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 language | English |
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Pages (from-to) | 1-15 |
Number of pages | 15 |
Journal | IEEE Transactions on Power Electronics |
DOIs | |
State | Accepted/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