Zou Qi, Guo Wenyu, Zhang Long, Yang Liting, Zhao Zhenyu, Liu Feng, Ye Xiang, Zhang Yi, Shi Wangzhou
Key Laboratory of Optoelectronic Material and Device, Shanghai Normal University, Shanghai 200234 People's Republic of China.
Mathematics and Science College, Shanghai Normal University, Shanghai 200234 People's Republic of China.
Nanotechnology. 2020 Dec 11;31(50):505710. doi: 10.1088/1361-6528/abb6a7.
We have successfully fabricated Ti-based MXenes flakes, TiCT, by chemical etching, then prepared it as an organic dispersion and finally spin-coated it on polyimide plastic substrate for terahertz wave shielding. The shielding effectivity of the 12 μm ultra-thin film can reach up to 17 dB measured by the terahertz time-domain spectra. We can attribute the excellent phenomenon to the intrinsic absorption of triple-layered TiC, due to the similar double-peak type refraction curves, which have been respectively observed from the experimental samples and the simulation ones. High conductivity and strong THz absorption indicate the TiCT MXene is the absorptive electromagnetic shielding material. Comparing with other kinds of THz shielding materials, the Ti-based MXenes might be a potential candidate for the next generation of ultra-thin and lightweight THz shielding.
我们通过化学蚀刻成功制备了基于钛的MXenes薄片TiCT,然后将其制成有机分散体,最后旋涂在聚酰亚胺塑料基板上用于太赫兹波屏蔽。通过太赫兹时域光谱测量,12μm超薄薄膜的屏蔽效率可达17dB。由于从实验样品和模拟样品中分别观察到相似的双峰型折射曲线,我们可以将这种优异现象归因于三层TiC的固有吸收。高电导率和强太赫兹吸收表明TiCT MXene是一种吸收型电磁屏蔽材料。与其他种类的太赫兹屏蔽材料相比,基于钛的MXenes可能是下一代超薄轻质太赫兹屏蔽的潜在候选材料。