电磁屏蔽
材料科学
衰减
复合材料
电磁干扰
制作
电磁干扰
聚二甲基硅氧烷
MXenes公司
共形矩阵
中子辐射
光电子学
碳纳米管
复合数
中子
数码产品
衰减系数
波导管
石墨
柔性电子器件
微波食品加热
蜂窝结构
蜂巢
纳米材料
石墨烯
作者
Flandy,Kun Yung Kim,Jaehyoung Ko,Daeun Kim,D.U Lee,Heesuk Rho,Sang Seok Lee,Dong Su Lee,Se Gyu Jang,Seokhoon Ahn,Seung‐Yeol Jeon,Dae‐Young Jeon,Yongho Joo
标识
DOI:10.1002/adma.202513805
摘要
ABSTRACT A novel material system capable of simultaneously attenuating electromagnetic interference (EMI) and neutron radiation, while retaining multifunctionality such as lightweight and mechanical stretchability, is urgently needed for versatile passivation platforms in advanced aerospace, defense, medical, and next‐generation electronic applications operating under extreme environments. Here, we report (1) a neat composite comprising complementary nanotubes (boron nitride nanotubes, BNNTs, and single‐walled carbon nanotubes, SWCNTs) for dual‐mode attenuation that includes EMI and neutron shielding, and (2) its extension into a 3D‐printed architecture using an intrinsically stretchable polydimethylsiloxane (PDMS) matrix, which altogether enables a robust and conformable shielding architecture for emerging applications. Utilizing direct ink writing, we achieve scalable fabrication of structurally complex geometries (e.g., freestanding honeycomb lattices) with tunable mechanical and shielding properties. The resulting neat composites demonstrate EMI shielding effectiveness exceeding 50 dB and neutron attenuation coefficient of 1.27 mm −1 (equivalent to ∼72% attenuation at a mm thickness) at thicknesses on the order of tens of micrometers, where the polymer composites exhibit the shielding effectiveness up to 23 dB at sub‐millimeter thicknesses while maintaining mechanical resilience under cyclic strain and thermal extremes (–196°C to 250°C). These findings present a lightweight and robust shielding strategy for next‐generation electronics in harsh environments.
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