High Brightness Ce:Nd:YAG Solar Laser Pumping Approach with 22.9 W/m2 TEM00-Mode Collection Efficiency

被引:5
作者
Vistas, Claudia R. [1 ]
Liang, Dawei [1 ]
Costa, Hugo [1 ]
Catela, Miguel [1 ]
Garcia, Dario [1 ]
Tiburcio, Bruno D. [1 ]
Almeida, Joana [1 ]
机构
[1] Univ NOVA Lisboa, Dept Fis, CEFITEC, FCT, Campus Caparica, P-2829516 Caparica, Portugal
关键词
parabolic mirror; Ce:Nd:YAG; beam brightness; solar laser; PUMPED LASER; ND; BEAM;
D O I
10.3390/en16135143
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
A compact side-pumped solar laser design using a Ce:Nd:YAG laser medium is here proposed to improve the TEM00-mode solar laser output performance, more specifically the beam brightness. The solar laser performance of the Ce:Nd:YAG laser head was numerically studied by both ZEMAX((R)) v13 and LASCAD (TM) v1 software. Maximum multimode laser power of 99.5 W was computed for the 4.1 mm diameter, 34 mm length grooved rod, corresponding to a collection efficiency of 33.2 W/m(2). To extract TEM00-mode solar laser, symmetric and asymmetric optical resonators were investigated. For the 4.1 mm diameter, 34 mm length grooved rod, maximum TEM00-mode solar laser collection efficiency of 22.9 W/m(2) and brightness figure of merit of 62.4 W were computed using the symmetric optical resonator. While, for the asymmetric optical resonator, the maximum fundamental mode solar laser collection efficiency of 16.1 W/m(2) and brightness figure of merit of 37.3 W were numerically achieved. The asymmetric resonator offered a TEM00-mode laser power lower than the one obtained using the symmetric resonator; however, a collimated laser beam was extracted from the asymmetric resonator, unlike the divergent TEM00-mode laser beam provided by the symmetric resonator. Nevertheless, using both optical resonators, the TEM00-mode Ce:Nd:YAG solar laser power and beam brightness figure of merit were significantly higher than the numerical values obtained by the previous Nd:YAG solar laser considering the same primary concentrator.
引用
收藏
页数:11
相关论文
共 29 条
[11]  
Lando M., 1997, P 10 M OPT ENG ISR J
[12]   Most efficient simultaneous solar laser emissions from three Ce:Nd:YAG rods within a single pump cavity [J].
Liang, Dawei ;
Vistas, Claudia R. ;
Gracia, Dario ;
Tiburcio, Bruno D. ;
Catela, Miguel ;
Costa, Hugo ;
Guillot, Emmanuel ;
Almeida, Joana .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2022, 246
[13]   Side-pumped continuous-wave Nd:YAG solar laser with 5.4% slope efficiency [J].
Liang, Dawei ;
Vistas, Claudia R. ;
Almeida, Joana ;
Tiburcio, Bruno D. ;
Garcia, Dario .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2019, 192 :147-153
[14]   Solar-pumped Cr:Nd:YAG ceramic laser with 6.7% slope efficiency [J].
Liang, Dawei ;
Vistas, Claudia R. ;
Tiburcio, Bruno D. ;
Almeida, Joana .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2018, 185 :75-79
[15]   Solar-pumped Nd:YAG laser with 31.5 W/m2 multimode and 7.9 W/m2 TEM00-mode collection efficiencies [J].
Liang, Dawei ;
Almeida, Joana ;
Vistas, Claudia R. ;
Guillot, Emmanuel .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2017, 159 :435-439
[16]   High-efficiency solar-pumped TEM00-mode Nd:YAG laser [J].
Liang, Dawei ;
Almeida, Joana ;
Vistas, Claudia R. ;
Oliveira, Mariana ;
Goncalves, Filipe ;
Guillot, Emmanuel .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2016, 145 :397-402
[17]   Solar-Pumped TEM00 Mode Nd:YAG laser [J].
Liang, Dawei ;
Almeida, Joana .
OPTICS EXPRESS, 2013, 21 (21) :25107-25112
[18]   Luminescence sensitization properties of Ce: Nd: YAG materials for solar pumped lasers [J].
Payziyev, Sh ;
Sherniyozov, A. ;
Bakhramov, S. ;
Zikrillayev, Kh ;
Khalikov, G. ;
Makhmudov, Kh ;
Ismailov, M. ;
Payziyeva, D. .
OPTICS COMMUNICATIONS, 2021, 499 (499)
[19]   Near-infrared quantum cutting of Ce3+-Nd3+ co-doped Y3Al5O12 crystal for crystalline silicon solar cells [J].
Tai, Yuping ;
Zheng, Guojun ;
Wang, Hui ;
Bai, Jintao .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY A-CHEMISTRY, 2015, 303 :80-85
[20]   Design of a formation of solar pumped lasers for asteroid deflection [J].
Vasile, Massimiliano ;
Maddock, Christie Alisa .
ADVANCES IN SPACE RESEARCH, 2012, 50 (07) :891-905