材料科学
微波食品加热
光电子学
红外线的
堆积
热的
极化(电化学)
纳米技术
热稳定性
太赫兹辐射
成核
纳米纤维
光学整流
聚合物
衍射
结晶
纳米颗粒
衰减器(电子)
振动
光学
吸收(声学)
工程物理
作者
Bo Shan,Ying Lei,Ruochu Lei,Lihan Lv,Cheng Xue,Zhuo Li,Jianbin Wang,Xinghua Wei,Bowen Cheng,Yihao Luan,Yi Huang
摘要
ABSTRACT Actively tunable stealth protection has emerged as crucial for coping with variable electromagnetic radiation environments. However, the development of multi‐band compatible stealth materials that can withstand harsh real‐world service conditions remains a long‐standing bottleneck. This study presents a synergistic engineering approach combining aramid nanofiber assembly dynamics and crystallization thermodynamics of confined carbonization, which affords non‐oriented network structures that exhibit a high degree of isotropy, and remain insusceptible to structural distortion induced by ice crystal growth. The nano‐confinement effect occurring on the fiber surface effectively suppresses interlayer stacking of sp 2 ‐hybridized nanodomains while promoting massive formation of sp 2 –sp 3 polar bonds, realizing a synergistic enhancement of high‐temperature thermal stability up to 1000 K and long‐term mechanical cycling reliability. The as‐obtained material achieves actively reversible tuning of microwave absorption bandwidth covering 5.87–18 GHz, together with a 7.8°C tunable apparent temperature window in the thermal infrared band. This combination of cross‐band dynamic modulation capability provides excellent technical support for the development of all‐weather, all‐terrain camouflage systems for both personnel and military/civilian equipment.
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