储能 储能 储能 储能 储能 储能
背景情况:
- 超级电容器 (SC) 是重要的储能设备,混合材料提供更好的能量密度 (ED) 和稳定性.
- 层状双氧化物 (LDHs) 由于其独特的结构和离子交换能力,有望提高SC性能.
研究的目的:
- 为超级电容应用提供基于阴离子的LDHs近期进展的全面审查.
- 讨论储存机制,化学修饰和阴离子储存LDHs的分类.
- 检查各种离子在提高SC性能方面的作用.
主要方法:
- 关于SCs的基LDHs最近研究的文献综述.
- 储存机制的分析,包括阳离子交换和化.
- 基于它们的介层离子 (单价,双价,多氧甲基) 的LDHs的分类.
主要成果:
- 基于阴离子的LDH表现出高孔隙性,大可访问的表面积,以及在各种电流密度的优异的特定电容 (Cs).
- 化学修饰和介层离子的选择显著影响电荷转移和整体ED.
- LDHs有助于增加电容和高电池电压,这对于改善ED至关重要.
结论:
- 基于阴离子的LDH是先进超级电容器的非常有前途的材料,提供更高的能量密度和稳定性.
- 对化学修饰和离子选择的进一步研究可以释放它们在储能方面的全部潜力.
- 这些材料对未来的储能技术具有重大实际意义.
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