High-temperature stability in air of Ti3C2Tx MXene-based composite with extracted bentonite

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作者
Na Liu
Qiaoqiao Li
Hujie Wan
Libo Chang
Hao Wang
Jianhua Fang
Tianpeng Ding
Qiye Wen
Liujiang Zhou
Xu Xiao
机构
[1] University of Electronic Science and Technology of China,School of Electronic Science and Engineering, State Key Laboratory of Electronic Thin Film and Integrated Devices
[2] University of Electronic Science and Technology of China,Yangtze Delta Region Institute (Huzhou)
[3] Army Logistic Academy of PLA,Department of Petroleum, Oil and Lubricants
[4] University of Electronic Science and Technology of China,School of Physics
[5] Nanjing University,Research Institute of Superconductor Electronics, School of Electronic Science and Engineering
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Although Ti3C2Tx MXene is a promising material for many applications such as catalysis, energy storage, electromagnetic interference shielding due to its metallic conductivity and high processability, it’s poor resistance to oxidation at high temperatures makes its application under harsh environments challenging. Here, we report an air-stable Ti3C2Tx based composite with extracted bentonite (EB) nanosheets. In this case, oxygen molecules are shown to be preferentially adsorbed on EB. The saturated adsorption of oxygen on EB further inhibits more oxygen molecules to be adsorbed on the surface of Ti3C2Tx due to the weakened p-d orbital hybridization between adsorbed O2 and Ti3C2Tx, which is induced by the Ti3C2Tx/EB interface coupling. As a result, the composite is capable of tolerating high annealing temperatures (above 400 °C for several hours) both in air or humid environment, indicating highly improved antioxidation properties in harsh condition. The above finding is shown to be independent on the termination ratio of Ti3C2Tx obtained through different synthesis routes. Utilized as terahertz shielding materials, the composite retains its shielding ability after high-temperature treatment even up to 600 °C, while pristine Ti3C2Tx is completely oxidized with no terahertz shielding ability. Joule heating and thermal cycling performance are also demonstrated.
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