| [1] |
LI L, FAN Z Y. Optoelectronic materials and devices[J]. Small Methods, 2024, 8(2): 2301632. DOI:10.1002/smtd.202301632.
|
| [2] |
WANG X, ZHONG Y J, WANG D, et al. Fracture morphology and mechanism of a directionally solidified Al2O3/Y3Al5O12 eutectic single crystal[J]. Scripta Materialia, 2017, 135: 46-49. DOI:10.1016/j.scriptamat.2017.03.027.
|
| [3] |
ZHAI B G, XU H F, ZHUO F L, et al. Annealing temperature dependent photoluminescence and afterglow of undoped CaAl2O4[J]. Journal of Alloys and Compounds, 2020, 821: 153563. DOI:10.1016/j.jallcom.2019.153563.
|
| [4] |
LAI S Q, ZHAO M, QIAO J W, et al. Data-driven photoluminescence tuning in Eu2+-doped phosphors[J]. The Journal of Physical Chemistry Letters, 2020, 11(14): 5680-5685. DOI:10.1021/acs.jpclett.0c01471.
|
| [5] |
PAN M, LIAO W M, YIN S Y, et al. Single-phase white-light-emitting and photoluminescent color-tuning coordination assemblies[J]. Chemical Reviews, 2018, 118(18): 8889-8935. DOI:10.1021/acs.chemrev.8b00222.
pmid: 30130099
|
| [6] |
AKIYAMA M, XU C N, NONAKA K. Improvement in mechanoluminescence intensity of Ca2Al2SiO7: Ce by the statistical approach[J]. Journal of the Electrochemical Society, 2003, 150(5): H115. DOI:10.1149/1.1566418.
|
| [7] |
LIU Y Y, PAN F, GAO J, et al. Nd3+ doped CaLaGa3O7: Growth, structure, and optical properties of a disordered laser crystal[J]. Journal of Luminescence, 2022, 244: 118748. DOI:10.1016/j.jlumin.2022.118748.
|
| [8] |
SINGH V, BODDULA R, NIKHARE G N, et al. Orange-red luminescence features of Eu3+ doped CaAl4O7 phosphors[J]. Optik, 2022, 270: 169954. DOI:10.1016/j.ijleo.2022.169954.
|
| [9] |
LIU Y Y, PAN F, TU C Y, et al. Structure, first-principles calculations and yellow spectral properties of Dy3+: CaLaGa3O7 single crystal[J]. Journal of Luminescence, 2021, 236: 118122. DOI:10.1016/j.jlumin.2021.118122.
|
| [10] |
KUBOTA S I, IZUMI M, YAMANE H, et al. Luminescence of Eu3+, Tb3+ and Tm3+ in SrLaGa3O7[J]. Journal of Alloys and Compounds, 1999, 283(1/2): 95-101. DOI:10.1016/S0925-8388(98)00866-4.
|
| [11] |
WANG Y, KE Y E, CHEN S S, et al. Luminescence investigation of red-emitting Sr2MgMoO6: Eu3+ phosphor for visualization of latent fingerprint[J]. Journal of Colloid and Interface Science, 2021, 583: 89-99. DOI:10.1016/j.jcis.2020.09.024.
|
| [12] |
MALINOWSKI M, PRACKA I, SURMA B, et al. Spectroscopic and laser properties of SrLaGa3O7: Pr3+ crystals[J]. Optical Materials, 1996, 6(4): 305-312. DOI:10.1016/S0925-3467(96)00048-1.
|
| [13] |
MATSUKIYO H, TOYAMA H, UEHARA Y, et al. Reduction of degradation of Y3(Al, Ga)5O12: Tb phosphors by Sc doping[J]. Journal of Luminescence, 1997, 72: 229-230. DOI:10.1016/S0022-2313(96)00317-1.
|
| [14] |
闫凤巧, 李飞, 顾明广, 等. 荧光粉制备方法的研究进展[J]. 广州化工, 2015, 43(16): 32-33.
|
| [15] |
ZHOU J J, ZHENG G J, LIU X F, et al. Defect engineering in lanthanide doped luminescent materials[J]. Coordination Chemistry Reviews, 2021, 448: 214178. DOI:10.1016/j.ccr.2021.214178.
|
| [16] |
KEE C C, ANG B C, METSELAAR H S C. Synthesis of europium-doped calcium silicate hydratevia hydrothermal and coprecipitation method[J]. Ceramics International, 2021, 47(4): 4803-4812. DOI:10.1016/j.ceramint.2020.10.050.
|
| [17] |
QIN X, LIU X W, HUANG W, et al. Lanthanide-activated phosphors based on 4f-5d optical transitions: Theoretical and experimental aspects[J]. Chemical Reviews, 2017, 117(5): 4488-4527. DOI:10.1021/acs.chemrev.6b00691.
pmid: 28240879
|
| [18] |
DORENBOS P. The 4fn ↔4fn-15d transitions of the trivalent lanthanides in halogenides and chalcogenides[J]. Journal of Luminescence, 2000, 91(1/2): 91-106. DOI:10.1016/S0022-2313(00)00197-6.
|
| [19] |
FU J, KOBAYASHI M, SUGIMOTO S, et al. Eu3+-activated heavy scintillating glasses[J]. Materials Research Bulletin, 2008, 43(6): 1502-1508. DOI:10.1016/j.materresbull.2007.06.024.
|
| [20] |
ZONG Q, ZHAO D, ZHANG R J, et al. A new blueish phosphor K2Ca3Si3O10: Ce3+ with excellent thermal stability[J]. Physica B: Condensed Matter, 2023, 651: 414589. DOI:10.1016/j.physb.2022.414589.
|
| [21] |
LI H, WU Q S, AN Z B, et al. A broadband yellow-emitting nitridoalumosilicate Ca4SiAl3N7: Ce3+ phosphor for solid-state lighting[J]. Ceramics International, 2023, 49(8): 12491-12498. DOI:10.1016/j.ceramint.2022.12.109.
|
| [22] |
YIN Z Q, YUAN P, ZHU Z, et al. Pr3+ doped Li2SrSiO4: An efficient visible-ultraviolet C up-conversion phosphor[J]. Ceramics International, 2021, 47(4): 4858-4863. DOI:10.1016/j.ceramint.2020.10.058.
|
| [23] |
ZHANG N N, JIANG X X, WANG Y N, et al. Synthesis, structure and luminescence characteristics of La3Ga5SiO14: Pr3+ phosphors[J]. Journal of Alloys and Compounds, 2023, 932: 167626. DOI:10.1016/j.jallcom.2022.167626.
|
| [24] |
WEI D L, SEO H J, LIU Y S, et al. Broadband infrared emission of Pr3+-doped BiLa2O4.5 phosphor for optical amplifier applications[J]. Journal of Luminescence, 2023, 253: 119488. DOI:10.1016/j.jlumin.2022.119488.
|
| [25] |
HE C, TAKEDA T, HUANG Z H, et al. Powder synthesis and luminescence of a novel yellow-emitting Ba5Si11Al7N25: Eu2+ phosphor discovered by a single-particle-diagnosis approach for warm w-LEDs[J]. Chemical Engineering Journal, 2023, 455: 140932. DOI:10.1016/j.cej.2022.140932.
|
| [26] |
WANG F, CHEN H H, ZHANG S W, et al. Photoluminescence properties of novel blue-light excited orange-red phosphors Sr3Al2Si3O12: Eu2+[J]. Journal of Alloys and Compounds, 2023, 942: 168888. DOI:10.1016/j.jallcom.2023.168888.
|
| [27] |
ZHANG Q, WANG X C, TANG Z B, et al. A K3ScSi2O7: Eu2+ based phosphor with broad-band NIR emission and robust thermal stability for NIR pc-LEDs[J]. Chemical Communications, 2020, 56(34): 4644-4647. DOI:10.1039/d0cc01838d.
|
| [28] |
姬海鹏. Mn4+离子光谱学基础[J]. 发光学报, 2022, 43(8): 1175-1187.
|
| [29] |
WEI Y, DANG P P, DAI Z G, et al. Advances in near-infrared luminescent materials without Cr3+: Crystal structure design, luminescence properties, and applications[J]. Chemistry of Materials, 2021, 33(14): 5496-5526. DOI:10.1021/acs.chemmater.1c01325.
|
| [30] |
YAN Y, SHANG M M, HUANG S, et al. Photoluminescence properties of AScSi2O6: Cr3+ (a = Na and Li) phosphors with high efficiency and thermal stability for near-infrared phosphor-converted light-emitting diode light sources[J]. ACS Applied Materials & Interfaces, 2022, 14(6): 8179-8190. DOI:10.1021/acsami.1c23940.
|
| [31] |
SENDEN T, VAN DIJK-MOES R J A, MEIJERINK A. Quenching of the red Mn4+ luminescence in Mn4+-doped fluoride LED phosphors[J]. Light, Science & Applications, 2018, 7: 8. DOI:10.1038/s41377-018-0013-1.
|
| [32] |
ZHAO F Y, SONG Z, LIU Q L. Advances in chromium-activated phosphors for near-infrared light sources[J]. Laser & Photonics Reviews, 2022, 16(11): 2200380. DOI:10.1002/lpor.202200380.
|
| [33] |
WEI Y, GAO Z Y, YUN X H, et al. Abnormal Bi3+-activated NIR emission in highly symmetric XAl12O19 (X = Ba, Sr, Ca) by selective sites occupation[J]. Chemistry of Materials, 2020, 32(19): 8747-8753. DOI:10.1021/acs.chemmater.0c02814.
|
| [34] |
HUANG A J, YANG Z W, YU C Y, et al. Photoluminescence properties in novel Ba2Y(BO3)2Cl: Bi3+ blue phosphors with various Bi3+ sites[J]. Materials Letters, 2016, 185: 440-442. DOI:10.1016/j.matlet.2016.09.053.
|
| [35] |
HU R, ZHANG Y, ZHAO Y, et al. UV-Vis-NIR broadband-photostimulated luminescence of LiTaO3: Bi3+ long-persistent phosphor and the optical storage properties[J]. Chemical Engineering Journal, 2020, 392: 124807. DOI:10.1016/j.cej.2020.124807.
|
| [36] |
HU S N, LIU B, YANG Y G, et al. Preparation and luminescence characteristics of Bi3+ doped BaLaGa3O7 phosphors[J]. Optical Materials, 2023, 143: 114220. DOI:10.1016/j.optmat.2023.114220.
|
| [37] |
YANG S, SUN W Z, HE Z F, et al. Photoluminescence property, energy transfer mechanism, and optical thermometric behavior of bismuth-europium codoped disordered melilite-type phosphor[J]. Journal of Alloys and Compounds, 2024, 980: 173622. DOI:10.1016/j.jallcom.2024.173622.
|
| [38] |
ZHAO W Y, AN S L, FAN B, et al. Photoluminescence and cathodoluminescence properties of a novel CaLaGa3O7: Dy3+ phosphor[J]. Chinese Science Bulletin, 2012, 57(7): 827-831. DOI:10.1007/s11434-011-4938-5.
|
| [39] |
LIU Y Y, HUANG C X, WANG J Y, et al. Blue emission and color-tunable behavior in Tm3+ singly- and Dy3+/Tm3+ Co-doped CaLaGa3O7 phosphors[J]. Ceramics International, 2024, 50(12): 21304-21310. DOI:10.1016/j.ceramint.2024.03.240.
|
| [40] |
LI Z J, LIU B, ZHANG Y Y, et al. Cyan, deep red and white light emission generated by SrLaGa3O7: Bi3+, SrLaGa3O7: Mn4+ and SrLaGa3O7: Bi3+/Mn4+ phosphors[J]. Journal of Alloys and Compounds, 2022, 894: 162455. DOI:10.1016/j.jallcom.2021.162455.
|
| [41] |
YANG Y G, WU F N, LV X S, et al. Luminescence investigation of lanthanum ions (Eu3+ or Tb3+) doped SrLaGa3O7 fluorescent powders[J]. Optical Materials, 2020, 107: 110010. DOI:10.1016/j.optmat.2020.110010.
|
| [42] |
LI Z J, ZUO X G, LIU B, et al. Luminescence properties of SrLaGa3O7 fluorescent powders doped with Er3+ and Yb3+[J]. Optical Materials, 2021, 116: 111079. DOI:10.1016/j.optmat.2021.111079.
|
| [43] |
SHEN X N, LI Z J, YANG Y G, et al. Broadband NIR-II emission generated by tetrahedral Cr3+/Cr4+ in SrLaGa3O7[J]. Laser & Photonics Reviews, 2025, 19(3): 2401212. DOI:10.1002/lpor.202401212.
|
| [44] |
ZHANG X M, ZHANG J H, LIANG L F, et al. Luminescence of SrGdGa3O7: RE3+(RE=Eu, Tb) phosphors and energy transfer from Gd3+ to RE3+[J]. Materials Research Bulletin, 2005, 40(2): 281-288. DOI:10.1016/j.materresbull.2004.10.011.
|
| [45] |
DA C BISPO G F, ANDRADE A B, DA SILVA I R F A, et al. Thermoluminescence and persistent luminescence of Tb3+ activated CaYAl3O7[J]. Optical Materials, 2019, 91: 413-418. DOI:10.1016/j.optmat.2019.03.051.
|
| [46] |
ZHANG W, SHEN H, HU X L, et al. Solid-state synthesis, structure and spectroscopic analysis of Dy: CaYAl3O7 phosphors[J]. Journal of Alloys and Compounds, 2019, 781: 255-260. DOI:10.1016/j.jallcom.2018.12.113.
|
| [47] |
LEE J K, AHMAD BHAT A, WATANABE S, et al. Unveiling the photoluminescence and electron paramagnetic resonance of Gd3+-Doped CaYAl3O7 phosphor emitting narrowband ultraviolet B radiation[J]. Ceramics International, 2025, 51(8): 10415-10422. DOI:10.1016/j.ceramint.2024.12.474.
|
| [48] |
WANG G L, ZHANG X J, XU L Y, et al. Oxidation state regulation and polyhedron deformation in Cr3+ doped CaYAl3O7 NIR phosphors[J]. Journal of Alloys and Compounds, 2025, 1039: 183249. DOI:10.1016/j.jallcom.2025.183249.
|
| [49] |
ZHAO S S, DONG H H, LI W C, et al. Upconversion phosphors of CaLaAl3O7: RE3+/Yb3+ (RE = Tm, Ho) and their multifunctional applications for multi-color anti-counterfeiting and laser displays[J]. Journal of Materials Chemistry C, 2025, 13(19): 9875-9887. DOI:10.1039/D5TC00012B.
|
| [50] |
GAO P, LI X, GONG Y, et al. Highly sensitive up-conversion phosphor for optical thermometry: CaLaAl3O7: Er3+/Yb3+[J]. Journal of Rare Earths, 2019, 37(9): 937-942. DOI:10.1016/j.jre.2018.12.005.
|
| [51] |
LIU X L, MI X Y, GUO Y Y, et al. Highly sensitive and near-infrared excitable optical thermometer based on CaGdAl3O7: Tm3+, Yb3+, Zn2+[J]. Journal of Alloys and Compounds, 2022, 929: 167240. DOI:10.1016/j.jallcom.2022.167240.
|
| [52] |
ZHANG C, WEI L C, CAO L, et al. Near-zero thermal quenching in SrGdAl3O7: Er3+/Yb3+ melilite phosphor for ratiometric optical thermometry[J]. Ceramics International, 2025, 51(27): 55230-55239. DOI:10.1016/j.ceramint.2025.09.245.
|