二维TiC MXene氧化的影响因素研究。
An investigation into the factors governing the oxidation of two-dimensional TiC MXene.
作者信息
Chae Yoonjeong, Kim Seon Joon, Cho Soo-Yeon, Choi Junghoon, Maleski Kathleen, Lee Byeong-Joo, Jung Hee-Tae, Gogotsi Yury, Lee Yonghee, Ahn Chi Won
机构信息
Global Nanotechnology Development Team, National Nano Fab Center (NNFC), Daejeon 34141, South Korea.
出版信息
Nanoscale. 2019 Apr 25;11(17):8387-8393. doi: 10.1039/c9nr00084d.
Two-dimensional (2D) transition metal carbides (MXenes) exhibit outstanding performances in many applications, such as energy storage, optoelectronics, and electrocatalysts. However, colloidal solutions of Ti3C2Tx MXene flakes deteriorate rapidly under ambient conditions due to the conversion of the titanium carbide to titanium dioxide. Here, we discuss the dominant factors influencing the rate of oxidation of Ti3C2Tx MXene flakes, and present guidelines for their storage with the aim of maintaining the intrinsic properties of the as-prepared material. The oxidation stability of the Ti3C2Tx flakes is dramatically improved in a system where water molecules and temperature were well-controlled. It was found that aqueous solutions of Ti3C2Tx MXene can be chemically stable for more than 39 weeks when the storage temperature (-80 °C) is sufficiently low to cease the oxidation processes. It was also found that if the Ti3C2Tx flakes are dispersed in ethanol, the degradation process can be significantly delayed even at 5 °C. Moreover, the oxidation stability of the Ti3C2Tx flakes is dramatically improved in both cases, even in the presence of oxygen-containing atmosphere. We demonstrate practical applications of our approach by employing Ti3C2Tx in a gas sensor showing that when oxidation is inhibited, the device can retain the original electrical properties after 5 weeks of storage.
二维(2D)过渡金属碳化物(MXenes)在许多应用中表现出优异的性能,如能量存储、光电子学和电催化剂。然而,由于碳化钛转化为二氧化钛,Ti3C2Tx MXene薄片的胶体溶液在环境条件下会迅速变质。在此,我们讨论影响Ti3C2Tx MXene薄片氧化速率的主要因素,并提出其存储指南,以保持所制备材料的固有特性。在水分子和温度得到良好控制的体系中,Ti3C2Tx薄片的氧化稳定性得到显著提高。研究发现,当存储温度(-80°C)足够低以停止氧化过程时,Ti3C2Tx MXene的水溶液可以化学稳定超过39周。还发现,如果将Ti3C2Tx薄片分散在乙醇中,即使在5°C下,降解过程也可以显著延迟。此外,即使在含氧气氛中,Ti3C2Tx薄片在这两种情况下的氧化稳定性也会显著提高。我们通过在气体传感器中使用Ti3C2Tx展示了我们方法的实际应用,结果表明当氧化受到抑制时,该器件在存储5周后仍能保持原始电学性能。