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Tunable microwave components based on dielectric nonlinearity byusing HTS/ferroelectric thin films

机译:使用HTS /铁电薄膜基于介电非线性的可调谐微波组件

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This study provides the possibility of developing tunable microwave components based on the dielectric substrate nonlinearity, with the conducting surfaces made of a superconductor. The displacement vector, the dipole moment, polarization, polarizability, susceptibility, and relative permittivity concepts are used for ferroelectrics; and for superconductors, Bose statistics and the Gorter and the Casimir model for a two-fluid model, London's equations, and the classical skin effect for the normal component of the current are used. A sinusoidal wave solution is found for a planar superconducting transmission line. This solution gives expressions for the phase velocity and attenuation coefficient which are used to characterize the tunability of microwave components. The measured data in the literature have been used to compute the relative phase velocities and phase shift per cm versus temperature and the dc bias electric field E (kV/cm). It is shown that with a ferroelectric film of thickness of 140 nm, with ετ =2×103 and tan δ=10-3 phase shifts and attenuation of the order of tens of degrees per centimeter and 5.76×10-3 dB/cm, respectively, at 10 GHz, can be obtained with tens of millivolts at 4 K
机译:这项研究提供了基于介电基片非线性来开发可调谐微波组件的可能性,其导电表面由超导体制成。铁电体使用位移矢量,偶极矩,极化,极化率,磁化率和相对介电常数的概念;对于超导体,则使用Bose统计数据和用于双流体模型的Gorter和Casimir模型,伦敦方程式以及电流正常分量的经典趋肤效应。发现了平面超导传输线的正弦波解。该解决方案给出了相速度和衰减系数的表达式,用于表征微波分量的可调谐性。文献中的测量数据已用于计算相对于每厘米温度和直流偏置电场E(kV / cm)的相对相速度和相移。结果表明,对于厚度为140 nm的铁电薄膜,ετ= 2×103,tanδ= 10-3,相移和衰减量级为每厘米数十度和5.76×10-3 dB / cm,在10 GHz时,可以在4 K下以数十毫伏获得

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