High-repetition-rate and high-power efficient picosecond thin-disk regenerative amplifier

被引:0
|
作者
Sizhi Xu [1 ]
Yubo Gao [1 ]
Xing Liu [1 ]
Yewang Chen [1 ]
Deqin Ouyang [1 ]
Junqing Zhao [1 ]
Minqiu Liu [1 ]
Xu Wu [1 ]
Chunyu Guo [2 ]
Cangtao Zhou [3 ]
Qitao Lue [4 ]
Shuangchen Ruan [1 ]
机构
[1] Key Laboratory of Advanced Optical Precision Manufacturing Technology of Guangdong Higher Education Institutes, Sino-German College of Intelligent Manufacturing, Shenzhen Technology University
[2] Shenzhen Key Laboratory of Laser Engineering, College of Physics and Optoelectronic Engineering, Shenzhen University
[3] Shenzhen Key Laboratory of Ultraintense Laser and Advanced Material Technology, College of Engineering Physics, Shenzhen Technology University
[4] Han's Laser Technology Industry Group Co,
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中图分类号
TN248 [激光器]; TN722 [放大器];
学科分类号
摘要
We present an effective approach to realize a highly efficient, high-power and chirped pulse amplification-free ultrafast ytterbium-doped yttrium aluminum garnet thin-disk regenerative amplifier pumped by a zero-phonon line 969 nm laser diode. The amplifier delivers an output power exceeding 154 W at a pulse repetition rate of 1 MHz with custom-designed 48 pump passes. The exceptional thermal management on the thin disk through high-quality bonding, efficient heat dissipation and a fully locked spectrum collectively contributes to achieving a remarkable optical-to-optical efficiency of 61% and a near-diffraction-limit beam quality with an M2 factor of 1.06. To the best of our knowledge, this represents the highest conversion efficiency reported in ultrafast thin-disk regenerative amplifiers. Furthermore, the amplifier operates at room temperature and exhibits exceptional stability, with root mean square stability of less than 0.33%. This study significantly represents advances in the field of laser amplification systems, particularly in terms of efficiency and average power. This advantageous combination of high efficiency and diffraction limitation positions the thin-disk regenerative amplifier as a promising solution for a wide range of scientific and industrial applications.
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页码:20 / 27
页数:8
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