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具有增强储能容量和稳定性的铌掺杂MXene

Nb-Doped MXene With Enhanced Energy Storage Capacity and Stability.

作者信息

Fatima Mahjabeen, Fatheema Jameela, Monir Nasbah B, Siddique Ahmad Hassan, Khan Bushra, Islam Amjad, Akinwande Deji, Rizwan Syed

机构信息

Physics Characterization and Simulations Lab (PCSL), School of Natural Sciences (SNS), National University of Sciences & Technology (NUST), Islamabad, Pakistan.

Key Laboratory of Graphene Technologies and Applications of Zhejiang Province, Ningbo Institute of Materials Technology and Engineering (NIMTE), Ningbo, China.

出版信息

Front Chem. 2020 Apr 3;8:168. doi: 10.3389/fchem.2020.00168. eCollection 2020.

Abstract

MXenes present unique features as materials for energy storage; however, limited interlayer distance, and structural stability with ongoing cycling limit their applications. Here, we have developed a unique method involving incorporating Nb atoms into MXene (TiC) to enhance its ability to achieve higher ionic storage and longer stability. Computational analysis using density functional theory was performed that explained the material structure, electronic structure, band structure, and density of states in atomistic detail. Nb-doped MXene showed a good charge storage capacity of 442.7 F/g, which makes it applicable in a supercapacitor. X-ray diffraction (XRD) indicated c-lattice parameter enhancement after Nb-doping in MXene (from 19.2A° to 23.4A°), which showed the effect of the introduction of an element with a larger ionic radius (Nb). Also, the bandgap changes from 0.9 eV for pristine MXene to 0.1 eV for Nb-doped MXene, which indicates that the latter has the signature of increased conductivity due to more metallic nature, in support of the experimental results. This work presents not only the effect of doping in MXene but also helps to explain the phenomena involved in changes in physical parameters, advancing the field of energy storage based on 2D materials.

摘要

MXenes作为储能材料具有独特的特性;然而,有限的层间距以及循环过程中的结构稳定性限制了它们的应用。在此,我们开发了一种独特的方法,即将铌原子掺入MXene(TiC)中,以增强其实现更高离子存储和更长稳定性的能力。利用密度泛函理论进行了计算分析,从原子层面详细解释了材料结构、电子结构、能带结构和态密度。铌掺杂的MXene表现出442.7 F/g的良好电荷存储容量,这使其适用于超级电容器。X射线衍射(XRD)表明,MXene中铌掺杂后c晶格参数增大(从19.2埃增至23.4埃),这显示了引入具有更大离子半径的元素(铌)的效果。此外,带隙从原始MXene的0.9 eV变为铌掺杂MXene的0.1 eV,这表明后者由于具有更多金属特性而具有导电性增加的特征,支持了实验结果。这项工作不仅展示了掺杂对MXene的影响,还有助于解释物理参数变化所涉及的现象,推动了基于二维材料的储能领域的发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e012/7145951/bb8f7cc1cad7/fchem-08-00168-g0001.jpg

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