• Photonics Research
  • Vol. 9, Issue 11, 2182 (2021)
Shunfa Gong1, Ruirui Wu1, Sen Yang1, Lifang Wu1, Minmin Zhang1, Qiuju Han2, and Wenzhi Wu1、*
Author Affiliations
  • 1School of Electronic Engineering, Heilongjiang University, Harbin 150080, China
  • 2College of Arts and Sciences, Northeast Agricultural University, Harbin 150030, China
  • show less
    DOI: 10.1364/PRJ.431672 Cite this Article Set citation alerts
    Shunfa Gong, Ruirui Wu, Sen Yang, Lifang Wu, Minmin Zhang, Qiuju Han, Wenzhi Wu. Tuning the luminous properties and optical thermometry of Cs2SnCl6 phosphor microcrystals via Bi and Sb codoping[J]. Photonics Research, 2021, 9(11): 2182 Copy Citation Text show less
    References

    [1] C. Bi, Z. Yao, X. Sun, X. Wei, J. Wang, J. Tian. Perovskite quantum dots with ultralow trap density by acid etching-driven ligand exchange for high luminance and stable pure-blue light-emitting diodes. Adv. Mater., 33, 2006722(2021).

    [2] T. Li, Q. Li, X. Tang, Z. Chen, Y. Li, H. Zhao, S. Wang, X. Ding, Y. Zhang, J. Yao. Environment-friendly antisolvent tert-amyl alcohol modified hybrid perovskite photodetector with high responsivity. Photon. Res., 9, 781-791(2021).

    [3] M. Du, X. Zhu, L. Wang, H. Wang, J. Feng, X. Jiang, Y. Cao, Y. Sun, L. Duan, Y. Jiao, K. Wang, X. Ren, Z. Yan, S. Pang, S. Liu. High-pressure nitrogen-extraction and effective passivation to attain highest large-area perovskite solar module efficiency. Adv. Mater., 32, 2004979(2020).

    [4] Y. Zhao, F. Ma, F. Gao, Z. Yin, X. Zhang, J. You. Research progress in large-area perovskite solar cells. Photon. Res., 8, A1-A15(2020).

    [5] Z. Wu, J. Chen, Y. Mi, X. Sui, S. Zhang, W. Du, R. Wang, J. Shi, X. Wu, X. Qiu, Z. Qin, Q. Zhang, X. Liu. All-inorganic CsPbBr3 nanowire based plasmonic lasers. Adv. Opt. Mater., 6, 1800674(2018).

    [6] S. Hussain, A. Raza, F. Saeed, A. Perveen, Y. Sikhai, N. Din, E. E. Elemike, Q. Huang, A. Subramanian, Q. Khan, W. Lei. Stable and high performance all-inorganic perovskite light-emitting diodes with anti-solvent treatment. Chin. Opt. Lett., 19, 030005(2021).

    [7] Z. Chu, Q. Ye, Y. Zhao, F. Ma, Z. Yin, X. Zhang, J. You. Perovskite light-emitting diodes with external quantum efficiency exceeding 22% via small-molecule passivation. Adv. Mater., 33, 2007169(2021).

    [8] T. C. Jellicoe, J. M. Richter, H. F. J. Glass, M. Tabachnyk, R. Brady, S. E. Dutton, A. Rao, R. H. Friend, D. Credgington, N. C. Greenham, M. L. Boehm. Synthesis and optical properties of lead-free cesium tin halide perovskite nanocrystals. J. Am. Chem. Soc., 138, 2941-2944(2016).

    [9] P.-P. Sun, Q.-S. Li, L.-N. Yang, Z.-S. Li. Theoretical insights into a potential lead-free hybrid perovskite: substituting Pb2+ with Ge2+. Nanoscale, 8, 1503-1512(2016).

    [10] L. Chu, W. Ahmad, W. Liu, J. Yang, R. Zhang, Y. Sun, J. Yang, X. A. Li. Lead-free halide double perovskite materials: a new superstar toward green and stable optoelectronic applications. Nano-Micro Lett., 11, 16-34(2019).

    [11] M.-M. Yao, L. Wang, J.-S. Yao, K.-H. Wang, C. Chen, B.-S. Zhu, J.-N. Yang, J.-J. Wang, W.-P. Xu, Q. Zhang, H.-B. Yao. Improving lead-free double perovskite Cs2NaBiCl6 nanocrystal optical properties via ion doping. Adv. Opt. Mater., 8, 1901919(2020).

    [12] Z. Tan, J. Li, C. Zhang, Z. Li, Q. Hu, Z. Xiao, T. Kamiya, H. Hosono, G. Niu, E. Lifshitz, Y. Cheng, J. Tang. Highly efficient blue-emitting bi-doped Cs2SnCl6 perovskite variant: photoluminescence induced by impurity doping. Adv. Funct. Mater., 28, 1801131(2018).

    [13] J. Li, Z. Tan, M. Hu, C. Chen, J. Luo, S. Li, L. Gao, Z. Xiao, G. Niu, J. Tang. Antimony doped Cs2SnCl6 with bright and stable emission. Front. Optoelectron., 12, 352-364(2019).

    [14] Y. Lin, L. Zhao, B. Jiang, J. Mao, F. Chi, P. Wang, C. Xie, X. Wei, Y. Chen, M. Yin. Temperature-dependent luminescence of BaLaMgNbO6: Mn4+, Dy3+ phosphor for dual-mode optical thermometry. Opt. Mater., 95, 109199(2019).

    [15] M. D. Dramićanin, B. Milićević, V. Đorđević, Z. Ristić, J. Zhou, D. Milivojević, J. Papan, M. G. Brik, C. G. Ma, A. M. Srivastava, M. Wu. Li2TiO3:Mn4+ deep-red phosphor for the lifetime-based luminescence thermometry. ChemistrySelect, 4, 7067-7075(2019).

    [16] S. Yang, S. Huang, Q. Wang, R. Wu, Q. Han, W. Wu. Temperature-dependent photoluminescence of Cs2AgxNa1-xInCl6 microcrystals. Opt. Mater., 98, 109444(2019).

    [17] J. Luo, X. Wang, S. Li, J. Liu, Y. Guo, G. Niu, L. Yao, Y. Fu, L. Gao, Q. Dong, C. Zhao, M. Leng, F. Ma, W. Liang, L. Wang, S. Jin, J. Han, L. Zhang, J. Etheridge, J. Wang, Y. Yan, E. H. Sargent, J. Tang. Efficient and stable emission of warm-white light from lead-free halide double perovskites. Nature, 563, 541-545(2018).

    [18] A. Yan, K. Li, Y. Zhou, Y. Ye, X. Zhao, C. Liu. Tuning the optical properties of Cs2SnCl6:Bi and Cs2SnCl6:Sb lead-free perovskites via post-annealing for white LEDs. J. Alloys Compd., 822, 153528(2020).

    [19] R. Zeng, K. Bai, Q. Wei, T. Chang, J. Yan, B. Ke, J. Huang, L. Wang, W. Zhou, S. Cao, J. Zhao, B. Zou. Boosting triplet self-trapped exciton emission in Te(IV)-doped Cs2SnCl6 perovskite variants. Nano Res., 14, 1551-1558(2020).

    [20] A. E. Maughan, A. M. Ganose, M. M. Bordelon, E. M. Miller, D. O. Scanlon, J. R. Neilson. Defect tolerance to intolerance in the vacancy-ordered double perovskite semiconductors Cs2SnI6 and Cs2TeI6. J. Am. Chem. Soc., 138, 8453-8464(2016).

    [21] A. Kaltzoglou, M. Antoniadou, A. G. Kontos, C. C. Stoumpos, D. Perganti, E. Siranidi, V. Raptis, K. Trohidou, V. Psycharis, M. G. Kanatzidis, P. Falaras. Optical-vibrational properties of the Cs2SnX6 (X = Cl, Br, I) defect perovskites and hole-transport efficiency in dye-sensitized solar cells. J. Phys. Chem. C, 120, 11777-11785(2016).

    [22] X. Liu, X. Xu, B. Li, L. Yang, Q. Li, H. Jiang, D. Xu. Tunable dual‐emission in monodispersed Sb3+/Mn2+ codoped Cs2NaInCl6 perovskite nanocrystals through an energy transfer process. Small, 16, 2002547(2020).

    [23] B. Vargas, E. Coutiño-Gonzalez, O. Ovalle-Encinia, C. Sánchez-Aké, D. Solis-Ibarra. Efficient emission in halide layered double perovskites: the role of Sb3+ substitution in Cs4Cd1–xMnxBi2Cl12 phosphors. J. Phys. Chem. Lett., 11, 10362-10367(2020).

    [24] V. Morad, Y. Shynkarenko, S. Yakunin, A. Brumberg, R. D. Schaller, M. V. Kovalenko. Disphenoidal zero-dimensional lead, tin, and germanium halides: highly emissive singlet and triplet self-trapped excitons and x-ray scintillation. J. Am. Chem. Soc., 141, 9764-9768(2019).

    [25] Y. Jing, Y. Liu, M. Li, Z. Xia. Photoluminescence of singlet/triplet self-trapped excitons in Sb3+-based metal halides. Adv. Opt. Mater., 9, 2002213(2021).

    [26] R. Wu, Q. Wang, S. Yang, L. Wu, S. Gong, Q. Han, W. Wu. Enhanced thermal stability of exciton recombination in CsPbI3 perovskite nanocrystals via zinc alloying. J. Alloys Compd., 857, 157574(2021).

    [27] Y. Jing, Y. Liu, J. Zhao, Z. Xia. Sb3+ doping-induced triplet self-trapped excitons emission in lead-free Cs2SnCl6 nanocrystals. J. Phys. Chem. Lett., 10, 7439-7444(2019).

    [28] W. Wu, W. Liu, Q. Wang, Q. Han, Q. Yang. Temperature-dependent photoluminescence of pure and Mn-doped CsPbCl3 nanocrystals. J. Alloys Compd., 787, 165-172(2019).

    [29] Q. Wang, W. Wu. Temperature and excitation wavelength-dependent photoluminescence of CH3NH3PbBr3 crystal. Opt. Lett., 43, 4923-4926(2018).

    [30] Q. Zhang, C. Diederichs, Q. Xiong. Golden hour for perovskite photonics. Photon. Res., 8, PP1-PP4(2020).

    [31] X. Cheng, Z. Zang, K. Yuan, T. Wang, K. Watanabe, T. Taniguchi, L. Dai, Y. Ye. A hybrid structure light-emitting device based on a CsPbBr3 nanoplate and two-dimensional materials. Appl. Phys. Lett., 116, 263103(2020).

    [32] Q. Wang, W. Wu, R. Wu, S. Yang, Y. Wang, J. Wang, Z. Chai, Q. Han. Improved thermal stability of photoluminescence in Cs4PbBr6 microcrystals/CsPbBr3 nanocrystals. J. Colloid Interface Sci., 554, 133-141(2019).

    [33] M. Baranowski, P. Plochocka, R. Su, L. Legrand, T. Barisien, F. Bernardot, Q. Xiong, C. Testelin, M. Chamarro. Exciton binding energy and effective mass of CsPbCl3: a magneto-optical study. Photon. Res., 8, A50-A55(2020).

    [34] X. K. Gong, X. S. Zhang, X. Liu, R. K. Ding, J. J. Zhang, H. Yin, Z. W. Zhang, L. Li, J. P. Xu. Novel cryogenic dual-emission mechanism of lead-free double perovskite Cs2AgInCl6 and using SiO2 to enhance their photoluminescence and photostability. J. Hazard. Mater., 403, 123821(2021).

    [35] B. Ke, R. Zeng, Z. Zhao, Q. Wei, X. Xue, K. Bai, C. Cai, W. Zhou, Z. Xia, B. Zou. Homo- and heterovalent doping-mediated self-trapped exciton emission and energy transfer in Mn-doped Cs2Na1-xAgxBiCl6 double perovskites. J. Phys. Chem. Lett., 11, 340-348(2020).

    [36] G. Xiong, L. Yuan, Y. Jin, H. Wu, Z. Li, B. Qu, G. Ju, L. Chen, S. Yang, Y. Hu. Aliovalent doping and surface grafting enable efficient and stable lead-free blue-emitting perovskite derivative. Adv. Opt. Mater., 8, 2000779(2020).

    [37] S. Li, J. Luo, J. Liu, J. Tang. Self-trapped excitons in all-inorganic halide perovskites: fundamentals, status, and potential applications. J. Phys. Chem. Lett., 10, 1999-2007(2019).

    [38] B. Yang, X. Mao, F. Hong, W. Meng, Y. Tang, X. Xia, S. Yang, W. Deng, K. Han. Lead-free direct band gap double-perovskite nanocrystals with bright dual-color emission. J. Am. Chem. Soc., 140, 17001-17006(2018).

    [39] X. Wang, W. Meng, W. Liao, J. Wang, R. G. Xiong, Y. Yan. Atomistic mechanism of broadband emission in metal halide perovskites. J. Phys. Chem. Lett., 10, 501-506(2019).

    [40] H. Arfin, A. S. Kshirsagar, J. Kaur, B. Mondal, Z. Xia, S. Chakraborty, A. Nag. ns2 electron (Bi3+ and Sb3+) doping in lead-free metal halide perovskite derivatives. Chem. Mater., 32, 10255-10267(2020).

    [41] F. Li, J. Cai, F. Chi, Y. Chen, C. Duan, M. Yin. Investigation of luminescence from LuAG: Mn4+ for physiological temperature sensing. Opt. Mater., 66, 447-452(2017).

    [42] L. Marciniak, K. Trejgis. Luminescence lifetime thermometry with Mn3+-Mn4+ co-doped nanocrystals. J. Mater. Chem. C, 6, 7092-7100(2018).

    [43] M. Sekulić, V. Đorđević, Z. Ristić, M. Medić, M. D. Dramićanin. Highly sensitive dual self-referencing temperature readout from the Mn4+/Ho3+ binary luminescence thermometry probe. Adv. Opt. Mater., 6, 1800552(2018).

    [44] S. Huang, S. Yang, Q. Wang, R. Wu, Q. Han, W. Wu. Cs4PbBr6/CsPbBr3 perovskite composites for WLEDs: pure white, high luminous efficiency and tunable color temperature. RSC Adv., 9, 42430-42437(2019).

    [45] W. Wang, D. Wang, F. Fang, S. Wang, G. Xu, T. Zhang. CsPbBr3/Cs4PbBr6 Nanocomposites: formation mechanism, large-scale and green synthesis, and application in white light-emitting diodes. Crystal Growth Des., 18, 6133-6141(2018).

    Shunfa Gong, Ruirui Wu, Sen Yang, Lifang Wu, Minmin Zhang, Qiuju Han, Wenzhi Wu. Tuning the luminous properties and optical thermometry of Cs2SnCl6 phosphor microcrystals via Bi and Sb codoping[J]. Photonics Research, 2021, 9(11): 2182
    Download Citation