Bond theory, terahertz spectra, and dielectric studies in donor‐acceptor (Nb‐Al) substituted ZnTiNb 2 O 8 system
暂无分享,去创建一个
Bowen Zhang | Jining Li | Shihui Yu | Lingxia Li | Shihui Yu | Lingxia Li | Weijia Luo | Jining Li | Jianli Qiao | Siliang Chen | Weijia Luo | Bowen Zhang | Jianli Qiao | Siliang Chen
[1] The effect of optical pump on the absorption coefficient of 0.65CaTiO 3 -0.35NdAlO 3 ceramics in terahertz range , 2018 .
[2] Xingyi Huang,et al. “Grafting to” route to PVDF-HFP-GMA/BaTiO3 nanocomposites with high dielectric constant and high thermal conductivity for energy storage and thermal management applications , 2014 .
[3] Sung‐Jin Kim,et al. Terahertz characterization of Y2O3-added AlN ceramics , 2016 .
[4] Shihui Yu,et al. Effects of structural characteristics on microwave dielectric properties of low-loss (Zn1-Ni )ZrNbTaO8 ceramics , 2018, Ceramics International.
[5] Jianquan Yao,et al. Design of a tunable multiband terahertz waves absorber , 2015 .
[6] H. Fan,et al. Microstructure, phase evolution and interfacial effects in a new Zn0.9Mg0.1TiO3-ZnNb2O6 ceramic system with greatly induced improvement in microwave dielectric properties , 2018 .
[7] Shuren Zhang,et al. Structural Evolution and Microwave Dielectric Properties of xZn0.5Ti0.5NbO4-(1- x)Zn0.15Nb0.3Ti0.55O2 Ceramics. , 2018, Inorganic chemistry.
[8] Meihong Fan,et al. Electrospinning preparation of mesoporous spinel gallate (MGa2O4; MNi, Cu, Co) nanofibers and their M(II) ions-dependent gas sensing properties , 2017 .
[9] R. Muhammad,et al. Sintering behaviour and microwave dielectric properties of BaAl2−2x(ZnSi)xSi2O8 ceramics , 2017 .
[10] A. Brentari,et al. Solid-state pressureless sintering of silicon carbide below 2000 °C , 2014 .
[11] E. Kim,et al. Enhanced quality factor of MgTiO3 ceramics by isovalent Ti-site substitution , 2016 .
[12] Ling Cheng,et al. Investigation and characterization on crystal structure of ixiolite structure ATiNb2O8 (A = Mg, Zn) ceramics at microwave frequency based on the complex chemical bond theory , 2017 .
[13] H. Fan,et al. Novel sintering and band gap engineering of ZnTiO3 ceramics with excellent microwave dielectric properties , 2017 .
[14] R. D. Shannon. Dielectric polarizabilities of ions in oxides and fluorides , 1993 .
[15] H. Ogawa,et al. Crystal structure of corundum type Mg4(Nb2–xTax)O9 microwave dielectric ceramics with low dielectric loss , 2003 .
[16] Xiuyu Wang,et al. The relationship between bond ionicity, lattice energy, coefficient of thermal expansion and microwave dielectric properties of Nd(Nb(1-x)Sb(x))O4 ceramics. , 2015, Dalton transactions.
[17] W. Lei,et al. Phase Evolution and Microwave Dielectric Properties of (1−x)ZnAl2O4−xMg2TiO4 Ceramics , 2009 .
[18] Yunjiang Rao,et al. Broadband gate-tunable terahertz plasmons in graphene heterostructures , 2018 .
[19] Telecom meets terahertz , 2018 .
[20] Shihui Yu,et al. High dielectric constant and high‐Q in microwave ceramics of SrTiO3 co‐doped with aluminum and niobium , 2018 .
[21] Linkun Jiang,et al. Optical tuning of dielectric properties of Ba0.6Sr0.4TiO3-La(Mg0.5Ti0.5)O3 ceramics in the terahertz range , 2013 .
[22] Michael Watkinson,et al. Terahertz spectroscopy: a powerful new tool for the chemical sciences? , 2012, Chemical Society reviews.
[23] Jingfeng Li,et al. Orthorhombic to tetragonal phase transition due to stress release in (Li,Ta)-doped(K,Na)NbO3 lead-free piezoceramics , 2012 .
[24] R. Zuo,et al. Structure, Microwave Dielectric Properties, and Low‐Temperature Sintering of Acceptor/Donor Codoped Li2Ti1−x(Al0.5Nb0.5)xO3 Ceramics , 2016 .
[25] B. Jin,et al. Crystal structure, impedance and broadband dielectric spectra of ordered scheelite-structured Bi(Sc1/3Mo2/3)O4 ceramic , 2017 .
[26] P. Mohanan,et al. Effect of Filler Content on the Dielectric Properties of PTFE/ZnAl2O4–TiO2 Composites , 2008 .
[27] Lingxia Li,et al. Investigation of chemical bonds in the ordered Ba3Zn(Nb2-xMox)O9+x/2 ceramics and its effects on the microwave performance , 2018, Journal of the European Ceramic Society.
[28] Chi-Chang Hu,et al. Active site-engineered bifunctional electrocatalysts of ternary spinel oxides, M0.1Ni0.9Co2O4 (M: Mn, Fe, Cu, Zn) for the air electrode of rechargeable zinc–air batteries , 2017 .
[29] Dong‐Wan Kim,et al. Phase Relations and Microwave Dielectric Properties of ZnNb_2O_6–TiO_2 , 2000 .
[30] Meng Qb,et al. Semiempirical study on the valences of Cu and bond covalency in Y1-xCaxBa2Cu3O6+y , 1998 .
[31] Jianqiang Gu,et al. Dielectric properties of MgO–ZnO–TiO2-based ceramics at 1 MHz and THz frequencies , 2017, Journal of Materials Science.
[32] J. Kang,et al. Terahertz-light quantum tuning of a metastable emergent phase hidden by superconductivity , 2018, Nature Materials.