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Chin. Phys. B, 2024, Vol. 33(12): 126102    DOI: 10.1088/1674-1056/ad84ca
CONDENSED MATTER: STRUCTURAL, MECHANICAL, AND THERMAL PROPERTIES Prev   Next  

Upconversion photoluminescence of Er-doped Bi4Ti3O12 ceramics enhanced by vacancy clusters revealed by positron annihilation spectroscopy

Huiru Cheng(程慧茹), Yuhuan Li(李钰环), Ziwen Pan(潘子文), Jiandang Liu(刘建党)†, and Bangjiao Ye(叶邦角)‡
State Key Laboratory of Particle Detection and Electronics, University of Science and Technology of China, Hefei 230026, China
Abstract  Doping of rare earth elements into Bi$_{4}$Ti$_{3}$O$_{12}$ can significantly enhance the upconversion photoluminescence (UCPL) properties, but its structure-property relationship is still unclear. In this work, Er-doped bismuth titanate Bi$_{4-x}$Er$_{x}$Ti$_{3}$O$_{12}$ ($x=0$, 0.1, 0.2, 0.3, 0.4, 0.5) ceramics were synthesized via solid-state reaction method. The x-ray diffraction analysis confirmed the orthorhombic crystalline structure of the Bi$_{4-x}$Er$_{x}$Ti$_{3}$O$_{12}$ ceramics without any secondary phases. Experiments and calculations of positron annihilation spectroscopy were carried out to characterize their defect structure. The comparison between the experimental and calculated lifetime revealed that vacancy clusters were the main defects in the ceramics. The increase of the intensity of the second positron lifetime component ($I_{2}$) of Bi$_{3.5}$Er$_{0.5}$Ti$_{3}$O$_{12}$ ceramics indicated the presence of a high concentration of vacancy clusters. The UCPL spectra showed the sudden enhanced UCPL performance in Bi$_{3.7}$Er$_{0.3}$Ti$_{3}$O$_{12}$ and Bi$_{3.5}$Er$_{0.5}$Ti$_{3}$O$_{12}$ ceramics, which were consistent with the variation of the second positron lifetime component ($I_{2}$). These results indicate that the enhanced UCPL properties are influenced not only by the concentrations of rare earth ions but also by the concentration of vacancy clusters present within the ceramics.
Keywords:  bismuth layered structure      positron annihilation lifetime spectroscopy      upconversion photoluminescence      vacancy clusters  
Received:  26 July 2024      Revised:  11 September 2024      Accepted manuscript online:  09 October 2024
PACS:  61.72.jd (Vacancies)  
  78.70.Bj (Positron annihilation)  
  78.40.-q (Absorption and reflection spectra: visible and ultraviolet)  
Fund: Project supported by the National Key Research and Development Program of China (Grant No. 2019YFA0210000) and the National Natural Science Foundation of China (Grant No. 12175232).
Corresponding Authors:  Jiandang Liu, Bangjiao Ye     E-mail:  liujd@ustc.edu.cn;bjye@ustc.edu.cn

Cite this article: 

Huiru Cheng(程慧茹), Yuhuan Li(李钰环), Ziwen Pan(潘子文), Jiandang Liu(刘建党), and Bangjiao Ye(叶邦角) Upconversion photoluminescence of Er-doped Bi4Ti3O12 ceramics enhanced by vacancy clusters revealed by positron annihilation spectroscopy 2024 Chin. Phys. B 33 126102

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