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用于可调谐微波吸收且具有优异低频性能的生物质衍生多孔碳材料

Biomass-Derived Porous Carbon Materials for Tunable Microwave Absorption with Excellent Low-Frequency Performance.

作者信息

Shi Juan, Zhang Xi, He Wenjie, Nie Ya, Gao Bo, Xiang Gang

机构信息

College of Physics, Sichuan University, Chengdu 610064, China.

出版信息

ACS Appl Mater Interfaces. 2025 Jul 9;17(27):39440-39447. doi: 10.1021/acsami.5c07332. Epub 2025 Jun 29.

Abstract

Biomass-derived porous carbon (BPC) is promising for sustainable and cost-efficient microwave absorption (MA), but its absorption frequencies are primarily concentrated in the mid- and high-frequency ranges (8-18 GHz), posing challenges for low-frequency applications crucial to 5G and radar technologies. Herein, we report a novel strategy to tune the BPC absorption frequency effectively. The absorption frequency is shifted from the Ku-band (12-18 GHz) to the C-band (4-8 GHz) by engineering nitrogen (N) concentration in corn-cob-pith-derived carbon materials through appropriate thermal treatment. Furthermore, the low-frequency absorption performance is enhanced by the porous structure activated by KOH. As a result, the optimized sample achieves superior low-frequency absorption in humid and corrosive environments, with a minimum reflection loss (RL) of -53.92 dB at 7.84 GHz (C-band) at 3.03 mm thickness and an ultrawide maximum effective absorption bandwidth (EAB) of 6.56 GHz at 2.0 mm. Moreover, another high-frequency absorption sample can also be obtained by tuning the thermal treatment and KOH activation parameters, which exhibits an RL of -47.31 dB at 15.84 GHz (Ku-band) at 2.59 mm and an EAB of 8.08 GHz at 3.0 mm. This research presents an innovative approach to design and fabricate high-performance BPC microwave absorbers for both low-frequency and high-frequency applications.

摘要

生物质衍生的多孔碳(BPC)在可持续且经济高效的微波吸收(MA)方面具有广阔前景,但其吸收频率主要集中在中高频范围(8 - 18 GHz),这给对5G和雷达技术至关重要的低频应用带来了挑战。在此,我们报告一种有效调节BPC吸收频率的新策略。通过对玉米芯髓衍生碳材料进行适当热处理来调控氮(N)浓度,使吸收频率从Ku波段(12 - 18 GHz)转移到C波段(4 - 8 GHz)。此外,通过KOH活化的多孔结构增强了低频吸收性能。结果,优化后的样品在潮湿和腐蚀性环境中实现了优异的低频吸收,在3.03 mm厚度下,7.84 GHz(C波段)处的最小反射损耗(RL)为 - 53.92 dB,在2.0 mm时超宽的最大有效吸收带宽(EAB)为6.56 GHz。此外,通过调整热处理和KOH活化参数还可获得另一种高频吸收样品,其在2.59 mm厚度下,15.84 GHz(Ku波段)处的RL为 - 47.31 dB,在3.0 mm时EAB为8.08 GHz。本研究提出了一种创新方法,用于设计和制造适用于低频和高频应用的高性能BPC微波吸收体。

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