Bin Yang, Lingbing Bu, Shi Zheng, Guan Wang, Chen Deng, Haijiao Liu, Shanshan Lv, Qichen Ni, Haiyang Cai, Junli Jin
Traditional ozone differential absorption lidar (DIAL) systems are commonly operated in a low-repetition-rate, high-pulse-energy regime to secure sufficient signal-to-noise ratio (SNR) for long-range measurements. For low-altitude tropospheric profiling, however, the shorter propagation path and weaker attenuation make it possible to achieve the required SNR through pulse accumulation rather than high single-pulse energy. Here, we present RD150, a high-repetition-rate ozone DIAL system for profiling ozone in the 0.15-3 km range. Based on an all-solid-state Raman ultraviolet laser, the system emits the 280 and 295 nm DIAL wavelength pair at 5 kHz with ultraviolet pulse energies at the ten-microjoule level. Comparisons with ozonesonde profiles show that RD150 reproduces low-altitude ozone structures well. A near-surface horizontal comparison with a ground-based ozone analyzer further demonstrates that the system can reliably track low-altitude ozone variability. One year of continuous observations confirms stable long-term operation and the ability to resolve seasonal and vertical structural variability. Taken together, these results indicate that, for short-path low-altitude ozone DIAL, kilohertz-level pulse accumulation with µJ-level ultraviolet pulses can provide a practical alternative to continued reliance on higher single-pulse energy, thereby enabling a compact ozone lidar implementation based on a chiller-free air-cooled transmitter and whole-instrument gimbal-mounted scanning capability.