Hierarchical Ti 3 C 2 T x MXene/Carbon Nanotubes Hollow Microsphere with Confined Magnetic Nanospheres for Broadband Microwave Absorption.
Chang ZhangZhengchen WuChunyang XuBintong YangLei WangWenbin YouRenchao ChePublished in: Small (Weinheim an der Bergstrasse, Germany) (2021)
Hierarchical hollow structure with unique interfacial properties holds great potential for microwave absorption (MA). Ti 3 C 2 T x MXene has been a hot topic due to rich interface structure, abundant defects, and functional groups. However, its overhigh permittivity and poor aggregation-resistance limit the further application. Herein, a hierarchical MXene-based hollow microsphere is prepared via a facile spray drying strategy. Within the microsphere, few-layered MXene nanosheets are separated by dispersed carbon nanotubes (CNTs), exposing abundant dielectric polarization interfaces. Besides, numerous magnetic Fe 3 O 4 nanospheres are uniformly dispersed and confined within nano-cavities between 1D network and 2D framework. Such a novel structure simultaneously promotes interfacial polarization by ternary MXene/CNTs/Fe 3 O 4 interfaces, enhances magnetic loss by microscale and nanoscale coupling network, enlarges conduction loss by MXene/CNTs dual-network, and optimizes impedance matching by hierarchical porous structure. Therefore, Fe 3 O 4 @Ti 3 C 2 T x /CNTs composite achieves excellent MA property with a maximum reflection loss of -40.1 dB and an effective bandwidth of 5.8 GHz at the thickness of only 2 mm. This work demonstrates a feasible hierarchical structure design strategy for multi-dimension MXene composite to realize the high-efficiency MA performance.
Keyphrases
- carbon nanotubes
- molecularly imprinted
- metal organic framework
- highly efficient
- high efficiency
- reduced graphene oxide
- quantum dots
- magnetic resonance
- molecular dynamics simulations
- ionic liquid
- gold nanoparticles
- optical coherence tomography
- solid phase extraction
- magnetic resonance imaging
- room temperature
- human health
- liquid chromatography
- contrast enhanced