Two-Dimensional Na-Ionic Conduction in Layered Cobaltate Na2Co2TeO6: A Combined Neutron Diffraction and Impedance Spectroscopy Study

IF 5.5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL ACS Applied Energy Materials Pub Date : 2025-03-04 DOI:10.1021/acsaem.5c00012
Bikash Chandra Saha, Anup Kumar Bera* and Seikh Mohammad Yusuf*, 
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Abstract

We report the microscopic mechanism of Na-ionic conduction and the role of the underlying crystal structure in the ionic conduction in the two-dimensional (2D) layered battery material Na2Co2TeO6 by combined neutron diffraction and impedance spectroscopy studies. Na2Co2TeO6 consists of Na+-ion layers in the ab plane, which are well separated by intermediate magnetic (Co/Te)O6 layers along the c axis. Within the layers, the Na+ ions, resided in trigonal prismatic NaO6 coordination, and are distributed over three partially occupied crystallographic sites. Our temperature-dependent neutron diffraction study ensures that the crystal symmetry remains invariant over 300–723 K, with a nominal change (∼2%) in the unit cell volume. Further, the soft-bond valence sum (BVS) analyses of neutron diffraction patterns reveal 2D ionic conduction pathways within the Na layers. The impedance data have been analyzed to estimate the interlinked parameters, viz., dc ionic conductivity, ac ionic conductivity, and diffusivity, in addition to electrical modulus and dielectric constant, illustrating the microscopic mechanism of Na-ionic conduction. The conduction mechanism of Na+ ions involves a correlated barrier hopping (CBH) process. The conduction of the Na+ ions is found to be both thermally and frequency activated. A significant enhancement (∼103 times) of the conductivity has been observed upon increasing the temperature from 343 to 473 K. Further, our study demonstrates that the Na-ionic conduction of Na2Co2TeO6 is highly influenced by a disordered arrangement and partial occupation of Na ions within the 2D layers. The present comprehensive study, thus, provides an insight into the microscopic understanding of the ionic conduction properties and its intercorrelations with the crystal structure. The present work is significant for the progress of battery research, especially in the fabrication of highly efficient battery materials.

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层状钴酸盐 Na2Co2TeO6 中的二维 Na 离子传导:中子衍射和阻抗光谱联合研究
本文采用中子衍射和阻抗谱相结合的方法研究了二维层状电池材料Na2Co2TeO6中na -离子传导的微观机制以及底层晶体结构在离子传导中的作用。Na2Co2TeO6由ab平面上的Na+离子层组成,它们被沿c轴的中间磁性(Co/Te)O6层很好地分开。在层内,Na+离子以三角棱柱状NaO6配位分布在三个部分占据的晶体位上。我们的温度相关中子衍射研究确保晶体对称性在300-723 K范围内保持不变,单位胞体积的标称变化(~ 2%)。此外,中子衍射图的软键价和(BVS)分析揭示了Na层内的二维离子传导途径。通过对阻抗数据的分析,得出了相互联系的参数,即直流离子电导率、交流离子电导率和扩散系数,以及电模量和介电常数,说明了钠离子导电的微观机理。Na+离子的传导机制涉及一个相关的垒跳(CBH)过程。发现Na+离子的传导是热激活和频率激活的。当温度从343 K增加到473 K时,观察到电导率显著增强(约103倍)。此外,我们的研究表明,Na2Co2TeO6的Na离子传导受到二维层内Na离子的无序排列和部分占据的高度影响。因此,本综合研究提供了对离子传导特性及其与晶体结构相互关系的微观理解。本文的工作对电池的研究,特别是高效电池材料的制备具有重要意义。
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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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