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首页> 外文期刊>Bulletin of the American Physical Society >APS -APS March Meeting 2017 - Event - First-Principles Molecular Dynamics Study on the Electric-double layer Capacitance of Water-MXene interfaces
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APS -APS March Meeting 2017 - Event - First-Principles Molecular Dynamics Study on the Electric-double layer Capacitance of Water-MXene interfaces

机译:APS -APS 2017年3月会议-活动-水-MXene界面双电层电容的第一性原理分子动力学研究

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摘要

MXenes are a new, large family of layered materials synthesized from MAX phases by simple chemical treatments. Due to their enormous variations, MXenes have attracted great attention as promising candidates as anode materials for next-generation secondary batteries. Unfortunately, the specific capacitance of MXenes supercapacitors is lower than that of active-carbon ones. Theoretical investigation of the electric-double layer (EDL) at electrode interfaces is necessary to improve their capacitance. First-principles molecular dynamics (FPMD) simulation based on the density functional theory (DFT) is performed to estimate the EDL capacitance from a potential profile V($z)$ and a charge distribution q(z) induced by the ions at water-Ti$_{mathrm{2}}$CT$_{mathrm{x}}$ (T$=$O, F) interfaces. Potential profiles V(z) of both Ti$_{mathrm{2}}$CO$_{mathrm{2}}$ and Ti$_{mathrm{2}}$CF$_{mathrm{2}}$ decrease about 1.0 eV steeply in a region of only 3 {AA} from a Ti layer, which is the same profile at the platinum interfaces. On the other hand, induced charge distribution q(z) depends on the species of surface termination. Induced electrons are introduced at Ti layers in the case of O surface termination. However, Ti$_{mathrm{2}}$CF$_{mathrm{2}}$ is not capable to store electrons at Ti layers because it is mono-valence anions. It indicates that effective surface-position of MXenes depends on the surface terminations. Our results are revealed that small induced charge leads the low EDL capacitance at MXene interfaces. This is because interface polarization due to strong interaction between water and Ti$_{mathrm{2}}$CT$_{mathrm{x}}$ induces net charge. The surface net charge hinders the introduction of ion-induced charges.
机译:MXenes是由MAX相通过简单的化学处理合成的新型大层材料。由于它们的巨大差异,MXene作为下一代二次电池负极材料的有前途的候选者备受瞩目。不幸的是,MXenes超级电容器的比电容低于活性炭电容器的比电容。需要对电极界面处的双电层(EDL)进行理论研究,以提高其电容量。进行了基于密度泛函理论(DFT)的第一性原理分子动力学(FPMD)模拟,以从水在水- Ti $ _ {mathrm {2}} $ CT $ _ {mathrm {x}} $(T $ = $ O,F)接口。 Ti $ _ {mathrm {2}} $ CO $ _ {mathrm {2}} $和Ti $ _ {mathrm {2}} $ CF $ _ {mathrm {2}} $的电位分布V(z)均减小在距Ti层仅3 {AA}的区域中,陡峭约1.0 eV,这与铂界面处的轮廓相同。另一方面,感应电荷分布q(z)取决于表面终止的种类。在O表面终止的情况下,感应电子被引入Ti层。但是,Ti $ _ {mathrm {2}} $ CF $ _ {mathrm {2}} $不能在Ti层存储电子,因为它是单价阴离子。这表明MXene的有效表面位置取决于表面终端。我们的结果表明,小的感应电荷导致MXene接口处的EDL电容较低。这是因为由于水与Ti $ _ {mathrm {2}} $ CT $ _ {mathrm {x}} $之间的强相互作用而引起的界面极化会产生净电荷。表面净电荷阻碍了离子感应电荷的引入。

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