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V2O5/MXene納米復合材料制備及儲能性能

Preparation and energy storage properties of V2O5/MXene nanocomposites

  • 摘要: 利用氫氟酸(HF)刻蝕MAX(Ti3AlC2)相獲得一種新型二維層狀材料MXene(Ti3C2Tx),利用液相插層法擴大MXene材料層間距,然后在MXene表面分別負載納米片狀(NSV)和納米帶狀(NBV)的五氧化二釩(V2O5)。利用X射線衍射(XRD)、比表面積測試分析(BET)和高分辨場發射掃描電鏡(FESEM)等手段對復合材料進行了結構表征。結果表明:MXene層間距增加;且兩種形貌的五氧化二釩均勻的負載在MXene表面。這兩種納米復合材料的比表面積比MXene高,意味著它們可以為電化學反應提供更多的活性位點。利用多種電化學技術對V2O5,MXene和不同V2O5/MXene納米復合材料在1.0 mol·L?1 Na2SO4和1.0 mol·L?1 LiNO3電解液中進行了電化學性能測試。結果表明:當電流密度為1 A·g?1時,在1.0 mol·L?1 Na2SO4電解液中MXene,V2O5,NSV/MXene和NBV/MXene的比電容分別為8.1,15.7,96.8和88.5 F·g?1;在1.0 mol·L?1 LiNO3電解液中NSV/MXene和NBV/MXene的比電容分別為64.6,46.7,180.0和114.0 F·g?1。表明所制備的NSV/MXene納米復合材料是一種有研究和開發潛力的超級電容器電極材料。

     

    Abstract: Supercapacitors are usually used in new energy storage devices, communication technology, military, and aerospace fields due to their long lifecycle and high power density. Presently, it is imperative to find the electrode materials with low cost and excellent capacity. MXenes have received increasing attention due to their unique physical and chemical properties. They not only have superior electrical conductivity but also contain abundant surface groups (?OH, ?F or ?O); therefore, they are regarded as versatile 2D materials. MXenes can generate higher volumetric capacitance than that of graphene. However, MXene nanosheets are inclined to stack together, limiting the electrochemical properties of supercapacitors. In this work, an MXene (Ti3C2Tx) was obtained by etching an MAX (Ti3AlC2) phase using HF. To expand the interlayer spacing of Ti3C2Tx, the liquid-phase intercalation method was adopted. After the interlayer spacing was expanded, V2O5 nanosheet (NSV) and V2O5 nanobelt (NBV) were loaded on the MXene surface by a facile hydrothermal process. Their structure and morphology were characterized using different techniques, such as X-ray diffraction, Brunauer–Emmett–Teller surface area measurements, and field-emission scanning electron microscopy. The results show that the interlayer spacing of MXene is increased after liquid-phase intercalation, and NSV and NBV are uniformly loaded on the MXene surface. Moreover, the specific surface areas of the NSV/MXene and NSV/MXene nanocomposites are higher than that of the MXene; therefore, the nanocomposites can provide more active sites for electrochemical reactions. The electrochemical performances of the nanocomposites were investigated in 1.0 mol·L?1 Na2SO4 and 1.0 mol·L?1 LiNO3 aqueous solutions. The specific capacitances of V2O5, MXene, NSV/MXene, and NBV/MXene are 8.1, 15.7, 96.8, and 88.5 F·g?1 in 1.0 mol·L?1 Na2SO4, respectively. When they are tested in 1.0 mol·L?1 LiNO3, their specific capacitances are 64.6, 46.7, 180.0, and 114.0 F·g?1, respectively. Therefore, the NSV/MXene nanocomposite is a potential electrode material for supercapacitors.

     

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