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Article

Atmospheric Thermodynamic Profiling through the Use of a Micro-Pulse Raman Lidar System: Introducing the Compact Raman Lidar MARCO

1
Scuola di Ingegneria, Università degli Studi della Basilicata, 85100 Potenza, Italy
2
Institute of Marine Sciences, National Research Council (ISMAR-CNR), 00133 Roma, Italy
3
Institute of Methodologies for Environmental Analysis (IMAA-CNR), National Research Council, 85050 Tito, Italy
*
Author to whom correspondence should be addressed.
Sensors 2023, 23(19), 8262; https://doi.org/10.3390/s23198262
Submission received: 29 August 2023 / Revised: 20 September 2023 / Accepted: 27 September 2023 / Published: 6 October 2023
(This article belongs to the Special Issue Feature Papers in Remote Sensors 2023)

Abstract

It was for a long time believed that lidar systems based on the use of high-repetition micro-pulse lasers could be effectively used to only stimulate atmospheric elastic backscatter echoes, and thus were only exploited in elastic backscatter lidar systems. Their application to stimulate rotational and roto-vibrational Raman echoes, and consequently, their exploitation in atmospheric thermodynamic profiling, was considered not feasible based on the technical specifications possessed by these laser sources until a few years ago. However, recent technological advances in the design and development of micro-pulse lasers, presently achieving high UV average powers (1–5 W) and small divergences (0.3–0.5 mrad), in combination with the use of large aperture telescopes (0.3–0.4 m diameter primary mirrors), allow one to presently develop micro-pulse laser-based Raman lidars capable of measuring the vertical profiles of atmospheric thermodynamic parameters, namely water vapor and temperature, both in the daytime and night-time. This paper is aimed at demonstrating the feasibility of these measurements and at illustrating and discussing the high achievable performance level, with a specific focus on water vapor profile measurements. The technical solutions identified in the design of the lidar system and their technological implementation within the experimental setup of the lidar prototype are also carefully illustrated and discussed.
Keywords: water vapor; micro-pulse laser; Raman lidar water vapor; micro-pulse laser; Raman lidar

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MDPI and ACS Style

Di Girolamo, P.; Franco, N.; Di Paolantonio, M.; Summa, D.; Dionisi, D. Atmospheric Thermodynamic Profiling through the Use of a Micro-Pulse Raman Lidar System: Introducing the Compact Raman Lidar MARCO. Sensors 2023, 23, 8262. https://doi.org/10.3390/s23198262

AMA Style

Di Girolamo P, Franco N, Di Paolantonio M, Summa D, Dionisi D. Atmospheric Thermodynamic Profiling through the Use of a Micro-Pulse Raman Lidar System: Introducing the Compact Raman Lidar MARCO. Sensors. 2023; 23(19):8262. https://doi.org/10.3390/s23198262

Chicago/Turabian Style

Di Girolamo, Paolo, Noemi Franco, Marco Di Paolantonio, Donato Summa, and Davide Dionisi. 2023. "Atmospheric Thermodynamic Profiling through the Use of a Micro-Pulse Raman Lidar System: Introducing the Compact Raman Lidar MARCO" Sensors 23, no. 19: 8262. https://doi.org/10.3390/s23198262

APA Style

Di Girolamo, P., Franco, N., Di Paolantonio, M., Summa, D., & Dionisi, D. (2023). Atmospheric Thermodynamic Profiling through the Use of a Micro-Pulse Raman Lidar System: Introducing the Compact Raman Lidar MARCO. Sensors, 23(19), 8262. https://doi.org/10.3390/s23198262

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