TY - JOUR
T1 - Ag-doped PDA interface strategy for selective electron transition integrating EMI shielding and anti-corrosion performance
AU - Deng, Lechun
AU - Yang, Kun
AU - Wang, Wenzhuo
AU - Zhang, Weijian
AU - Li, Yang
AU - Nan, Hanyi
AU - Chai, Xia
AU - Luo, Fa
AU - Wu, Hongjing
AU - Chen, Qiang
N1 - Publisher Copyright:
© 2024
PY - 2025/7/20
Y1 - 2025/7/20
N2 - Metal-based electromagnetic interference (EMI) shielding composites are essential for ensuring electromagnetic compatibility but are often compromised by susceptibility to corrosion, especially in harsh environments. Existing strategies to mitigate coupling corrosion typically involve physical barriers, which inevitably hinder conductivity. In this study, we introduce a novel interface doping approach to fabricate lightweight Graphite@PDA/Ag@Ag composites that simultaneously enhance EMI shielding and corrosion resistance. The PDA/Ag layer selectively regulates electrons with different migration directions and energies to migrate, increasing charge transfer resistance at Ag/graphite interfaces and ensuring conductivity through a tunneling effect. This design achieves an ultralow corrosion rate of 4.313 × 10–8 µm/y (a billionth that of 316 L stainless steel) alongside superior EMI shielding effectiveness of 109 dB in the X-band at 1.5 mm thickness. Remarkably, the composite maintains over 90 dB shielding efficiency after 7 d in NaCl solutions across various pH levels. Furthermore, simulated corrosion under South China Sea conditions predicts a coating loss of less than 0.026 µm over 7 years. This work presents a transformative approach to mitigating coupling corrosion in EMI shielding materials, offering a practical route to high-performance, corrosion-resistant composites without the need for a protective topcoat.
AB - Metal-based electromagnetic interference (EMI) shielding composites are essential for ensuring electromagnetic compatibility but are often compromised by susceptibility to corrosion, especially in harsh environments. Existing strategies to mitigate coupling corrosion typically involve physical barriers, which inevitably hinder conductivity. In this study, we introduce a novel interface doping approach to fabricate lightweight Graphite@PDA/Ag@Ag composites that simultaneously enhance EMI shielding and corrosion resistance. The PDA/Ag layer selectively regulates electrons with different migration directions and energies to migrate, increasing charge transfer resistance at Ag/graphite interfaces and ensuring conductivity through a tunneling effect. This design achieves an ultralow corrosion rate of 4.313 × 10–8 µm/y (a billionth that of 316 L stainless steel) alongside superior EMI shielding effectiveness of 109 dB in the X-band at 1.5 mm thickness. Remarkably, the composite maintains over 90 dB shielding efficiency after 7 d in NaCl solutions across various pH levels. Furthermore, simulated corrosion under South China Sea conditions predicts a coating loss of less than 0.026 µm over 7 years. This work presents a transformative approach to mitigating coupling corrosion in EMI shielding materials, offering a practical route to high-performance, corrosion-resistant composites without the need for a protective topcoat.
KW - Anti-corrosion
KW - Conductive composite
KW - Corrosion simulation
KW - Dual-shelled structure
KW - EMI shielding
UR - http://www.scopus.com/inward/record.url?scp=85215233824&partnerID=8YFLogxK
U2 - 10.1016/j.jmst.2024.10.047
DO - 10.1016/j.jmst.2024.10.047
M3 - 文章
AN - SCOPUS:85215233824
SN - 1005-0302
VL - 224
SP - 292
EP - 301
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -