Shi Juan, Zhang Xi, He Wenjie, Nie Ya, Gao Bo, Xiang Gang
College of Physics, Sichuan University, Chengdu 610064, China.
ACS Appl Mater Interfaces. 2025 Jul 9;17(27):39440-39447. doi: 10.1021/acsami.5c07332. Epub 2025 Jun 29.
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.
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。