Jalali Hossein, Khoeini Farhad, Peeters Francois M, Neek-Amal Mehdi
Department of Physics, University of Zanjan, 45195-313, Zanjan, Iran.
Nanoscale. 2021 Jan 14;13(2):922-929. doi: 10.1039/d0nr03953e. Epub 2020 Dec 23.
Using electrochemical methods a profound enhancement of the capacitance of electric double layer capacitor electrodes was reported when water molecules are strongly confined into the two-dimensional slits of titanium carbide MXene nanosheets [A. Sugahara et al., Nat. Commun., 2019, 10, 850]. We study the effects of hydration on the dielectric properties of nanoconfined water and supercapacitance properties of the cation intercalated MXene. A model for the electric double layer capacitor is constructed where water molecules are strongly confined in two-dimensional slits of MXene. We report an abnormal dielectric constant and polarization of nano-confined water between MXene layers. We found that by decreasing the ionic radius of the intercalated cations and in a critical hydration shell radius the capacitance of the system increases significantly (≃200 F g) which can be interpreted as a negative permittivity. This study builds a bridge between the fundamental understanding of the dielectric properties of nanoconfined water and the capability of using MXene films for supercapacitor technology, and in doing so provides a solid theoretical support for recent experiments.
采用电化学方法时,据报道当水分子被强烈限制在碳化钛MXene纳米片的二维狭缝中时,双电层电容器电极的电容会显著增强[A. Sugahara等人,《自然通讯》,2019年,10,850]。我们研究了水合作用对纳米受限水的介电性质以及阳离子插层MXene的超级电容性质的影响。构建了一个双电层电容器模型,其中水分子被强烈限制在MXene的二维狭缝中。我们报道了MXene层间纳米受限水的异常介电常数和极化现象。我们发现,通过减小插层阳离子的离子半径并在临界水合壳半径下,系统的电容显著增加(≃200 F g),这可以解释为负介电常数。这项研究在对纳米受限水介电性质的基本理解与将MXene薄膜用于超级电容器技术的能力之间架起了一座桥梁,并且这样做还为近期的实验提供了坚实的理论支持。