超声、真空干燥和碳包覆对Ti3C2Tx MXene超电容性能的影响

Reza Azadvari, somayeh mohammadi, Alireza Habibi, Shayan Ahmadi, Zeinab Sanaee
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摘要

摘要Ti3C2Tx MXene在锂离子电池和超级电容器等能源器件中引起了广泛的关注。本研究考察了超声和干燥条件对Ti3C2Tx mxene基超级电容电极结构和电化学性能的影响,在80℃下超声和真空干燥后,样品的超电容性能得到了显著改善。通过对Ti3AlC2 MAX-Phase进行铝蚀刻,得到Ti3C2Tx纳米片,然后进行水洗和干燥后处理,得到Ti3C2Tx MXene层。然后用4种不同的条件进行干燥:1-在25℃的空气中干燥,2-在80℃的空气中干燥,3-在25℃的真空中干燥,4-在80℃的真空中干燥。在不同扫描速率下,真空干燥样品的比电容平均比风干样品高30%。同时,在80℃下干燥的样品比在25℃下干燥的样品的比电容增加了60%。除了干燥参数外,还研究了超声波对MXene层电化学性能的影响。一般来说,分层层的比电容高于非分层层。然而,我们注意到,随着时间的推移,超声波会使样品的电容稳定性恶化。为了进一步改进超级电容器电极,采用水热葡萄糖分解法对电化学性能最佳的样品(80℃超声和真空干燥)进行碳包覆。扫描速率为2 mV/s时,碳化样品的比电容为117.19 F/g,比原始MXene提高了35%。采用FE-SEM、XRD、FTIR和TGA等分析方法对MXene的结构进行了表征。通过循环伏安法、充放电法和电化学阻抗法研究了电极的电化学特性。
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Effect of Ultra-Sonication, Vacuum Drying, and Carbon Coating on the Super-Capacitive Behavior of Ti3C2Tx MXene
Abstract Ti3C2Tx MXene has attracted a considerable attention in energy devices, such as lithium-ion batteries and supercapacitors. This study investigated the effects of ultra-sonication and drying conditions on the structure and electrochemical performance of Ti3C2Tx MXene-based supercapacitor electrode, where a significant improvement in the super-capacitive behavior of the sample that was sonicated and vacuum-dried at 80°C has been observed. Ti3C2Tx nano-sheets were obtained by aluminum etching of Ti3AlC2 MAX-Phase followed by the rinsing and drying post-treatment to derive Ti3C2Tx MXene layers. The rinsed layers were then dried using 4 different conditions: 1- in the air at 25 ̊C, 2- in the air at 80 ̊C, 3- in a vacuum at 25 ̊C, 4- in a vacuum at 80 ̊C. It was observed that the specific capacitance at different scan rates of the vacuum-dried samples was, on average, 30% more than that of air-dried ones. Meanwhile, the samples dried at 80 ̊C have exhibited a 60% increase in the specific capacitance compared to the samples dried at 25 ̊C. Besides drying parameters, the effect of ultra-sonication of MXene layers on their electrochemical performance has also been investigated. Generally, the specific capacitance of delaminated layers was higher than that of non-delaminated ones. However, we have noticed that ultra-sonication deteriorates the capacitive stability of the samples over time. To further improve the supercapacitor electrodes, carbon coating was performed on the sample with the best electrochemical performance (sonicated and vacuum-dried at 80 ̊C), through a hydrothermal glucose decomposition method. The specific capacitance of the carbonized sample was 117.19 F/g at the scan rate of 2 mV/s, which is 35% more than that of the pristine MXene. The MXene structures were examined by FE-SEM, XRD, and FTIR and TGA analysis. The electrochemical characteristics of the electrodes were investigated via cyclic-voltammetry, charge-discharge test, and electrochemical Impedance spectroscopy.
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