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具有良好光转换能力的高透明铈钕钇铝石榴石(Ce:Nd:YAG)陶瓷,用于太阳能泵浦固态激光器。

Highly transparent Ce:Nd:YAG ceramic with good light conversion capacity for solar-pumped solid-state lasers.

作者信息

Zheng Xinyu, Xie Hui, Zhou Tianyuan, Li Yanbin, Li Jianqiang, Wang Siqing, Zhou Zihan, Xu Lele, Zhou Yuhuan, Chen Hao, Strek Wieslaw, Zhang Jing, Zhang Le

出版信息

Opt Express. 2024 May 6;32(10):18352-18365. doi: 10.1364/OE.518804.

Abstract

Developing a high quality ceramic laser gain medium for solar directly pumped solid state lasers is essential, and yet the light conversion efficiency of the gain media for solar pumping remains a challenge. In this study, Ce and Nd ions, co-doped YAG transparent ceramics with theoretical transmittance and stable Ce valent state were developed, and revealed that the absorbed visible light and light conversion efficiency in Ce,Nd:YAG ceramics were 3.98 times and 1.34 times higher than those in widely reported Cr,Nd:YAG ceramics, respectively. A concentration matching principle between Ce and Nd ions in YAG was established, and a higher Nd ion doping concentration with a relatively low Ce concentration was favorable to improve both the light conversion efficiency and emission intensity at 1064 nm of Ce,Nd:YAG ceramics. Energy transfer efficiency from Ce to Nd of the 0.3 at.%Ce,1.5at.%Nd:YAG ceramic reached as high as 61.71% at room temperature. Surprisingly, it was further promoted to 64.31% at a higher temperature of 473 K. More excited electrons at the upper energy level of Ce ion under the high temperature accounted for this novel phenomenon. This study proposes a new design strategy of gain materials for solar directly pumped solid state lasers.

摘要

开发用于太阳能直接泵浦固态激光器的高质量陶瓷激光增益介质至关重要,然而,用于太阳能泵浦的增益介质的光转换效率仍然是一个挑战。在本研究中,开发了具有理论透过率和稳定铈价态的铈和钕离子共掺杂YAG透明陶瓷,结果表明,Ce,Nd:YAG陶瓷中的可见光吸收和光转换效率分别比广泛报道的Cr,Nd:YAG陶瓷高3.98倍和1.34倍。建立了YAG中铈和钕离子的浓度匹配原则,较高的钕离子掺杂浓度和相对较低的铈浓度有利于提高Ce,Nd:YAG陶瓷在1064 nm处的光转换效率和发射强度。0.3 at.%Ce,1.5at.%Nd:YAG陶瓷中从铈到钕的能量转移效率在室温下高达61.71%。令人惊讶的是,在473 K的较高温度下,它进一步提高到64.31%。高温下铈离子高能级上更多的激发电子解释了这一新颖现象。本研究提出了一种用于太阳能直接泵浦固态激光器的增益材料的新设计策略。

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