Citation:
Chunyue Fang, Xiaoxuan Tan, Chunhong Wang, Yang He, Xiaoyuan Pei, Yu Zhang, Sarani binti Zakaria, Guangwei Fu, Jiangang Wang, Li Chen, Kun Liu, Ting Xu, Chuanling Si. Janus liquid metal@Mxene/Fe3O4 nanofiber membranes with polydopamine-confined liquid metal for electromagnetic interference shielding and infrared control[J]. Acta Physico-Chimica Sinica,
;2026, 42(10): 100281.
doi:
10.1016/j.actphy.2026.100281
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Electromagnetic interference (EMI) increasingly constrains the development of flexible and multifunctional electronics materials, yet asymmetric structural design and functional integration remain limited. Here we report a Janus hierarchical membrane, liquid metal@polydopamine-MXene/Fe3O4@cellulose polyacrylonitrile nanofibers (LM@PDA-MXene/Fe3O4@CPNF), fabricated by electrospinning a Fe3O4-doped cellulose/Polyacrylonitrile nanofiber scaffold and vacuum-assisted assembly of MXene intercalated with core-shell LM@PDA nanoparticles. The multiscale architecture couples three loss pathways: a percolated MXene network for conductive loss, LM@PDA spacers that suppress restacking and form microcapacitors for interfacial and dipolar polarization, and a porous magnetic entrance that improves impedance matching. In the X-band, a single 70 μm layer achieved an average EMI shielding effectiveness (SET) of 45.1 dB and a thickness-normalised specific shielding effectiveness (SSE/t) = 8.87 × 103 dB·cm2 g-1, stacking four layers raised SET to 70.8 dB. The membrane also provided orientation-dependent thermal functions, this ultrathin, eco-friendly, and lightweight membrane integrates absorption-dominant EMI shielding with bidirectional thermal management in a single platform, offering a practical route toward electromagnetic protection and infrared control in next-generation wearable electronics.
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