Zhang Xinyue, Zhang Wu, Zhao Haitao
School of Materials Science and Engineering, Shenyang Ligong University, Shenyang, Liaoning 110159, PR China.
School of Materials Science and Engineering, Shenyang Ligong University, Shenyang, Liaoning 110159, PR China.
Ultrason Sonochem. 2022 May;86:106024. doi: 10.1016/j.ultsonch.2022.106024. Epub 2022 May 5.
TiCTx MXenes are normally fabricated by removal of main group element from the corresponding transition metal carbides, and they have been actively studied due to their superior energy storage performance. However, the low efficiency in removal of main group element (named as chemical etching) has significantly limited the application of MXene or MXene-related materials. Herein, we demonstrated an ultrasound-assisted approach to synthesize TiCTx MXene material by using TiAlC as the precursor. The experimental results indicate that the efficiency of chemical etching of TiAlC was dramatically promoted by ultrasound. The etching time was greatly shortened to 8 h while typically 24 h is sufficient in dilute hydrofluoric acid. Particularly, the high etching efficiency was achieved by using 2% hydrofluoric acid under the aid of ultrasound, which is lower in concentration than those reported in the previous literature. The specific capacitance of the 8 h sonicated sample is 155F/g, which is much higher than that of the un-sonicated sample prepared under the same experimental conditions. Additionally, the specific capacitance retention of the prepared 8 h sonicated sample was 97.5% after 20,000 cycles of charging/discharging, exhibiting an outstanding energy storage stability compared with the materials reported in previous literatures. It was proposed that removal of AlF from the surface of the etched particles was significantly promoted and the hydrogen bonds between the terminations of two different adjacent layers were broken by the acoustic cavitation effect of ultrasound.
TiCTx MXene通常通过从相应的过渡金属碳化物中去除主族元素来制备,并且由于其优异的储能性能而受到广泛研究。然而,主族元素去除效率低(即化学蚀刻)显著限制了MXene或MXene相关材料的应用。在此,我们展示了一种以TiAlC为前驱体通过超声辅助合成TiCTx MXene材料的方法。实验结果表明,超声显著提高了TiAlC的化学蚀刻效率。蚀刻时间大幅缩短至8小时,而在稀氢氟酸中通常需要24小时。特别地,在超声辅助下使用2%的氢氟酸实现了高蚀刻效率,其浓度低于先前文献报道的浓度。超声处理8小时的样品的比电容为155F/g,远高于在相同实验条件下未超声处理的样品。此外,制备的超声处理8小时的样品在20000次充放电循环后的比电容保持率为97.5%,与先前文献报道的材料相比,表现出优异的储能稳定性。据推测,超声的声空化效应显著促进了蚀刻颗粒表面AlF的去除,并打破了两个不同相邻层终端之间的氢键。