TY - JOUR
T1 - Phase structure-induced amplification of interfacial polarization loss for excellent electromagnetic wave absorption
AU - Li, Na
AU - Wen, Bo
AU - Li, Xinyang
AU - Yang, Shengchun
AU - Yang, Guorui
AU - Ding, Shujiang
N1 - Publisher Copyright:
© 2024 Elsevier B.V.
PY - 2024/5/15
Y1 - 2024/5/15
N2 - The development of multicomponent dielectric composites has emerged as a predominant approach to achieving exceptional electromagnetic (EM) wave absorbers. However, elucidating the intrinsic characteristics and absorption mechanism for EM wave absorbers poses significant challenges due to the intertwined discussion of electromagnetic loss with dipole polarization loss, defects/interfacial polarization, and conductive loss, among others. To address this issue, manganese selenide (MnSe) nanocrystals with different phase structures are synthesized successfully by the thermal injection decomposition method, including star-shaped α-MnSe nanocrystals and tetrapod-shaped γ-MnSe nanocrystals, which were combined with rGO layers to form α-MnSe/rGO composites and γ-MnSe/rGO composites. Through controllable phase structure, tune the interfacial charge transfer and establish the link between interfacial polarization and EM wave absorption. Owing to the boosted interfacial polarization loss provided by the star-shaped α-MnSe nanocrystals and rGO layers, α-MnSe/rGO composites harvest an RLmin of −62.4 dB (2.7 mm) and a broad bandwidth of 7.52 GHz at 2.9 mm. This study successfully breaks through the limitations of conventional component design, establishing a robust correlation between phase structure/interfacial polarization and electromagnetic wave dissipation capability. These findings provide valuable insights for developing advanced materials with enhanced electromagnetic wave absorption properties.
AB - The development of multicomponent dielectric composites has emerged as a predominant approach to achieving exceptional electromagnetic (EM) wave absorbers. However, elucidating the intrinsic characteristics and absorption mechanism for EM wave absorbers poses significant challenges due to the intertwined discussion of electromagnetic loss with dipole polarization loss, defects/interfacial polarization, and conductive loss, among others. To address this issue, manganese selenide (MnSe) nanocrystals with different phase structures are synthesized successfully by the thermal injection decomposition method, including star-shaped α-MnSe nanocrystals and tetrapod-shaped γ-MnSe nanocrystals, which were combined with rGO layers to form α-MnSe/rGO composites and γ-MnSe/rGO composites. Through controllable phase structure, tune the interfacial charge transfer and establish the link between interfacial polarization and EM wave absorption. Owing to the boosted interfacial polarization loss provided by the star-shaped α-MnSe nanocrystals and rGO layers, α-MnSe/rGO composites harvest an RLmin of −62.4 dB (2.7 mm) and a broad bandwidth of 7.52 GHz at 2.9 mm. This study successfully breaks through the limitations of conventional component design, establishing a robust correlation between phase structure/interfacial polarization and electromagnetic wave dissipation capability. These findings provide valuable insights for developing advanced materials with enhanced electromagnetic wave absorption properties.
KW - Electromagnetic wave absorption
KW - Interfacial polarization
KW - Manganese selenide
KW - Optimized polarization loss
KW - Phase structure induced
UR - https://www.scopus.com/pages/publications/85190068177
U2 - 10.1016/j.cej.2024.150420
DO - 10.1016/j.cej.2024.150420
M3 - 文章
AN - SCOPUS:85190068177
SN - 1385-8947
VL - 488
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 150420
ER -