Designing Electronic Structures of Multiscale Helical Converters for Tailored Ultrabroad Electromagnetic Absorption.

Nanomicro Lett

Laboratory of Advanced Materials, Shanghai Key Lab of Molecular Catalysis and Innovative Materials, Academy for Engineering and Technology, Fudan University, Shanghai, 200438, People's Republic of China.

Published: September 2024

AI Article Synopsis

  • Atomic-scale doping and structural design are crucial for improving the electromagnetic wave absorption (EMWA) properties of materials, yet the exact configuration-EM loss relationship is not well understood.
  • Researchers synthesized new Mn/N co-doped helical carbon nanotubes that exhibit exceptional EMWA capabilities, inspired by the DNA transcription process, leading to enhanced electromagnetic loss through unique structural properties.
  • The findings demonstrate that these materials can achieve remarkable EMWA performance, including significant reflection loss and broad effective absorption bandwidths, promoting advancements in both fundamental understanding and practical applications of EMWA.

Article Abstract

Atomic-scale doping strategies and structure design play pivotal roles in tailoring the electronic structure and physicochemical property of electromagnetic wave absorption (EMWA) materials. However, the relationship between configuration and electromagnetic (EM) loss mechanism has remained elusive. Herein, drawing inspiration from the DNA transcription process, we report the successful synthesis of novel in situ Mn/N co-doped helical carbon nanotubes with ultrabroad EMWA capability. Theoretical calculation and EM simulation confirm that the orbital coupling and spin polarization of the Mn-N-C configuration, along with cross polarization generated by the helical structure, endow the helical converters with enhanced EM loss. As a result, HMC-8 demonstrates outstanding EMWA performance, achieving a minimum reflection loss of -63.13 dB at an ultralow thickness of 1.29 mm. Through precise tuning of the graphite domain size, HMC-7 achieves an effective absorption bandwidth (EAB) of 6.08 GHz at 2.02 mm thickness. Furthermore, constructing macroscale gradient metamaterials enables an ultrabroadband EAB of 12.16 GHz at a thickness of only 5.00 mm, with the maximum radar cross section reduction value reaching 36.4 dB m. This innovative approach not only advances the understanding of metal-nonmetal co-doping but also realizes broadband EMWA, thus contributing to the development of EMWA mechanisms and applications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11448510PMC
http://dx.doi.org/10.1007/s40820-024-01513-2DOI Listing

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