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Crystal structure and enhanced microwave dielectric properties of Ta 5+ substituted Li 3 Mg 2 NbO 6 ceramics
Author(s) -
Wang Gang,
Zhang Dainan,
Huang Xin,
Rao Yiheng,
Yang Yan,
Gan Gongwen,
Lai Yuanming,
Xu Fang,
Li Jie,
Liao Yulong,
Liu Cheng,
Jin Lichuan,
Harris Vincent G.,
Zhang Huaiwu
Publication year - 2020
Publication title -
journal of the american ceramic society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.9
H-Index - 196
eISSN - 1551-2916
pISSN - 0002-7820
DOI - 10.1111/jace.16692
Subject(s) - materials science , natural bond orbital , orthorhombic crystal system , dielectric , analytical chemistry (journal) , valence (chemistry) , raman spectroscopy , crystal structure , crystallography , octahedron , polarizability , microstructure , valence electron , chemistry , density functional theory , optics , computational chemistry , electron , molecule , physics , optoelectronics , organic chemistry , chromatography , quantum mechanics
Composition and structure play dominant roles in realizing the microwave dielectric properties that are necessary for the ever‐increasing demands of the Internet of Things and related communication technologies. In the present study, the substitution of Ta 5+ in Li 3 Mg 2 Nb 1− x Ta x O 6 ceramics and its effect on the structural characteristics and microwave dielectric performances is systematically studied. All the substituted compositions were determined to be pure phase orthorhombic Li3Mg2NbO6 structure of space group Fddd . Furthermore, a NbO 6 octahedral distortion, Nb‐O bond valence, packing fraction and polarizability were calculated to explore the structure‐property‐performance paradigm in the context of microwave dielectric performance. Scanning electron microscopy revealed homogeneous microstructures, with the introduction of Ta 5+ promoting grain growth. Raman spectra indicated that the variation of the band (blue shift and red shift) at 771 cm −1 was highly correlated with the variation in unit cell volume. The polarizability significantly impacted ɛ r values. The Q × f values were strongly influenced by the packing fraction and grain size. The changes in the NbO 6 octahedral distortion and Nb–O bond valence impacted the τ f values. The Li 3 Mg 2 Nb 0.98 Ta 0.02 O 6 composition displayed the most dramatic improvements in microwave dielectric properties: ε r  = 15.58, Q × f  = 113 000 GHz and τ f  = −4.5 ppm/°C, providing a potential candidate for next generation microwave and millimeter‐wave applications.

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