TY - JOUR
T1 - Novel Scale-Like Structures of Graphite/TiC/Ti3C2 Hybrids for Electromagnetic Absorption
AU - Li, Mian
AU - Han, Meikang
AU - Zhou, Jie
AU - Deng, Qihuang
AU - Zhou, Xiaobing
AU - Xue, Jianmin
AU - Du, Shiyu
AU - Yin, Xiaowei
AU - Huang, Qing
N1 - Publisher Copyright:
© 2018 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2018/5
Y1 - 2018/5
N2 - Electromagnetic (EM) absorbing and shielding materials have attracted great interests due to the increasing electromagnetic pollutions in the past years. Microstructure plays a crucial role in determining the performance of the above materials. Herein, a scale-like structure based on Ti3C2 Mxenes is proposed to approach improved EM absorption properties. For the first time, graphite/TiC/Ti3AlC2 (G/TiC/Ti3AlC2) hybrids are fabricated in a molten salts bath and graphite/TiC/Ti3C2 (G/TiC/Ti3C2) hybrids are obtained after Al atoms are etched from G/TiC/Ti3AlC2. In G/TiC/Ti3C2, Ti3C2 sheets are perpendicular to the plane of G/TiC, which like a bionic structure of fish scale. The scale-like G/TiC/Ti3C2 hybrids are dispersed in paraffin matrix to evaluate the EM properties. Owing to the structure-induced EM absorption mechanism, G/TiC/Ti3C2 show much enhanced EM absorption ability than those materials without structure design, e.g., G/TiC/Ti3AlC2, pure Ti3C2, G/TiC, and the simple mixture of G/TiC with Ti3C2 (G/TiC+Ti3C2). The minimum reflection coefficient (RC) of G/TiC/Ti3C2 with the sample thickness of 2.1 mm reaches −63 dB and the effective absorption bandwidth (the frequency where RC is lower than −10 dB) is more than 3.5 GHz. The results indicate that the scale-like structure can greatly improve the EM absorption ability.
AB - Electromagnetic (EM) absorbing and shielding materials have attracted great interests due to the increasing electromagnetic pollutions in the past years. Microstructure plays a crucial role in determining the performance of the above materials. Herein, a scale-like structure based on Ti3C2 Mxenes is proposed to approach improved EM absorption properties. For the first time, graphite/TiC/Ti3AlC2 (G/TiC/Ti3AlC2) hybrids are fabricated in a molten salts bath and graphite/TiC/Ti3C2 (G/TiC/Ti3C2) hybrids are obtained after Al atoms are etched from G/TiC/Ti3AlC2. In G/TiC/Ti3C2, Ti3C2 sheets are perpendicular to the plane of G/TiC, which like a bionic structure of fish scale. The scale-like G/TiC/Ti3C2 hybrids are dispersed in paraffin matrix to evaluate the EM properties. Owing to the structure-induced EM absorption mechanism, G/TiC/Ti3C2 show much enhanced EM absorption ability than those materials without structure design, e.g., G/TiC/Ti3AlC2, pure Ti3C2, G/TiC, and the simple mixture of G/TiC with Ti3C2 (G/TiC+Ti3C2). The minimum reflection coefficient (RC) of G/TiC/Ti3C2 with the sample thickness of 2.1 mm reaches −63 dB and the effective absorption bandwidth (the frequency where RC is lower than −10 dB) is more than 3.5 GHz. The results indicate that the scale-like structure can greatly improve the EM absorption ability.
KW - architecture
KW - microwave absorption
KW - Mxene
UR - http://www.scopus.com/inward/record.url?scp=85045209249&partnerID=8YFLogxK
U2 - 10.1002/aelm.201700617
DO - 10.1002/aelm.201700617
M3 - 文章
AN - SCOPUS:85045209249
SN - 2199-160X
VL - 4
JO - Advanced Electronic Materials
JF - Advanced Electronic Materials
IS - 5
M1 - 1700617
ER -