Guo Jinglun, Zhang Tianyi, Hao Xiaoyu, Liu Shuaijie, Zou Yuxin, Li Jinjin, Wu Wei, Chen Liming, Liu Xuqing
Center of Advanced Lubrication and Seal Materials, State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an, 710072, People's Republic of China.
National Key Laboratory of Scattering and Radiation, Beijing Institute of Environmental Features, Beijing, 100854, People's Republic of China.
Nanomicro Lett. 2025 May 22;17(1):271. doi: 10.1007/s40820-025-01791-4.
Conductive hydrogels have garnered widespread attention as a versatile class of flexible electronics. Despite considerable advancements, current methodologies struggle to reconcile the fundamental trade-off between high conductivity and effective absorption-dominated electromagnetic interference (EMI) shielding, as dictated by classical impedance matching theory. This study addresses these limitations by introducing a novel synthesis of aramid nanofiber/MXene-reinforced polyelectrolyte hydrogels. Leveraging the unique properties of polyelectrolytes, this innovative approach enhances ionic conductivity and exploits the hydration effect of hydrophilic polar groups to induce the formation of intermediate water. This critical innovation facilitates polarization relaxation and rearrangement in response to electromagnetic fields, thereby significantly enhancing the EMI shielding effectiveness of hydrogels. The electromagnetic wave attenuation capacity of these hydrogels was thoroughly evaluated across both X-band and terahertz band frequencies, with further investigation into the impact of varying water content states-hydrated, dried, and frozen-on their electromagnetic properties. Moreover, the hydrogels exhibited promising capabilities beyond mere EMI shielding; they also served effectively as strain sensors for monitoring human motions, indicating their potential applicability in wearable electronics. This work provides a new approach to designing multifunctional hydrogels, advancing the integration of flexible, multifunctional materials in modern electronics, with potential applications in both EMI shielding and wearable technology.
导电水凝胶作为一类多功能的柔性电子产品,已受到广泛关注。尽管取得了显著进展,但根据经典阻抗匹配理论,目前的方法难以协调高导电性与以有效吸收为主的电磁干扰(EMI)屏蔽之间的基本权衡。本研究通过引入一种新型的芳纶纳米纤维/ MXene增强聚电解质水凝胶合成方法来解决这些限制。利用聚电解质的独特性能,这种创新方法提高了离子导电性,并利用亲水性极性基团的水合作用诱导中间水的形成。这一关键创新促进了电磁场作用下的极化弛豫和重排,从而显著提高了水凝胶的EMI屏蔽效能。在X波段和太赫兹波段频率范围内全面评估了这些水凝胶的电磁波衰减能力,并进一步研究了不同含水量状态(水合、干燥和冷冻)对其电磁性能的影响。此外,这些水凝胶不仅具有出色的EMI屏蔽能力,还能有效地用作监测人体运动的应变传感器,表明它们在可穿戴电子产品中具有潜在的应用价值。这项工作为设计多功能水凝胶提供了一种新方法,推动了柔性多功能材料在现代电子学中的集成,在EMI屏蔽和可穿戴技术方面均具有潜在应用。