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首页> 外文期刊>Journal of materials science >Cubic Ba_2LaF_7:Yb~(3+)/Ln(Ln = Er~(3+),Ho~(3+)) up-conversion submicron particles controllable synthesis and luminescence properties
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Cubic Ba_2LaF_7:Yb~(3+)/Ln(Ln = Er~(3+),Ho~(3+)) up-conversion submicron particles controllable synthesis and luminescence properties

机译:立方BA_2LAF_7:YB〜(3 +)/ LN(LN = ER〜(3 +),HO〜(3+))上转换亚微米粒子可控合成和发光性能

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摘要

In this paper, a co-doped cubic phase submicron particles Ba_2LaF_7:Yb~(3+)/Ln~(3+) (Ln = Er~(3+),Ho~(3+)) up-conversion material were successfully synthesized by hydrothermal method. By adjusting PH, time, temperature, and the amount of sodium citrate during the preparation process, it was possible to analyze and obtain the phase structure, morphology, and up-conversion luminescence characteristics of the particles. Furthermore, the influence of doping concentration on the up-conversion luminescence characteristics was studied using X-ray diffractometer (XRD), scanning electron microscopy (SEM), fluorescence spectroscopy, and other characterization methods. The test results show that, under the conditions of pH = 9 and NaBF_4 as the fluorine source, Ba_2LaF_7:Yb~(3+)/ Ln~(3+) (Ln = Er~(3+),Ho~(3+)) spherical particles have an average size of 240 nm. Under the excitation of a 980 nm laser-diode (LD) laser, it was found that the material spectrum is mainly composed of strong green and weak red light. When Yb~(3+) and Er~(3+) doping concentrations are 18% and 2.5%, Yb~(3+) and Ho~(3+) doping concentrations are 18% and 3.5%, respectively, the up-conversion transmittance is the highest. Finally, the possible causes of the fluorescence decay curve of Ba_2LaF_7:Yb~(3+)/Ln~(3+) (Ln = Er~(3+),Ho~(3+)) up-conversion materials were investigated.
机译:在本文中,共掺杂的立方相亚微米粒子Ba_2Laf_7:Yb〜(3 +)/ Ln〜(3+)(Ln = ER〜(3 +),HO〜(3+))上转换材料成功通过水热法合成。通过调节制备过程中的pH,时间,温度和柠檬酸钠的量,可以分析和获得颗粒的相结构,形态和上转化发光特性。此外,使用X射线衍射仪(XRD),扫描电子显微镜(SEM),荧光光谱和其他表征方法研究了掺杂浓度对上转化发光特性的影响。测试结果表明,在pH = 9和NaBF_4的条件下,作为氟源,Ba_2laf_7:Yb〜(3 +)/ ln〜(3+)(Ln = ER〜(3 +),HO〜(3+ ))球形颗粒的平均尺寸为240nm。在980nm激光二极管(LD)激光器的激发下,发现材料谱主要由强绿色和弱红光组成。当Yb〜(3+)和ER〜(3+)掺杂浓度为18%和2.5%时,Yb〜(3+)和HO〜(3+)掺杂浓度分别为18%和3.5%,升级 - 转换透射率最高。最后,研究了Ba_2Laf_7:Yb〜(3 +)/ Ln〜(3+)(Ln = ER〜(3 +),HO〜(3+))上转化材料的可能原因。

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  • 来源
    《Journal of materials science》 |2021年第20期|24856-24870|共15页
  • 作者单位

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China;

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China;

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China;

    Jilin Provincial Science and Technology Innovation Center of Optical Materials and Chemistry Changchun 130022 China;

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China;

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China;

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China;

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China Jilin Provincial Science and Technology Innovation Center of Optical Materials and Chemistry Changchun 130022 China;

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China Jilin Provincial Science and Technology Innovation Center of Optical Materials and Chemistry Changchun 130022 China;

    School of Materials Science and Engineering Jilin Jianzhu University Changchun 130118 Jilin China;

    School of Materials Science and Engineering Jilin Jianzhu University Changchun 130118 Jilin China;

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China Jilin Provincial Science and Technology Innovation Center of Optical Materials and Chemistry Changchun 130022 China;

    State Key Laboratory of Inorganic Synthesis and Preparative Chemistry College of Chemistry Jilin University Changchun 130012 People's Republic of China;

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China Jilin Provincial Science and Technology Innovation Center of Optical Materials and Chemistry Changchun 130022 China;

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China Jilin Provincial Science and Technology Innovation Center of Optical Materials and Chemistry Changchun 130022 China;

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China Jilin Provincial Science and Technology Innovation Center of Optical Materials and Chemistry Changchun 130022 China;

    School of Materials Science and Engineering Changchun University of Science and Technology Changchun 130022 China Jilin Provincial Science and Technology Innovation Center of Optical Materials and Chemistry Changchun 130022 China;

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  • 正文语种 eng
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