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用于激光驱动显示的超窄带绿色发光透明复合陶瓷

Ultra-Narrowband Green-Emitting Transparent Composite Ceramics for Laser-Driven Display.

作者信息

Hu Dahai, Lin Shisheng, Pang Tao, Zeng Lingwei, Xi Guoyu, You Fengluan, Wu TianShuo, Li Xiaoshuang, Wang Bo, Lei Lei, Huang Feng, Chen Daqin

机构信息

College of Physics and Energy, Fujian Normal University, Fuzhou, Fujian, 350117, P. R. China.

Huzhou Key Laboratory of Materials for Energy Conversion and Storage, College of Science, Huzhou University, Huzhou, Zhejiang, 313000, P. R. China.

出版信息

Adv Mater. 2025 Feb;37(7):e2414957. doi: 10.1002/adma.202414957. Epub 2024 Dec 19.

Abstract

Laser-driven projection displays face a critical challenge in developing laser-excitable and high-performance narrowband green emitters. Herein, new AlO-LaMgAlO: Mn (AlO-LMA: Mn) transparent composite ceramics are reported via high-temperature vacuum sintering, which produces a high-color-purity (95.4%) green emission with full width at half maximum of 24 nm and superior thermal and moisture and laser irradiation stability. These are attributed to low electron-phonon couple, weak crystal-field effect, an individual lattice location of Mn activators in high structural rigid host, and the incorporation of a high-thermal-conductivity AlO secondary phase. As a result, the composite ceramics are demonstrated as an attractive color converter with a high external quantum efficiency (38%) and absorption coefficient (53%), which ensures a luminous flux of 2012 lm @40.0 W, a luminous efficacy of 67.7 lm W, and a green light conversion efficiency of 20.3% upon blue laser irradiation. This enables to construct a brand-new laser-driven prototype display with a record color gamut beyond Rec.2020 standard (100.8%), outperforming commercial YAG: Ce and β-SiAlON: Eu. This exploration in ultra-narrowband green luminescent materials is poised to accelerate the development of "ideal displays" for laser-driven projection display technology.

摘要

激光驱动的投影显示器在开发可被激光激发的高性能窄带绿色发光体方面面临着严峻挑战。在此,通过高温真空烧结制备了新型AlO-LaMgAlO:Mn(AlO-LMA:Mn)透明复合陶瓷,其产生了高色纯度(95.4%)的绿色发射,半高宽为24nm,并且具有优异的热稳定性、防潮性和激光辐照稳定性。这些归因于低的电子-声子耦合、弱的晶体场效应、Mn激活剂在高结构刚性基质中的单个晶格位置以及高热导率AlO第二相的掺入。结果表明,该复合陶瓷是一种具有高外量子效率(38%)和吸收系数(53%)的有吸引力的颜色转换器,在蓝光激光照射下,其确保了2012lm@40.0W的光通量、67.7lmW的发光效率和20.3%的绿光转换效率。这使得能够构建一个全新的激光驱动原型显示器,其色域超过Rec.2020标准(100.8%),性能优于商用YAG:Ce和β-SiAlON:Eu。这种对超窄带绿色发光材料的探索有望加速激光驱动投影显示技术中“理想显示器”的发展。

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