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Voltage-Controlled Pulsed Current Source With Hyperbolic, Squared Hyperbolic, and Quasi-Dirac Delta Function Time Dependence

  • Niksa Tadic*
  • , Danilo Petricevic
  • , Milena Erceg
  • , Alija Dervic
  • , Horst Zimmermann
  • *Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

A voltage-controlled pulsed current source (VCPCS) capable of generating current pulses with four different waveforms in the time domain is presented in this article. These waveforms are the following: hyperbolic waveform in time domain (HWTD), squared HWTD (SHWTD), quasi-Dirac delta function (QDDF) based on HWTD, and QDDF based on SHWTD. The QDDF is treated as a generalized function (GF) whose limit value leads to the required shape. The controllability of the shapes and frequency of the current pulses is provided by adjustment of the parameters of saw-tooth and triangle control voltages. The design of the proposed VCPCS can be implemented in a standard CMOS technology. However, it has been prototyped here first using discrete off-the-shelf components mounted on a printed circuit board with a single supply voltage of 3.3 V. Measured results confirm the predictions of the analysis performed. Specifically, the measured ratio of the largest and the smallest HWTD current is 7.6 times larger than that in the state-of-the-art, for the same supply voltage, which is of particular importance in optical quantum random number generators (OQRNG s ).

Original languageEnglish
Article number2003410
JournalIEEE transactions on instrumentation and measurement
Volume74
DOIs
Publication statusPublished - 2025
Externally publishedYes

Keywords

  • 2025 OA procedure
  • Current pulses
  • Dirac delta function (DDF)
  • Generalized function (GF)
  • Hyperbolic waveform
  • Squared hyperbolic waveform
  • CMOS analog circuit design

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