TY - JOUR
T1 - Dielectric genes editing MXene to switch electromagnetic functions
AU - Liu, Tingting
AU - Zheng, Qi
AU - Cao, Wenqiang
AU - Wang, Yuze
AU - Zhang, Min
AU - Zhao, Quanliang
AU - Cao, Maosheng
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to Springer Nature Switzerland AG 2024.
PY - 2024/6
Y1 - 2024/6
N2 - Electromagnetic (EM) functional materials with a single function have been difficult to match the rapid development of satellite communication, artificial intelligence, and the 6G Internet of Things. Herein, we prepare MXene/TiO2 composites by a facile annealing treatment and investigate the effects of the annealing on EM properties. Benefiting from the editable conduction and polarization genes, the optimized MXene/TiO2 composites achieve a tradeoff between EM energy loss and reflection, with dual functions of excellent EM absorption and shielding performance at an annealing temperature of 300 °C. Importantly, based on the EM response characteristics of the MXene/TiO2, the EM energy conversion device, strain sensor, and ultra-wideband (UWB) absorber are customized. Numerical results demonstrate that the proposed UWB absorber insensitive to oblique incidence and polarization achieves the performance of S11 less than − 10 dB from 1 to 20 GHz; the EM response signal of the strain sensor is sensitive to structural deformation and can effectively predict the device safety status; the EM energy conversion device can realize the recycling the waste EM energy. This work provides a novel and feasible strategy for developing advanced multifunctional materials, which will have enormous prospects in EM protection, EM pollution management, military camouflage fields, etc. Graphical abstract: (Figure presented.)
AB - Electromagnetic (EM) functional materials with a single function have been difficult to match the rapid development of satellite communication, artificial intelligence, and the 6G Internet of Things. Herein, we prepare MXene/TiO2 composites by a facile annealing treatment and investigate the effects of the annealing on EM properties. Benefiting from the editable conduction and polarization genes, the optimized MXene/TiO2 composites achieve a tradeoff between EM energy loss and reflection, with dual functions of excellent EM absorption and shielding performance at an annealing temperature of 300 °C. Importantly, based on the EM response characteristics of the MXene/TiO2, the EM energy conversion device, strain sensor, and ultra-wideband (UWB) absorber are customized. Numerical results demonstrate that the proposed UWB absorber insensitive to oblique incidence and polarization achieves the performance of S11 less than − 10 dB from 1 to 20 GHz; the EM response signal of the strain sensor is sensitive to structural deformation and can effectively predict the device safety status; the EM energy conversion device can realize the recycling the waste EM energy. This work provides a novel and feasible strategy for developing advanced multifunctional materials, which will have enormous prospects in EM protection, EM pollution management, military camouflage fields, etc. Graphical abstract: (Figure presented.)
KW - Dielectric genes
KW - Electromagnetic sensor
KW - MXene/TiO
KW - Multifunction
KW - Ultra-wideband electromagnetic wave absorber
UR - http://www.scopus.com/inward/record.url?scp=85191250294&partnerID=8YFLogxK
U2 - 10.1007/s42114-024-00894-7
DO - 10.1007/s42114-024-00894-7
M3 - Article
AN - SCOPUS:85191250294
SN - 2522-0128
VL - 7
JO - Advanced Composites and Hybrid Materials
JF - Advanced Composites and Hybrid Materials
IS - 3
M1 - 79
ER -