Low loss dual polarized matched zero index metamaterials for microwave applications

Author(s):  
Zhihao Jiang ◽  
J.A. Bossard ◽  
D.H. Werner
2019 ◽  
Vol 45 (4) ◽  
pp. 4316-4321 ◽  
Author(s):  
Mahender C ◽  
Sumangala T P ◽  
Ramesh Ade ◽  
Saranya A ◽  
Shiva Prasad ◽  
...  

ChemInform ◽  
2015 ◽  
Vol 46 (43) ◽  
pp. no-no
Author(s):  
Raz Muhammad ◽  
Yaseen Iqbal ◽  
Ian M. Reaney

Author(s):  
Haoning Tang ◽  
Clayton DeVault ◽  
Phil Camayd-Muftoz ◽  
Danchen Jia ◽  
Yeuyan Liu ◽  
...  

2014 ◽  
Vol 492 ◽  
pp. 281-285 ◽  
Author(s):  
Xi Geng Miao ◽  
Xian Gao Zhang ◽  
Xiao Wei Fang ◽  
Fabrizia Ghezzo ◽  
Zhi Ya Zhao ◽  
...  

A glass powder of the SiO2-Al2O3-K2O-Na2O system was added to fused silica particles to form composite green compacts by tape casting. This procedure was able to lower the sintering temperature of the fused silica particles making the composites suitable for being co-fired with the silver-palladium (Ag-Pd) paste commonly used as a conductive circuit in several microwave applications. The resulting new ceramic composite with the composition of 50 wt% fused silica and 50 wt% glass (brand name: TC-3) had a low dielectric constant and a low loss tangent of 2.7 and 2.5-3.7 x10-3 , respectively, and was able to be co-fired with the Ag-Pd conductive paste at the temperature of 895 °C, resulting in a potential low temperature co-fired ceramic (LTCC) system for microwave applications.


2021 ◽  
Vol 10 (1) ◽  
Author(s):  
Tian Dong ◽  
Jiujiu Liang ◽  
Sarah Camayd-Muñoz ◽  
Yueyang Liu ◽  
Haoning Tang ◽  
...  

AbstractLight travels in a zero-index medium without accumulating a spatial phase, resulting in perfect spatial coherence. Such coherence brings several potential applications, including arbitrarily shaped waveguides, phase-mismatch-free nonlinear propagation, large-area single-mode lasers, and extended superradiance. A promising platform to achieve these applications is an integrated Dirac-cone material that features an impedance-matched zero index. Although an integrated Dirac-cone material eliminates ohmic losses via its purely dielectric structure, it still entails out-of-plane radiation loss, limiting its applications to a small scale. We design an ultra-low-loss integrated Dirac cone material by achieving destructive interference above and below the material. The material consists of a square array of low-aspect-ratio silicon pillars embedded in silicon dioxide, featuring easy fabrication using a standard planar process. This design paves the way for leveraging the perfect spatial coherence of large-area zero-index materials in linear, nonlinear, and quantum optics.


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