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首页> 外文期刊>Journal of the European Ceramic Society >Photoluminescence, thermoluminescence and reversible photoluminescence modulation of multifunctional optical materials Pr3+ doped KxNa1-xNbO3 ferroelectric ceramics
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Photoluminescence, thermoluminescence and reversible photoluminescence modulation of multifunctional optical materials Pr3+ doped KxNa1-xNbO3 ferroelectric ceramics

机译:多功能光学材料的光致发光,热致发光和可逆光致发光调制PR3 +掺杂KXNA1-XNBO3铁电陶瓷

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摘要

It is highly significant to develop multifunctional optical materials to meet the huge demand of modern optics. Usually, it is difficult to realize multiple optical properties in one single material. In this study, we choose ferroelectric (KxNa1-x)NbO3:Pr3+ (x = 0, 0.1, 0.2, 0.3, 0.4, 0.5) as hosts, and the rare earth ions Pr3+ are doped in them. For the first time, the integration of photoluminescence, photochromism, luminescence modulation and thermoluminescence and has been achieved in the Pr3+ doped (KxNa1-x)NbO3:Pr3+ ferroelectric ceramics. Upon 337- or 448-nm light irradiation, all samples show strong red emissions centered at 610 nm. The photochromic reaction increases with the increasing K+ content in the (KxNa1-x)NbO3:Pr(3+)ceramics. A strong photochromic reaction has been found in the (KxNa1-x)NbO3:Pr3+ ceramics. Accordingly, a large and reversible photoluminescence modulation (Delta R-t = 50.71%) is achieved via altering 395-nm-light irradiation and 200 degrees C thermal stimulus. All the prepared ceramics show a visible thermoluminescence when stimulated at 200 degrees C. The mechanisms of luminescence modulation and thermoluminescence are discussed. Present study could provide a feasible paradigm to realize multiple optical properties in one single material.
机译:开发多功能光学材料是非常重要的,以满足现代光学的巨大需求。通常,难以在一个单一材料中实现多个光学性质。在这项研究中,我们选择铁电(KXNA1-X)NBO3:PR3 +(x = 0,0.1,0.2,0.3,0.4,0.5)作为宿主,并且稀土离子PR3 +掺杂它们。首次,光致发光,光致发光,发光调节和热致发光的整合,并在PR3 +掺杂(KXNA1-X)NBO3:PR3 +铁电陶瓷中实现。在337-148纳米光照射时,所有样品都显示出以610nm为中心的强烈的红色排放。光致变色反应随着(KXNA1-X)NBO3:PR(3+)陶瓷中的增加K +含量增加。在(KXNA1-X)NBO3:PR3 +陶瓷中发现了强烈的光致变色反应。因此,通过改变395-nm光照射和200摄氏度的热刺激来实现大型和可逆的光致发光调制(Delta R-T = 50.71%)。所有制备的陶瓷在200摄氏度刺激时显示出可见的热致发光。讨论了发光调节和热致发光的机制。目前的研究可以提供一种可行的范例来实现一种单一材料中的多种光学性质。

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