电磁屏蔽
材料科学
电磁干扰
电磁干扰
自愈水凝胶
光电子学
纳米技术
液态金属
瓶颈
干扰(通信)
机制(生物学)
超短脉冲
离子液体
工作(物理)
计算机科学
吸收(声学)
纳米颗粒
电磁辐射
电磁兼容性
电磁学
相(物质)
电子工程
软件可移植性
作者
Hang Yang,Xiaolong Wang,Chunhui Wang,Yongqi Yuan,Xiaoting Guo,Wanbiao Hu
出处
期刊:Nano Research
[Springer Science+Business Media]
日期:2026-04-16
卷期号:19 (9): 94908729-94908729
标识
DOI:10.26599/nr.2026.94908729
摘要
Abstract Simultaneously addressing the formidable challenges of reflection-induced secondary pollution and the limited dynamic range of responsive electromagnetic interference (EMI) shielding remains a critical bottleneck for intelligent electromagnetic protection. Herein, we report a gradient liquid metal hydrogel platform that enables a synergistic, decoupled electronic-ionic switching mechanism to achieve high-contrast and absorption-dominated shielding. Unlike conventional responsive hydrogels that rely on quality-deteriorating solvent exchange, swelling, or shrinking—processes that inherently compromise structural reliability—this platform achieves precise, reversible shielding control without any mass loss or structural deformation. By nanoconfining liquid metal (LM) microdroplets within a mechanically robust, aramid nanofiber-reinforced poly(vinyl alcohol) (PVA) matrix, we develop a unique phase-transition-driven “double-lock” switching mechanism. This mechanism leverages the decoupled sequential phase transitions of the LM fillers (electronic channel) and the ionic solvent (ionic channel) to realize a stable transition between electromagnetic “transparency” and “protection”. Specifically, a biomimetic gradient architecture effectively eliminates surface impedance mismatch, achieving an ultra-high EMI shielding effectiveness (SE) of 60.6 dB with a distinct absorption-dominant characteristic (A/R > 1.2). The synergistic “double-lock” system enables a remarkable dynamic switching contrast of 50.7 dB while maintaining its “green” shielding mechanism throughout all functional operational states. By synergizing this high switching contrast with a consistently absorption-dominated performance whenever active shielding is engaged, this work establishes a structure-driven paradigm for next-generation green and intelligent electromagnetic protection.
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