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首页> 外文期刊>Frontiers of optoelectronics in China >Photonic properties of novel Yb~(3+) doped germanium-lead oxyfluoride glass-ceramics for laser cooling applications
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Photonic properties of novel Yb~(3+) doped germanium-lead oxyfluoride glass-ceramics for laser cooling applications

机译:新型Yb〜(3+)掺杂锗铅氟氧化物玻璃陶瓷的激光冷却性能

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摘要

In recent years, our research group has developed and studied new rare-earth doped materials for the promising technology of solid-state laser cooling, which is based on anti-stokes fluorescence. To the best of our knowledge, our group is the only one in Canada leading the research into the properties of nanoparticles, glasses and glass-ceramics for optical refrigeration applications. In the present work, optical properties of 50GeO~(2)-30PbF~(2)-18PbO-2YbF~(3)glass-ceramics for laser cooling are presented and discussed as a function of crystallization temperature. Spectroscopic results show that samples have near infrared photoluminescence emission due to the_(2) F ~(5/2)–_(2) F ~(7/2)Yb_(3+)transition, centered at ~1016 nm with an excitation wavelength of 920 nm or 1011 nm, and the highest photoluminescence emission efficiency occurs for heat-treatment for 5 h at 350°C. The internal photoluminescence quantum yield varies between 99% and 80%, depending on the temperature of heat-treatment, being the most efficient under 1011 nm excitation. The_(2) F ~(5/2)lifetime increases from 1.472 to 1.970 ms for heat treatments at 330°C to 350°C, respectively, due to energy trapping and the low phonon energy of the nanocrystals. The sample temperature dependence was measured with a fiber Bragg grating sensor, as a function of input pump laser wavelength and processing temperature. These measurements show that the heating process approaches near zero for an excitation wavelength between 1020 and 1030 nm, which is an indication that phonons are removed effectivelly from the glass-ceramic materials, and they can be used for optical laser cooling applications. On the other hand, the temperature increase as a function of input laser power into samples remains constant between 920 and 980 nm wavelength excitation, a temperature variation of 36 K/W (temperature of 58°C/W) was attained under excitation at 950 nm, showing a possible use for biomedical applications to be explored.1).
机译:近年来,我们的研究小组已经开发并研究了新的稀土掺杂材料,以用于基于抗焦荧光的固态激光冷却技术。据我们所知,我们小组是加拿大唯一负责光学制冷应用的纳米颗粒,玻璃和玻璃陶瓷性能研究的小组。在本工作中,提出并讨论了50GeO〜(2)-30PbF〜(2)-18PbO-2YbF〜(3)玻璃陶瓷用于激光冷却的光学性能,并讨论了其与结晶温度的关系。光谱结果表明,由于_(2)F〜(5/2)–_(2)F〜(7/2)Yb_(3+)跃迁,样品具有近红外光致发光,激发中心在〜1016 nm波长为920 nm或1011 nm,并且在350°C热处理5 h时出现最高的光致发光效率。内部光致发光量子产率在99%到80%之间变化,具体取决于热处理温度,在1011 nm激发下效率最高。由于纳米晶体的能量俘获和低声子能量,(2)F〜(5/2)寿命分别在330°C至350°C的热处理时间从1.472毫秒增加到1.970毫秒。用光纤布拉格光栅传感器测量样品温度依赖性,作为输入泵浦激光器波长和处理温度的函数。这些测量结果表明,对于1020至1030 nm之间的激发波长,加热过程接近于零,这表明声子已从玻璃陶瓷材料中有效去除,它们可用于光学激光冷却应用。另一方面,温度升高作为样品中输入激光功率的函数,在920至980 nm波长激发之间保持恒定,在950激发下获得36 K / W(58°C / W温度)的温度变化。纳米,表明有待探索的生物医学应用的可能。1)。

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