Hao Zheng, Zhenxu Bai, Xin Hao, Jie Ding, Yaoyao Qi, Bingzheng Yan, Yulei Wang, Zhiwei Lu
{"title":"Investigation of the pulse characteristics of an injection seeded diamond Raman amplifier","authors":"Hao Zheng, Zhenxu Bai, Xin Hao, Jie Ding, Yaoyao Qi, Bingzheng Yan, Yulei Wang, Zhiwei Lu","doi":"10.1063/5.0232346","DOIUrl":null,"url":null,"abstract":"Raman amplification is a highly efficient means by which amplification of laser radiation and beam clean-up can be achieved. Although this process has been described in the literature, little attention has been given to the investigation of pulse characteristics of the laser fields involved in the process. In this work, we analyze the evolution of the fundamental and Stokes fields involved in the Raman amplification process, with a focus on Stokes extraction efficiency within a diamond Raman amplifier. This work offers insight into the means by which the Raman amplification process can be optimized/maximized for a given set of laser fields. Experimental observations show that depletion of the fundamental field occurs during the amplification process, causing an initially Gaussian pulse shape to become increasingly concave. The rate at which the pulse peak diminishes and the overall shape becomes concave is correlated with the rate of amplification of the Stokes field pulse intensity. This experimental observation is supported by theoretical modeling using rate equations wherein Raman amplification under different initial conditions is numerically simulated, and the energy extraction efficiency and pulse shapes under different intensities are analyzed. Experimentally, the amplified laser output of the Stokes field from this system is 4.2 mJ (equivalent to a peak power of up to 37.5 kW), and an amplification efficiency of 18% is achieved.","PeriodicalId":8094,"journal":{"name":"Applied Physics Letters","volume":"22 1","pages":""},"PeriodicalIF":3.6000,"publicationDate":"2024-09-23","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Applied Physics Letters","FirstCategoryId":"101","ListUrlMain":"https://doi.org/10.1063/5.0232346","RegionNum":2,"RegionCategory":"物理与天体物理","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q2","JCRName":"PHYSICS, APPLIED","Score":null,"Total":0}
引用次数: 0
Abstract
Raman amplification is a highly efficient means by which amplification of laser radiation and beam clean-up can be achieved. Although this process has been described in the literature, little attention has been given to the investigation of pulse characteristics of the laser fields involved in the process. In this work, we analyze the evolution of the fundamental and Stokes fields involved in the Raman amplification process, with a focus on Stokes extraction efficiency within a diamond Raman amplifier. This work offers insight into the means by which the Raman amplification process can be optimized/maximized for a given set of laser fields. Experimental observations show that depletion of the fundamental field occurs during the amplification process, causing an initially Gaussian pulse shape to become increasingly concave. The rate at which the pulse peak diminishes and the overall shape becomes concave is correlated with the rate of amplification of the Stokes field pulse intensity. This experimental observation is supported by theoretical modeling using rate equations wherein Raman amplification under different initial conditions is numerically simulated, and the energy extraction efficiency and pulse shapes under different intensities are analyzed. Experimentally, the amplified laser output of the Stokes field from this system is 4.2 mJ (equivalent to a peak power of up to 37.5 kW), and an amplification efficiency of 18% is achieved.
期刊介绍:
Applied Physics Letters (APL) features concise, up-to-date reports on significant new findings in applied physics. Emphasizing rapid dissemination of key data and new physical insights, APL offers prompt publication of new experimental and theoretical papers reporting applications of physics phenomena to all branches of science, engineering, and modern technology.
In addition to regular articles, the journal also publishes invited Fast Track, Perspectives, and in-depth Editorials which report on cutting-edge areas in applied physics.
APL Perspectives are forward-looking invited letters which highlight recent developments or discoveries. Emphasis is placed on very recent developments, potentially disruptive technologies, open questions and possible solutions. They also include a mini-roadmap detailing where the community should direct efforts in order for the phenomena to be viable for application and the challenges associated with meeting that performance threshold. Perspectives are characterized by personal viewpoints and opinions of recognized experts in the field.
Fast Track articles are invited original research articles that report results that are particularly novel and important or provide a significant advancement in an emerging field. Because of the urgency and scientific importance of the work, the peer review process is accelerated. If, during the review process, it becomes apparent that the paper does not meet the Fast Track criterion, it is returned to a normal track.