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通过共掺杂B和Na离子对用于植物生长LED的SrAlO:Mn荧光粉进行强烈增强发光并产生红色发射。

Strongly enhanced luminescence of SrAlO:Mn phosphor by co-doping B and Na ions with red emission for plant growth LEDs.

作者信息

Long Jiaqi, Yuan Xuanyi, Ma Chaoyang, Du Miaomiao, Ma Xiaoli, Wen Zicheng, Ma Ran, Wang Yuzhen, Cao Yongge

机构信息

Beijing Key Laboratory of Opto-electronic Functional Materials & Micro-nano Devices, Department of Physics, Renmin University of China Beijing 100872 China

出版信息

RSC Adv. 2018 Jan 4;8(3):1469-1476. doi: 10.1039/c7ra11967d. eCollection 2018 Jan 2.

Abstract

Development of a more cost-effective radiation source for use in plant-growing facilities would be of significant benefit for commercial crop production applications. A series of co-doped B and Na ions SrAlO:Mn inorganic luminescence materials which can be used for plant growth were successfully synthesized through a conventional high-temperature solid-state reaction. Powder X-ray diffraction was used to confirm the crystal structure and phase purity of the obtained samples. Then scanning electron microscopy elemental mapping was undertaken to characterize the distribution of the doped ions. Detail investigations on the photoluminescence emission and excitation spectra revealed that emission intensity of tetravalent manganese ions can be well enhanced by monovalent sodium ions and trivalent boron ions under near-ultraviolet and blue excitation. Additionally, crystal field parameters and energies of states are calculated and discussed in detail. Particularly we achieve a photoluminescence internal quantum yield as high as 60.8% under 450 nm blue light excitation for SrAlO:Mn, Na, B. Therefore, satisfactory luminescence properties make these phosphors available to LEDs for plant growth.

摘要

开发一种更具成本效益的用于植物种植设施的辐射源,对于商业作物生产应用将具有显著益处。通过传统的高温固态反应,成功合成了一系列可用于植物生长的共掺杂B和Na离子的SrAlO:Mn无机发光材料。利用粉末X射线衍射确认所得样品的晶体结构和相纯度。然后进行扫描电子显微镜元素映射,以表征掺杂离子的分布。对光致发光发射光谱和激发光谱的详细研究表明,在近紫外和蓝光激发下,一价钠离子和三价硼离子可以很好地增强四价锰离子的发射强度。此外,还详细计算和讨论了晶体场参数和态能量。特别是,对于SrAlO:Mn, Na, B,在450 nm蓝光激发下,我们实现了高达60.8%的光致发光内量子产率。因此,令人满意的发光性能使这些磷光体可用于植物生长LED。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6823/9077104/2a9f5a4b818e/c7ra11967d-f1.jpg

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