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The output resistance and bandwidth of the designed rectifier are 0.89 MΩ and 85.85 MHz, respectively.
The operating bandwidth of the designed structure reaches to Δf ≈ 33.8 THz.
The 3 dB bandwidth of the designed multi-beam antenna is 218 MHz.
Compared to conventional uniform LPWG, the simulated 20-dB bandwidth of the designed chirped LPWG is enlarged by 14 times, from 0.9 nm to 12.8 nm.
Through simulation and experiments, the bandwidth of the designed valve is above 100 Hz while its flow reaches 30 L/min.
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With hardware support for reconfigurable number format and bit width, reduced precision can greatly decrease the area cost and I/O bandwidth of the design, thus multiplying the performance with concurrent processing cores on an FPGA.
The bandwidth centered at λ0=1550 nm of the designed W1 waveguide is considerably large (around 54 nm).
From the results of the simulation, the center frequency, bandwidth, insertion loss, and ripple of the designed filter were 4.97 GHz, 100 MHz, 0.03 dB, and 0.048 dB, respectively.
To support the full bandwidth of the laser, we designed a bulk optics Michelson interferometer.
The resonant wavelength, output efficiency and bandwidth of designed PCBPFs are studied by varying the size of the cavity.
The VSWR bandwidth of designed antenna is 320 MHz (2.30 2.62 GHz) and 6.84 GHz (3.46 10.3 GHz) with minimum isolation of around 18 dB among its antenna elements.
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