High Frequency Pulsed Laser Driver Using Complementary GaN HEMTs

Ching Yao Liu, Chun Hsiung Lin, Hao Chung Kuo, Li Chuan Tang, Yu Heng Hong, Chang Ching Tu, Edward Yi Chang, Wei Hua Chieng

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

This paper attempts to disclose a high-efficiency laser driver which controls laser source for high-frequency Light Detection and Ranging (LiDAR) applications. The specific LiDAR requisites encompass a 20 MHz laser repetition rate, a 10 ns pulse duration, and an instantaneous power of 50 W. The power efficiency of a LiDAR used in autonomous vehicles is critical which shall yield a total input power within 15 W. To enhance power efficiency, a half-bridge pulse laser drive is proposed, featuring a depletion mode gallium nitride (D-mode GaN) transistor on the high-side and an enhancement mode (Emode) GaN transistor on the low-side. A high-side gate drive is also introduced and analyzed for the D-mode GaN transistor which can greatly minimize oscillation during laser-pulse capacitor charging due to no body diode effect. Key efficiency factors include the equivalent series resistance (ESR) of multilayer ceramic capacitor (MLCC), high-side transistor switching loss and transistor resistive loss. A peak efficiency of 75% is found at the compromise of all losses which is verified in both theoretical and experimental methods. The pulse laser drive operation is proven to be stable in the experiments over a wide range of laser repetition rate from 10 kHz to 20 MHz.

Original languageEnglish
Pages (from-to)1-15
Number of pages15
JournalIEEE Transactions on Power Electronics
DOIs
StateAccepted/In press - 2024

Keywords

  • Capacitors
  • GaN high electron mobility transistor (HEMT)
  • Gallium nitride
  • HEMTs
  • MODFETs
  • Power lasers
  • Transistors
  • Vehicles
  • half-bridge
  • high frequency
  • high-side drive
  • pulse laser driver

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