[1] S WANG, Z SONG, Q LIU. Recent progress in Ce3+/Eu2+-activated LEDs and persistent phosphors: focusing on the local structure and the electronic structure. Journal of Materials Chemistry C(2023).
[2] M H FANG, Z BAO, W T HUANG et al. Evolutionary generation of phosphor materials and their progress in future applications for light-emitting diodes. Chemical Reviews(2022).
[3] G B NAIR, H C SWART, S J DHOBLE. A review on the advancements in phosphor-converted light emitting diodes (pc-LEDs): phosphor synthesis, device fabrication and characterization. Progress in Materials Science(2020).
[4] L WANG, R J XIE, T SUEHIRO et al. Down-conversion nitride materials for solid state lighting: recent advances and perspectives. Chemical Reviews(2018).
[5] Z XIA, Q LIU. Progress in discovery and structural design of color conversion phosphors for LEDs. Progress in Materials Science(2016).
[6] S LI, Q ZHU, D TANG et al. Al2O3-YAG:Ce composite phosphor ceramic: a thermally robust and efficient color converter for solid state laser lighting. Journal of Materials Chemistry C(2016).
[7] Q YAO, P HU, P SUN et al. YAG:Ce3+ transparent ceramic phosphors brighten the next-generation laser-driven lighting. Advanced Materials(2020).
[8] Y LI, S FANG, Q ZHU et al. Breaking through the luminescence stability bottleneck of oxyfluoride phosphor for sun-like led lighting. Laser & Photonics Reviews(2024).
[9] Y BAI, Z JIA, J GAO et al. A novel red-emitting phosphor K2MgGeO4:Eu3+ for WLEDs: zero-thermal quenching induced by heterovalent substitution. Journal of Materials Chemistry C(2022).
[10] Z LENG, H BAI, Q QING et al. A zero-thermal-quenching blue phosphor for sustainable and human-centric WLED lighting. ACS Sustainable Chemistry & Engineering(2022).
[11] M LIAO, F WU, J WANG et al. Accurately controlling the occupation of Eu2+ in Cs(K, Na)3(Li3SiO4)4 to achieve narrow-band green emission for wide color gamut displays. ACS Applied Materials & Interfaces(2022).
[12] K B KIM, Y I KIM, H G CHUN et al. Structural and optical properties of BaMgAl10O17:Eu2+ phosphor. Chemistry of Materials(2002).
[13] Y SONG, H YOU, M YANG et al. Facile synthesis and luminescence of Sr5(PO4)3Cl:Eu2+ nanorod bundles
[14] Q SHAO, H LIN, Y DONG et al. Temperature-dependent photoluminescence properties of (Ba,Sr)2SiO4:Eu2+ phosphors for white LEDs applications. Journal of Luminescence(2014).
[15] P LI, Z YANG, Z WANG et al. Preparation and luminescence characteristics of Sr3SiO5:Eu2+ phosphor for white LED.. Chinese Science Bulletin(2008).
[16] R J XIE, N HIROSAKI, T SUEHIRO et al. A simple, efficient synthetic route to Sr2Si5N8:Eu2+-based red phosphors for white light-emitting diodes. Chemistry of Materials(2006).
[17] X PIAO, K I MACHIDA, T HORIKAWA et al. Preparation of CaAlSiN3:Eu2+ phosphors by the self-propagating high-temperature synthesis and their luminescent properties. Chemistry of Materials(2007).
[18] K A DENAULT, J BRGOCH, M W GAULTOIS et al. Consequences of optimal bond valence on structural rigidity and improved luminescence properties in Sr
[19] L LIN, L NING, R ZHOU et al. Site occupation of Eu2+ in Ba2-
[20] H DAICHO, Y SHINOMIYA, K ENOMOTO et al. A novel red-emitting K2Ca(PO4)F:Eu2+ phosphor with a large Stokes shift. Chemical Communications(2018).
[21] X WU, R SHI, J ZHANG et al. Highly efficient and zero-thermal- quenching blue-emitting Eu2+-activated K-beta-alumina phosphors. Chemical Engineering Journal(2022).
[22] S WANG, B DEVAKUMAR, Q SUN et al. Highly efficient near-UV-excitable Ca2YHf2Al3O12:Ce3+,Tb3+ green-emitting garnet phosphors with potential application in high color rendering warm- white LEDs. Journal of Materials Chemistry C(2020).
[23] X DING, Y WANG. Novel orange light emitting phosphor Sr9(Li, Na, K)Mg(PO4)7: Eu2+ excited by NUV light for white LEDs. Acta Materialia(2016).
[24] G LI, Y TIAN, Y ZHAO et al. Recent progress in luminescence tuning of Ce3+ and Eu2+-activated phosphors for pc-WLEDs. Chemical Society Reviews(2015).
[25] B WANG, Z WANG, Y LIU et al. Valent control and spectral tuning by cation site engineering strategy in Eu doped Sr1-
[26] Y LIU, C ZHANG, Z CHENG et al. Origin and luminescence of anomalous red-emitting center in rhombohedral Ba9Lu2Si6O24:Eu2+ blue phosphor. Inorganic Chemistry(2016).
[27] Y LIU, J ZHANG, C ZHANG et al. Ba9Lu2Si6O24:Ce3+: an efficient green phosphor with high thermal and radiation stability for solid-state lighting. Advanced Optical Materials(2015).
[28] Y WEI, Z GAO, S LIU et al. Highly efficient green-to-yellowish- orange emitting Eu2+-doped pyrophosphate phosphors with superior thermal quenching resistance for w-LEDs. Advanced Optical Materials(2020).
[29] M LIAO, F WU, D ZHU et al. Towards single broadband white emission in Rb0.5K1.5CaPO4(F, Cl): Eu2+
[30] Y X LIU, J X HU, L C JU et al. Hydrophobic surface modification toward highly stable K2SiF6:Mn4+ phosphor for white light-emitting diodes. Ceramics International(2020).
[31] D HUANG, H ZHU, Z DENG et al. Moisture-resistant Mn4+- doped core-shell-structured fluoride red phosphor exhibiting high luminous efficacy for warm white light-emitting diodes. Angewandte Chemie International Edition(2019).
[32] J QIAO, L NING, M S MOLOKEEV et al. Eu2+ site preferences in the mixed cation K2BaCa(PO4)2 and thermally stable luminescence. Journal of the American Chemical Society(2018).
[33] H J YANG, H R XU, G S ZHU et al. Facile preparation of Y2.9Ce0.1Al5O12 nano-phosphors without photobleaching behavior. Materials Letters(2013).
[34] J CHEN, N ZHANG, C GUO et al. Site-dependent luminescence and thermal stability of Eu2+ doped fluorophosphate toward white LEDs for plant growth. ACS Applied Materials & Interfaces(2016).
[35] D DENG, J QIANG, T WANG et al. Surface passivation to improve the water resistance and fluorescent thermal stability of K2SiF6:Mn4+ by using Na2S2O4 as a passivator. Journal of Luminescence(2022).
[36] Q SHAO, H LIN, Y DONG et al. Thermostability and photostability of Sr3SiO5:Eu2+ phosphors for white LED applications. Journal of Solid State Chemistry(2015).
[37] Y WEI, Q HUANG, S YU et al. Reconstructing the surface of K2SiF6:Mn4+ phosphors toward enhanced moisture resistance for white LED applications. ACS Applied Materials & Interfaces(2024).
[38] Y LIU, Y YING, Q XIE et al. Bifunctional ligand passivation enables stable blue mixed-halide CsPb(Br/Cl)3 perovskite quantum dots toward light-emitting diodes. Inorganic Chemistry(2024).
[39] Z ZHOU, H ZHU, X HUANG et al. Anti-thermal-quenching, color-tunable and ultra-narrow-band cyan green-emitting phosphor for w-LEDs with enhanced color rendering. Chemical Engineering Journal(2022).
[40] S HARIYANI, J BRGOCH. Advancing human-centric led lighting using Na2MgPO4F:Eu2+. ACS Applied Materials & Interfaces(2021).
[41] Y SUN, Y WANG, W CHEN et al. Rapid synthesis of phosphor- glass composites in seconds based on particle self-stabilization. Nature Communications(2024).
[42] X LI, C YANG, L QIU et al. NaAlSiO4: Eu2+ glass ceramics: self-reduced
[43] X LI, W FENG, F YOU et al. In situ glass crystallization enables narrowband blue luminescence for full-spectrum lighting and transparent display. Advanced Optical Materials(2024).
[44] Y KUANG, Y LI, B CHEN et al. Regulating anti-thermal quenching to zero thermal quenching for highly efficient blue-emitting Eu2+-doped K-beta-alumina phosphors. Journal of Materials Chemistry C(2023).