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Here we report about the design, characterization, construction and installation of this light distribution system consisting of a picosecond laser source, a printed light circuit (PLC), long single mode fibers coupled to bundles of multimode fibers terminated with graded index microlenses, to provide illumination of all the PMT pixels with time jitter less than 50 ps.
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Less Than Jake.
The peak-to-peak jitter is less than 7.7 ps over the operating frequency range of 200 MHz–1 GHz and the power consumption is 4.8 mW at 1 GHz.
MARTe executes these modules in kernel space Real-Time Application Interface allowing to attain the required cycle time and a jitter of less than 1.5 μs.
The timing jitter of less than 1 ps between the laser and RF power has been achieved by using a timing stabilizer.
Our solution is designed to achieve synchronous acquisition of detector waveforms from all channels with a jitter of less than 1 ns, and can be extended to a larger number of chassis if desired.
According to measured results, the frequency range of the proposed synthesizable pseudo fractional-N clock generator is from 12.5 MHz to 1 GHz and the peak-to-peak jitter is less than 5% of the output period.
The drift of the clock crySince has been observed thebe relAMively regular.
The net result was that the laser was fired at a delay time of τ 2- τ 1 after the ultrasound, with a timing jitter of less than 2.0 ns.
The corresponding power consumption is between 195 nW and 450 nW, and the measured deterministic-jitter is less than 100 ns.
In normal voices, jitter is generally less than 1%.
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