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      Comprehensive Thermal Analysis of Diamond in a High-Power Raman Cavity Based on FVM-FEM Coupled Method

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          Abstract

          Despite their extremely high thermal conductivity and low thermal expansion coefficients, thermal effects in diamond are still observed in high-power diamond Raman lasers, which proposes a challenge to their power scaling. Here, the dynamics of temperature gradient and stress distribution in the diamond are numerically simulated under different pump conditions. With a pump radius of 100 μm and an absorption power of up to 200 W (corresponding to the output power in kilowatt level), the establishment period of thermal steady-state in a millimeter diamond is only 50 μs, with the overall thermal-induced deformation of the diamond being less than 2.5 μm. The relationship between the deformation of diamond and the stability of the Raman cavity is also studied. These results provide a method to better optimize the diamond Raman laser performance at output powers up to kilowatt-level.

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          Most cited references37

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          High-power fibre lasers

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            High power fiber lasers: current status and future perspectives [Invited]

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              Coherent Beam Combining of Fiber Amplifiers Using Stochastic Parallel Gradient Descent Algorithm and Its Application

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                Author and article information

                Contributors
                Role: Academic Editor
                Journal
                Nanomaterials (Basel)
                Nanomaterials (Basel)
                nanomaterials
                Nanomaterials
                MDPI
                2079-4991
                15 June 2021
                June 2021
                : 11
                : 6
                : 1572
                Affiliations
                [1 ]Center for Advanced Laser Technology, Hebei University of Technology, Tianjin 300401, China; zxbai@ 123456hebut.edu.cn (Z.B.); gaojia20201@ 123456163.com (J.G.); wyl@ 123456hebut.edu.cn (Y.W.); zhiweilv@ 123456hebut.edu.cn (Z.L.)
                [2 ]Hebei Key Laboratory of Advanced Laser Technology and Equipment, Tianjin 300401, China
                [3 ]MQ Photonics Research Centre, Department of Physics and Astronomy, Macquarie University, Macquarie Park, NSW 2109, Australia; rich.mildren@ 123456mq.edu.au
                [4 ]School of Energy and Environmental Engineering, Hebei University of Technology, Tianjin 300401, China; 181063@ 123456stu.hebut.edu.cn (Z.Z.); 201821301010@ 123456stu.hebut.edu.cn (Z.Z.)
                [5 ]Hangzhou Institute for Advanced Study, UCAS, Hangzhou 330106, China; xuezong.yang@ 123456ucas.ac.cn
                Author notes
                [* ]Correspondence: wangkun@ 123456hebut.edu.cn
                [†]

                These authors contributed equally to this work.

                Author information
                https://orcid.org/0000-0003-2040-833X
                Article
                nanomaterials-11-01572
                10.3390/nano11061572
                8232721
                f7aea96f-28ec-48b2-b2cf-8c467887533b
                © 2021 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( https://creativecommons.org/licenses/by/4.0/).

                History
                : 12 May 2021
                : 11 June 2021
                Categories
                Article

                diamond,thermal analysis,high-power,raman laser,fvm-fem
                diamond, thermal analysis, high-power, raman laser, fvm-fem

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