• Journal of Inorganic Materials
  • Vol. 37, Issue 6, 676 (2022)
Xufeng GUAN, Guifang LI*, and Yunge WEI
Author Affiliations
  • School of Advanced Materials and Nano Technology, Xidian University, Xi'an 710071, China
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    DOI: 10.15541/jim20210426 Cite this Article
    Xufeng GUAN, Guifang LI, Yunge WEI. Microstructure and Thermal Quenching Characteristics of Na1-xMxCaEu(WO4)3 (M=Li, K) Red Phosphor [J]. Journal of Inorganic Materials, 2022, 37(6): 676 Copy Citation Text show less
    References

    [1] S LI, N GUO, Q M LIANG et al. Red phosphors doped by Eu used in white LED. Chinese Journal of Inorganic Chemistry, 543-549(2017).

    [2] W N ZHANG, Y TONG, F F HU et al. A novel single-phase Na3.6Y1.8(PO4)3: Bi3+Eu3+ phosphor for tunable and white light emission. Ceramics International, 284-291(2020).

    [3] S S LOU, P C ZHANG, Y CHEN et al. Synthesis and luminescence enhancement of CaY0.6(MoO4)1.9: Eu3+ red phosphors by Sm3+ co-doping. Ceramics International, 10174-10184(2020).

    [4] R LIU, G X WANG. Luminescent properties of a red phosphor CePO4-6LaPO4@4SiO2:Eu3+. Chinese Journal of Inorganic Chemistry, 1659-1664(2019).

    [5] F P DU, Y NAKAI, T J TSUBOI et al. Luminescence properties and site occupations of Eu3+ ions doped in double phosphates Ca9R(PO4)7 (R=Al, Lu). Journal of Materials Chemistry, 4669(2011).

    [6] W W ZHOU, M J SONG, Y ZHANG et al. Color tunable luminescence and optical temperature sensing performance in a single-phased KBaGd(WO4)3:Dy3+Eu3+ phosphor. Optical Materials, 110271(2020).

    [7] W W ZHOU, M J SONG, Y ZHANG et al. Multicolor tunable luminescence and energy transfer mechanism in a novel single-phase KBaGd(WO4)3:Tb3+Eu3+ phosphor for NUV WLEDs. Journal of Alloys and Compounds, 1063-1047(2019).

    [8] J X BIN, H K LIU, L F MEI et al. Multi-color luminescence evolution and efficient energy transfer of scheelite-type LiCaGd(WO4)3:Ln3+ (Ln=EuDy, Tb) phosphors. Ceramics International, 1837-1845(2019).

    [9] M RAJENDRAN, S VAIDYANATHAN. New red emitting phosphors NaSrLa(MO4)3: Eu3+ [M=Mo and W] for white LEDs: synthesis, structural and optical study. Journal of Alloys and Compounds, 919-931(2019).

    [10] L LI, W X CHANG, W Y CHEN et al. Double perovskite LiLaMgWO6:Eu3+ novel red-emitting phosphors for solid sate lighting: synthesis, structure and photoluminescent properties. Ceramics International, 2720-2729(2017).

    [11] G F LI, Y G WEI, Z M LI et al. Synthesis and photoluminescence of Eu3+ doped CaGd2(WO4)4 novel red phosphors for white LEDs applications. Optical Materials, 253-260(2017).

    [12] X H WANG, G F LI, Y G WEI et al. Morphology-controlled synthesis and luminescence properties of red-emitting NaCaGd(W04)3. Chinese Journal of Inorganic Chemistry, 87-96(2020).

    [13] R D SHANNON. Revised effective ionic radii and systematic studies of interatomic distances in halides and chalcogenides. Acta Cryst., 751-767(1976).

    [14] D L SHRUTHI, REDDY A JAGANNATHA, KUMAR G N ANIL et al. Judd Ofelt theoretical analysis, photoluminescence properties of Eu3+ activated LiGd(WO4)2 phosphors. Journal of Luminescence, 117167(2020).

    [15] G F LI, Q YANG, Y G WEI. Synthesis and photoluminescence properties of double perovskite NaLaMgWO6:Eu3+ red phosphors. Journal of Inorganic Materials, 42-48(2017).

    [16] W G RAN, H M NOH, C B CHOI et al. Eu3+ doped (Li, Na, K) LaMgWO6red emission phosphors: an example to rational design with theoretical and experimental investigation. Journal of Alloys and Compounds, 651-659(2019).

    [17] BAI, J S, Y LIU, G Q TAN et al. Enhanced quantum efficiency and thermal stability in CaWO4:Eu3+ phosphor based on structural modification induced by co-doping Al3+. Journal of Luminescence, 117351(2020).

    [18] X LI, C YANG, Q S LIU et al. Enhancement of luminescence properties of SrAl2Si2O8: Eu3+ red phosphor. Ceramics International, 17376-17382(2020).

    [19] Q F TANG, T YANG, B GUO et al. Synthesis and photoluminescence properties of a potential red-emitting phosphor Sr2-xNb2O7: xEu3+ for white LEDs. Optik, 1666(2021).

    [20] L X ZHANG, Y XIE, X GENG et al. Double perovskite Ca2MgTeO6:Eu3+ red-emitting phosphors with high thermal stability for near UV/blue excited white LEDs. Journal of Luminescence, 117365(2020).

    [21] D L SHRUTHI, G N ANIL KUMAR, A JAGANNATHA REDDY. Solid solution of novel LixByGdEu(WO4)2 (B=Na, K) red phosphors: influence of Na/K substitution on microstructures, Judd-Ofelt and luminescence properties for WLED applications. Ceramics International, 16342-16357(2021).

    [22] G F YUAN, R R CUI, J ZHANG et al. A novel composite perovskite Ba3ZnNb2O9: Eu3+ orange red-emitting phosphor: crystal structure, luminescence properties and high thermal stability. Optik, 166513(2021).

    [23] Y TONG, Y H CHEN, S Y Z CHEN et al. Luminescent properties of Na2GdMg2(VO4)3: Eu3+ red phosphors for NUV excited pc-WLEDs. Ceramics International, 12320-12326(2021).

    [24] M T TRAN, TU NGUYEN, N V QUANG et al. Excellent thermal stability and high quantum efficiency orange-red-emitting AlPO4: Eu3+ phosphors for WLED application. Journal of Alloys and Compounds, 156941(2021).

    [25] S Y XIN, Y H WANG, G ZHU et al. Structure and temperature sensitive photoluminescence in a novel phosphate red phosphor RbZnPO4:Eu3+. Dalton Transactions, 16099-16106(2015).

    [26] J W DU, X Y PAN, Z P LIU et al. Highly efficient Eu3+ -activated Ca2Gd8Si6O26 red-emitting phosphors: a bifunctional platform towards white light-emitting diode and ratiometric optical thermometer applications. Journal of Alloys and Compounds, 157843(2021).

    [27] L WANG, W L GUO, Y TIAN et al. High luminescent brightness and thermal stability of red emitting Li3Ba2Y3(WO4)8: Eu3+ phosphor. Ceramics International, 13648-13653(2016).

    Xufeng GUAN, Guifang LI, Yunge WEI. Microstructure and Thermal Quenching Characteristics of Na1-xMxCaEu(WO4)3 (M=Li, K) Red Phosphor [J]. Journal of Inorganic Materials, 2022, 37(6): 676
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