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Valence-Vacancy Coupled Loss Engineering in LaMnO3 Perovskites for Low-Frequency Microwave Absorption
Shuai Lv1, Xiaomeng Wang2, Jiaxun Wang1
1School of Materials Science and Engineering, Harbin Institute of Technology (Weihai), Weihai 264209, P. R. China.
None:
The high-efficiency absorption of low-frequency electromagnetic waves remains a key bottleneck in electromagnetic protection. Conventional carbon/magnetic fillers are limited by excessively large skin depth, limited magnetic response, and oxidation-induced parameter drift at elevated temperatures, making it difficult to simultaneously satisfy low-frequency absorption and high-temperature durability. This work proposes a charge imbalance-driven Jahn-Teller strategy and fabricates single-phase La1-xCaxMnO3 perovskites via a sol-gel method. The Ca2+/La3+ ionic-size mismatch induces MnO6 octahedral distortion and is accompanied by Mn3+/Mn4+ redistribution and oxygen-vacancy evolution, which strengthens polarization-related dielectric loss and enables coordinated improvement in attenuation capability and impedance matching. Consequently, the dominant dielectric relaxation/absorption response is shifted toward lower frequencies. The optimized sample achieves a minimum reflection loss of -40.46 dB at 4.72 GHz with an effective absorption bandwidth of 4.40 GHz. Far-field radar cross-section simulations further provide evidence of scattering suppression, with a maximum echo reduction of 30.7 dB·m2 for a metal plate. This strategy is extendable to perovskite oxide systems and offers a generalizable design guideline for thermally robust low-frequency absorbing coatings.
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