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掺杂剂工程调控柔性 MNPs/TPU/PPy 核壳薄膜的电磁干扰屏蔽性能。

Dopant Engineering of Flexible MNPs/TPU/PPy Core-Shell Films for Controllable Electromagnetic Interference Shielding.

机构信息

Laboratory of Advanced Materials, Shanghai Key Lab of Molecular Catalysis and Innovative Materials, Academy for Engineering & Technology, Fudan University, Shanghai 200438, P. R. China.

School of Microelectronics, Fudan University, Shanghai 200433, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2023 Jun 14;15(23):28410-28420. doi: 10.1021/acsami.3c02454. Epub 2023 Jun 2.

Abstract

Intrinsically conductive polymers have attracted much attention in the electromagnetic interference (EMI) shielding field because of their high conductivity and favorable flexibility. Delocalized π-electrons migrating along the conjugated long-chain structures can form a current. Based on this special conductive mechanism, the doping process significantly influences the conductivity and EMI shielding efficiency (SE). However, it is challenging to investigate the influence of the doping process on EMI shielding performance, which would enable the optimization of dopant selection. In this study, dopant engineering was explored for controllable conductivity, EMI SE, and mechanical properties. Polypyrrole (PPy) doped with various dopants serves as a conductive coating owing to its adjustable conductivity and abundant functional groups. Elastic thermoplastic polyurethane was chosen as the porous framework because of its high tensile strength, and magnetic nanoparticles supplied the magnetic loss in the 3D network. Eventually, the composite film showed the best properties when PPy was doped with sodium -toluenesulfonate. The film exhibited an average SE of 26.3 dB in the X band and a specific SE of 1563.17 dB cm g with a thickness of merely 0.2 mm. This film withstood a tensile stress of 16.0 MPa, while the breaking elongation ratio reached 538.0%. After 10,000 cyclic bending, 92.3% of the EMI shielding property was retained. In summary, this study highlights the most suitable dopant for EMI shielding applications and provides a prospective alternative for advanced, flexible, and smart devices.

摘要

本征型导电高分子由于其高导电性和良好的柔韧性而在电磁干扰 (EMI) 屏蔽领域引起了广泛关注。离域π电子沿共轭长链结构迁移可以形成电流。基于这种特殊的导电机制,掺杂过程显著影响导电性和 EMI 屏蔽效率 (SE)。然而,研究掺杂过程对 EMI 屏蔽性能的影响具有挑战性,这将有助于优化掺杂剂的选择。在这项研究中,通过掺杂工程探索了可控导电性、EMI SE 和机械性能。掺杂各种掺杂剂的聚吡咯 (PPy) 由于其可调导电性和丰富的官能团而用作导电涂层。弹性热塑性聚氨酯因其高拉伸强度而被选为多孔骨架,而磁性纳米粒子在 3D 网络中提供了磁损耗。最终,当 PPy 被对甲苯磺酸钠掺杂时,复合膜表现出最佳的性能。该薄膜在 X 波段的平均 SE 为 26.3 dB,厚度仅为 0.2mm 时的特定 SE 为 1563.17 dB cm g。该薄膜能够承受 16.0 MPa 的拉伸应力,而断裂伸长率达到 538.0%。经过 10000 次循环弯曲后,保留了 92.3%的 EMI 屏蔽性能。总之,本研究突出了最适合 EMI 屏蔽应用的掺杂剂,并为先进、灵活和智能设备提供了有前景的替代方案。

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