• Chinese Optics Letters
  • Vol. 20, Issue 6, 063401 (2022)
Yuqing Xie1, Yue Jing1, Luyue Niu1, Ci Wang1, Lei Zhao2, Jing Ren1、*, and Jianzhong Zhang1、**
Author Affiliations
  • 1Key Laboratory of In-fiber Integrated Optics, Ministry of Education, Harbin Engineering University, Harbin 150001, China
  • 2State Key Laboratory of Particle Detection and Electronics, University of Science and Technology of China, Hefei 230026, China
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    DOI: 10.3788/COL202220.063401 Cite this Article Set citation alerts
    Yuqing Xie, Yue Jing, Luyue Niu, Ci Wang, Lei Zhao, Jing Ren, Jianzhong Zhang. Perovskite-quantum-dots activated silica fiber X-ray dosimeter[J]. Chinese Optics Letters, 2022, 20(6): 063401 Copy Citation Text show less
    References

    [1] L. Lu, M. Sun, Q. Lu, T. Wu, B. Huang. High energy X-ray radiation sensitive scintillating materials for medical imaging, cancer diagnosis and therapy. Nano Energy, 79, 105437(2021).

    [2] M. Sytnyk, S. Deumel, S. F. Tedde, G. J. Matt, W. Heiss. A perspective on the bright future of metal halide perovskites for X-ray detection. Appl. Phys. Lett., 115, 190501(2019).

    [3] K. Li, Y. Gao, H. Zhang, G. Du, H. Huang, H. Xu, T. Xiao. Efficient three-dimensional characterization of C/C composite reinforced with densely distributed fibers via X-ray phase-contrast microtomography. Chin. Opt. Lett., 19, 073401(2021).

    [4] D. Pennicard, B. Pirard, O. Tolbanov, K. Iniewski. Semiconductor materials for X-ray detectors. MRS Bull., 42, 445(2017).

    [5] M. Nikl, A. Yoshikawa. Recent R&D trends in inorganic single-crystal scintillator materials for radiation detection. Adv. Opt. Mater., 3, 463(2015).

    [6] M. Jia, J. Wen, X. Pan, L. Zhang, J. Yuan, Y. Huang, X. Zhang, L. He, F. Pang, T. Wang. Flexible scintillation silica fiber with engineered nanocrystals for remote real-time X-ray detection. ACS Appl. Mater. Interfaces, 14, 1362(2022).

    [7] B. Sun, Y. Xie, Y. Zhao, X. Li, J. Chen, Y. Song, L. Zhao, Z. Li, H. Zhao, J. Ren, J. Zhang. A highly robust Ce3+-doped and Gd3+-mixed KLaF4 nano-glass composite scintillator. J. Mater. Chem. C, 9, 17504(2021).

    [8] H. El Hamzaoui, G. Bouwmans, B. Capoen, A. Cassez, R. Habert, Y. Ouerdane, S. Girard, D. Di francesca, N. Kerboub, A. Morana, D. Söderström, A. Boukenter, M. Bouazaoui. Gd3+-doped sol-gel silica glass for remote ionizing radiation dosimetry. OSA Contin., 2, 715(2019).

    [9] J. M. Fontbonne, G. Iltis, G. Ban, A. Battala, J. C. Vernhes, J. Tillier, N. Bellaize, C. Le Brun, B. Tamain, K. Mercier, J. C. Motin. Scintillating fiber dosimeter for radiation therapy accelerator. IEEE Trans. Nucl. Sci., 49, 2223(2002).

    [10] L. Ding, Q. Wu, Q. Wang, Y. Li, R. M. Perks, L. Zhao. Advances on inorganic scintillator-based optic fiber dosimeters. EJNMMI Phys., 7, 60(2020).

    [11] Z. Qin, Y. Hu, Y. Ma, W. Zhao, W. Sun, D. Zhang, Z. Chen, L. Elfed. Embedded structure fiber-optic radiation dosimeter for radiotherapy applications. Opt. Express, 24, 5172(2016).

    [12] M. D. Belley, O. Craciunescu, Z. Chang, B. W. Langloss, I. N. Stanton, T. T. Yoshizumi, M. J. Therien, J. P. Chino. Real-time dose-rate monitoring with gynecologic brachytherapy: results of an initial clinical trial. Brachytherapy, 17, 1023(2018).

    [13] S. Girard, D. Di Francesca, A. Morana, C. Hoehr, P. Paillet, C. Duzenli, N. Kerboub, I. Reghioua, G. Li Vecchi, A. Alessi, O. Duhamel, M. Trinczek, E. Marin, A. Boukenter, Y. Ouerdane, J. Mekki, R. Garcia Alia, Y. Kadi, M. Brugger. X-Rays, γ-rays, and proton beam monitoring with multimode nitrogen-doped optical fiber. IEEE Trans. Nucl. Sci., 66, 306(2019).

    [14] M. Jia, J. Wen, X. Pan, Z. Xin, F. Pang, L. He, T. Wang. Tapered fiber radiation sensor based on Ce/Tb:YAG crystals for remote γ-ray dosimetry. Opt. Express, 29, 1210(2021).

    [15] S. Kodama, S. Kurosawa, M. Ohno, Y. Morishita, H. Usami, M. Hayashi, M. Sasano, T. Azuma, H. Tanaka, V. Kochurikhin, A. Yamaji, M. Yoshino, S. Toyoda, H. Sato, Y. Ohashi, K. Kamada, Y. Yokota, A. Yoshikawa, T. Torii. Fiber-read radiation monitoring system using an optical fiber and red-emitting scintillator for ultra-high-dose conditions. Appl. Phys. Express, 13, 047002(2020).

    [16] M. A. Suarez, T. Lim, L. Robillot, V. Maillot, T. Lihoreau, P. Bontemps, L. Pazart, T. Grosjean. Miniaturized fiber dosimeter of medical ionizing radiations on a narrow optical fiber. Opt. Express, 27, 35588(2019).

    [17] F. Zhou, Z. Li, W. Lan, Q. Wang, L. Ding, Z. Jin. Halide perovskite, a potential scintillator for X-ray detection. Small Methods, 4, 2000506(2020).

    [18] C. Wang, H. Lin, Z. Zhang, Z. Qiu, H. Yang, Y. Cheng, J. Xu, X. Xiang, L. Zhang, Y. Wang. X-ray excited CsPb(Cl,Br)3 perovskite quantum dots-glass composite with long-lifetime. J. Eur. Ceram. Soc., 40, 2234(2020).

    [19] L. Jiang, X. Luo, Z. Luo, D. Zhou, B. Liu, J. Huang, J. Zhang, X. Zhang, P. Xu, G. Li. Interface and bulk controlled perovskite nanocrystal growth for high brightness light-emitting diodes [Invited]. Chin. Opt. Lett., 19, 030001(2021).

    [20] Q. Chen, J. Wu, X. Ou, B. Huang, J. Almutlaq, A. A. Zhumekenov, X. Guan, S. Han, L. Liang, Z. Yi, J. Li, X. Xie, Y. Wang, Y. Li, D. Fan, D. B. L. Teh, A. H. All, O. F. Mohammed, O. M. Bakr, T. Wu, M. Bettinelli, H. Yang, W. Huang, X. Liu. All-inorganic perovskite nanocrystal scintillators. Nature, 561, 88(2018).

    [21] R. T. Williams, W. W. Wolszczak, X. Yan, D. L. Carroll. Perovskite quantum-dot-in-host for detection of ionizing radiation. ACS Nano, 14, 5161(2020).

    [22] D. Yu, P. Wang, F. Cao, Y. Gu, J. Liu, Z. Han, B. Huang, Y. Zou, X. Xu, H. Zeng. Two-dimensional halide perovskite as β-ray scintillator for nuclear radiation monitoring. Nat. Commun., 11, 3395(2020).

    [23] H. Zhang, Z. Yang, M. Zhou, L. Zhao, T. Jiang, H. Yang, X. Yu, J. Qiu, Y. Yang, X. Xu. Reproducible X-ray imaging with a perovskite nanocrystal scintillator embedded in a transparent amorphous network structure. Adv. Mater., 33, 2102529(2021).

    [24] L. Niu, S. Wang, Z. Sui, Y. Song, L. Zhao, L. Liu, J. Ren, J. Zhang. Highly stable CsPbBr3 perovskite quantum dot-doped tellurite glass nanocomposite scintillator. Opt. Lett., 46, 3448(2021).

    [25] W. Ma, T. Jiang, Z. Yang, H. Zhang, Y. Su, Z. Chen, X. Chen, Y. Ma, W. Zhu, X. Yu, H. Zhu, J. Qiu, X. Liu, X. Xu, Y. Yang. Highly resolved and robust dynamic X-ray imaging using perovskite glass-ceramic scintillator with reduced light scattering. Adv. Sci., 8, 2003728(2021).

    [26] S. Cheng, A. Beitlerova, R. Kucerkova, E. Mihokova, M. Nikl, Z. Zhou, G. Ren, Y. Wu. Non-hygroscopic, self-absorption free, and efficient 1D CsCu2I3 perovskite single crystal for radiation detection. ACS Appl. Mater. Interfaces, 13, 12198(2021).

    [27] L. Lian, M. Zheng, W. Zhang, L. Yin, X. Du, P. Zhang, X. Zhang, J. Gao, D. Zhang, L. Gao, G. Niu, H. Song, R. Chen, X. Lan, J. Tang, J. Zhang. Efficient and reabsorption-free radioluminescence in Cs3Cu2I5 nanocrystals with self-trapped excitons. Adv. Sci., 7, 2000195(2020).

    [28] M. Iwao, H. Takase, D. Shiratori, D. Nakauchi, T. Kato, N. Kawaguchi, T. Yanagida. Ag-doped phosphate glass with high weathering resistance for RPL dosimeter. Radiat. Meas., 140, 106492(2021).

    Data from CrossRef

    [1] Zexuan Sui, Yan Sun, Yue Jing, Ci Wang, Yao Zhu, Sen Qian, Jing Ren, Jianzhong Zhang. Robust CsPbBr3 and Zn-Cd-S quantum dots co-doped nano-glass composites with broadly tunable emissions. Journal of the European Ceramic Society(2022).

    Yuqing Xie, Yue Jing, Luyue Niu, Ci Wang, Lei Zhao, Jing Ren, Jianzhong Zhang. Perovskite-quantum-dots activated silica fiber X-ray dosimeter[J]. Chinese Optics Letters, 2022, 20(6): 063401
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