4.6 Article

Ultrathin, flexible and sandwich-structured PHBV/silver nanowire films for high-efficiency electromagnetic interference shielding

期刊

JOURNAL OF MATERIALS CHEMISTRY C
卷 9, 期 9, 页码 3307-3315

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0tc05266c

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资金

  1. National Natural Science Foundation of China [51973138, 51973142, 21704070, 51822305]
  2. National Key Research and Development Program of China [2018YFB0704200]
  3. Sichuan Department of Science and Technology [2019YJ0043]

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The ultrathin and flexible composite film made of PHBV and AgNWs demonstrated excellent EMI shielding effectiveness and reliability. Its high conductivity and transparency, along with stability under harsh environmental conditions, make it a promising material for flexible electronics and wearable devices.
Ultrathin, flexible and lightweight characteristics are greatly desirable for next-generation wearable electromagnetic interference (EMI) shielding materials to address EM radiation pollution. Herein, we used poly(3-hydrobutyrate-co-3-hydroxyvalerate) (PHBV), which is a type of biodegradable and non-petroleum-based polymer, and silver nanowires (AgNWs) to fabricate ultrathin and flexible composite films with a sandwich structure via electrospinning, vacuum assisted filtration (VAF) and hot pressing in sequence. Owing to the highly conductive AgNW networks, the minimum sheet resistance and the maximum EMI shielding effectiveness (SE) of the obtained PHBV/AgNW film reached 0.5 omega sq(-1) and 45.9 dB, respectively, in X-band at a thickness of 18 mu m. The films could meet the industry-accepted SE requirement (20 dB) at a high optical transparency of 74%. The specific EMI SE (SSE/t) of the film is up to 19 678 dB cm(2) g(-1), significantly surpassing those of most reported polymeric EMI shielding materials. Moreover, the sandwich structure of the PHBV wrapped AgNW layer could effectively prevent the shedding and corrosion of AgNWs. Thus, the PHBV/AgNW film has an outstanding EMI shielding reliability with a negligible change in EMI SE after exposure to harsh environmental conditions (acidic, alkali and saline solutions) and physical damage (1000 bending cycles and ultrasound for 60 min). This work provides a feasible strategy for the fabrication of ultrathin and flexible EMI shielding films, which will have promising prospects for applications in flexible electronics and wearable devices.

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