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A high Q piezoelectric resonator as a portable VLF transmitter
- Source :
- Nature Communications, Nature Communications, Vol 10, Iss 1, Pp 1-7 (2019)
- Publication Year :
- 2019
-
Abstract
- Very low frequency communication systems (3 kHz–30 kHz) enable applications not feasible at higher frequencies. However, the highest radiation efficiency antennas require size at the scale of the wavelength (here, >1 km), making portable transmitters extremely challenging. Facilitating transmitters at the 10 cm scale, we demonstrate an ultra-low loss lithium niobate piezoelectric electric dipole driven at acoustic resonance that radiates with greater than 300x higher efficiency compared to the previous state of the art at a comparable electrical size. A piezoelectric radiating element eliminates the need for large impedance matching networks as it self-resonates at the acoustic wavelength. Temporal modulation of this resonance demonstrates a device bandwidth greater than 83x beyond the conventional Bode-Fano limit, thus increasing the transmitter bitrate while still minimizing losses. These results will open new applications for portable, electrically small antennas.<br />Designing high radiation efficiency antennas for portable transmitters in low frequency communication systems remains a challenge. Here, the authors report on using piezoelectricity to more efficiently radiate while achieving a bandwidth eighty three times higher than the passive Bode-Fano limit.
- Subjects :
- 0301 basic medicine
Acoustics
Science
Lithium niobate
Impedance matching
General Physics and Astronomy
02 engineering and technology
Data_CODINGANDINFORMATIONTHEORY
Low frequency
General Biochemistry, Genetics and Molecular Biology
Article
03 medical and health sciences
chemistry.chemical_compound
Very low frequency
lcsh:Science
Computer Science::Information Theory
Physics
Multidisciplinary
Transmitter
Bandwidth (signal processing)
General Chemistry
021001 nanoscience & nanotechnology
Antenna efficiency
030104 developmental biology
chemistry
lcsh:Q
0210 nano-technology
Acoustic resonance
Subjects
Details
- ISSN :
- 20411723
- Volume :
- 10
- Issue :
- 1
- Database :
- OpenAIRE
- Journal :
- Nature communications
- Accession number :
- edsair.doi.dedup.....bcb956e87d347a3d0476a2434d4ab1f0