4.7 Article

Quantum dots with Mott-Schottky effect embedded in crystal-amorphous carbon for broadband electromagnetic wave absorption

期刊

JOURNAL OF ALLOYS AND COMPOUNDS
卷 929, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2022.167246

关键词

Magnetic-dielectric composition; Dual-phase carbon; Iron; manganese oxide quantum dots; Mott-Schottky effect; Microwave absorption

资金

  1. Program for the 2021 Youth Science and Technology Talents Support Plan from Boze Project of Jinzhou Medical University [JYBZQT2106]
  2. Basic research project of Education Department of Liaoning Province [LJKQZ2021148]
  3. Liaoning Provincial Natural Science Foundation Project [2022-BS-317]
  4. Entrepreneurship and Innovation Training Program For College Students [S202110160006]
  5. Introduction of Talent Start-up Fund [173211008]

向作者/读者索取更多资源

The study presents a porous carbon material embedded with tunable quantum dots for highlighted microwave absorbing material. The material is prepared using DC arc plasma technology and consists of a heterogeneous core-shell composite of transition metal oxide MnO and magnetic Fe embedded in a carbon matrix. The incorporation of magnetic iron improves the magnetic response ability, while nanoscale MnO aids in dipole polarization and relaxation, as well as adjusting the catalytic effect of the magnetic iron. The integration between metal and semiconductor promotes charge-transfer and transportation, leading to enhanced microwave absorption due to the Mott-Schottky effect. The heterostructure formed by MnO, Fe, and carbon results in a large amount of magnetic moments, enhancing the magnetic loss capability. The material exhibits excellent microwave absorption properties and tunable frequency.
The porous carbon material embedded with tunable quantum dots is prepared with the DC arc plasma technology for highlighted microwave absorbing material. The coupling transition metal oxide MnO and magnetic Fe into carbon matrix constructs a heterogeneous core-shell composite. Magnetic iron can im-prove the magnetic response ability. Nanoscale MnO not only helps produce more dipole polarization and relaxation, but also can adjust the catalytic effect of the magnetic iron. Therefore, the carbon material exists in two forms, with adjustable crystallinity, forming a unique crystal-amorphous structure. Synchronously, the integration between metal and semiconductor can promote the charge-transfer and transportation, highly enhancing the microwave absorption due to the Mott-Schottky effect. In addition, formation of heterostructure with MnO, Fe and carbon leads to mismatching of electron spins, forming a large amount of magnetic moments, which enhances the magnetic loss capability. The material shows excellent microwave absorption properties and tunable frequency. The maximum reflection loss reaches - 60.85 dB and effective absorption bandwidth achieves 5.1 dB at 2 mm. Besides, the size of Fe/MnO nanocrystal can be confined by regulating the feed ratio and reaction atmosphere. This research might shed a new light on the improve-ment of novel microwave absorption materials.Synopsis: With the explosive advance of information technology, electromagnetic pollution and inter-ference issues occur increasingly, threating biological health and environment security.(c) 2022 Published by Elsevier B.V.

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