Âé¶¹ÒùÔº

April 1, 2025

New flexible nanofiber material combines strong microwave absorption with exceptional thermal insulation

Credit: Journal of Materiomics (2024). DOI: 10.1016/j.jmat.2024.100988
× close
Credit: Journal of Materiomics (2024). DOI: 10.1016/j.jmat.2024.100988

Recently, a research team led by Prof. Huang Zhulin from the Hefei Institutes of Âé¶¹ÒùÔºical Science of the Chinese Academy of Sciences successfully synthesized a flexible nanofiber felt with ultralow thermal conductivity and exceptional electromagnetic wave absorption properties.

The findings are in the Journal of Materiomics.

With the rapid advancement of modern technologies, there is growing demand for materials that can efficiently absorb while also being lightweight, heat-resistant, and durable under . However, current carbon-based materials, though widely used, often suffer from poor impedance matching and limited performance in .

To overcome these challenges, the researchers designed a novel ZrO2/ZrB2/C (zirconia/zirconium diboride/carbon) nanofiber felt. By incorporating ZrO2 and ZrB2 into carbon fibers, they successfully addressed the issue of excessive electromagnetic wave reflection caused by the high conductivity of pure carbon. This multi-component composite structure greatly improved impedance matching and enhanced the material's ability to absorb electromagnetic waves across a broad frequency range.

The achieved a maximum reflection loss of -54 dB and a broad absorption bandwidth of 3.1 GHz, indicating excellent microwave absorption capabilities. In addition, revealed that the ZrO2/ZrB2 components promote electron transfer at the interfaces, boosting interfacial polarization—key mechanisms for efficient electromagnetic wave attenuation.

Reflection loss diagrams for four sample groups with varying ZrO2/ZrB2 loading contents, and correlations between simulated thickness and peak frequency for the four sample groups. Credit: Yang Chengwan
× close
Reflection loss diagrams for four sample groups with varying ZrO2/ZrB2 loading contents, and correlations between simulated thickness and peak frequency for the four sample groups. Credit: Yang Chengwan

Further simulations also demonstrated the material's radar stealth capability, showing its ability to reduce radar wave scattering—an essential feature for stealth applications.

Beyond its electromagnetic performance, the material also showed exceptional thermal insulation properties. Its complex multi-interface structure acts as a barrier to heat flow while its surface properties enhance heat radiation dissipation. As a result, the material achieved an ultralow thermal conductivity of just 0.016 W·m-1·°­-1 at 1,100 °C, which is among the lowest reported for such materials.

This study paves a novel pathway for designing multifunctional microwave-absorbing materials suitable for complex and extreme environments, according to the team.

Get free science updates with Science X Daily and Weekly Newsletters — to customize your preferences!

More information: Chengwan Yang et al, Flexible ZrO2/ZrB2/C nanofiber felt with enhanced microwave absorption and ultralow thermal conductivity, Journal of Materiomics (2024).

Load comments (0)

This article has been reviewed according to Science X's and . have highlighted the following attributes while ensuring the content's credibility:

fact-checked
trusted source
proofread

Get Instant Summarized Text (GIST)

A new flexible nanofiber material, composed of ZrO2/ZrB2/C, exhibits strong microwave absorption and exceptional thermal insulation. It achieves a maximum reflection loss of -54 dB and a broad absorption bandwidth of 3.1 GHz. The material's structure enhances electron transfer and interfacial polarization, improving electromagnetic wave attenuation. It also demonstrates ultralow thermal conductivity of 0.016 W·m-1·°­-1 at 1,100 °C, making it suitable for extreme environments.

This summary was automatically generated using LLM.