A Novel Strategy for High Quantum Efficiency Composite Oxide Far-Red Phosphors: Ca14Mg5.94Li0.03In0.03Ga9.95O35:0.05Mn4+
Abstract
1. Introduction
2. Experimental
2.1. Synthesis
2.2. Characterization
3. Results and Discussion
3.1. Crystal Structure
3.2. Modification
3.3. Analysis of Reaction Path
3.4. Luminescence Properties
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Yeh, N.; Chung, J.P. High-brightness LEDs—Energy efficient lighting sources and their potential in indoor plant cultivation. Renew. Sustain. Energy Rev. 2009, 13, 2175–2180. [Google Scholar] [CrossRef]
- Sabzalian, M.R.; Heydarizadeh, P.; Zahedi, M.; Boroomand, A.; Agharokh, M.; Sahba, M.R.; Schoefs, B. High performance of vegetables, flowers, and medicinal plants in a red-blue LED incubator for indoor plant production. Agron. Sustain. Dev. 2014, 34, 879–886. [Google Scholar] [CrossRef]
- Kula, M.; Rys, M.; Skoczowski, A. Far-red light (720 or 740 nm) improves growth and changes the chemical composition of Chlorella vulgaris. Eng. Life Sci. 2014, 14, 651–657. [Google Scholar] [CrossRef]
- Wang, Y.L.; Wang, L.; Zhou, J.X.; Hu, S.B.; Chen, H.Z.; Xiang, J.; Zhang, Y.K.; Zeng, Y.J.; Shi, Q.H.; Zhu, D.F.; et al. Research progress on heat stress of rice at flowering stage. Rice Sci. 2019, 26, 1–10. [Google Scholar] [CrossRef]
- Li, Y.; Gao, Y. Sb3+-doped Rb2HfCl6 perovskites as high-performance thermally stable single-component phosphors for white light-emitting diodes. Materials 2025, 18, 1896. [Google Scholar] [CrossRef]
- Wang, R.; Ma, J.; Huang, R.; Wang, Y.; Jiang, Y.; Ling, Y.; Yang, J.; Liang, H.; Liu, X.; Liao, N. The effects of shading on the photosynthetic performance of endangered plant horsfieldia hainanensis seedlings. Forests 2023, 15, 3. [Google Scholar] [CrossRef]
- Yang, X.J.; Shi, Q.F.; Ivanovskikh, K.V.; Wang, L.; Qiao, J.W.; Guo, H.J. Defect engineering in Mn4+-doped Li4Mg2TaO6F oxyfluoride phosphors via NaF charge compensation for broadband far-red agricultural lighting. J. Alloys Compd. 2025, 1035, 181392. [Google Scholar] [CrossRef]
- Zhang, Y.J.; Zhang, Z.L.; Liu, X.D.; Shao, G.Z.; Shen, L.L.; Liu, J.M.; Xiang, W.D.; Liang, X.J. A high quantum efficiency CaAlSiN3: Eu2+ phosphor-in-glass with excellent optical performance for white light-emitting diodes and blue laser diodes. Chem. Eng. J. 2020, 401, 125983. [Google Scholar] [CrossRef]
- Piao, X.Q.; Machida, K.; Horikawa, T.; Hanzawa, H.; Shimomura, Y.; Kijima, N. Preparation of CaAlSiN3: Eu2+ Phosphors by the self-propagating high-temperature synthesis and their luminescent properties. Chem. Mater. 2017, 19, 4592–4599. [Google Scholar]
- Chen, C.C.; Chen, W.J.; Rainwater, B.; Liu, L.X.; Zhang, H.L.; Liu, Y.X.; Guo, X.S.; Zhou, J.Y.; Xie, E.Q. M2Si5N8: Eu2+-based (M=Ca, Sr) red-emitting phosphors fabricated by nitrate reduction process. Opt. Mater. 2011, 33, 1585–1590. [Google Scholar]
- Seto, T.; Wang, Y.H.; Wua, J.P.; Lia, Z.B. Progress of M2Si5N8: Eu series in industrial LED phosphors. J. Mater. Chem. C 2023, 11, 6512–6527. [Google Scholar] [CrossRef]
- Chi, F.F.; Dai, W.J.; Qiu, L.T.; Liu, S.L.; Wei, X.T.; Chen, Y.H.; Yin, M. Photoluminescence properties of far-red emitting Lu2CaAl4GeO12: Cr3+ garnet phosphor. J. Lumin. 2022, 251, 119198. [Google Scholar] [CrossRef]
- Ou, J.H.; Yang, X.L.; Xiao, S.G. Luminescence performance of Cr3+ doped and Cr3+, Mn4+ co-doped La2ZnTiO6 phosphors. Mater. Res. Bull. 2020, 124, 110764. [Google Scholar] [CrossRef]
- Zhao, F.Y.; Cai, H.; Song, Z.; Liu, Q.L. Structural confinement for Cr3+ activators toward efficient near-infrared phosphors with suppressed concentration quenching. Chem. Mater. 2021, 33, 3621–3630. [Google Scholar]
- Zou, F.X.; Li, M.; Du, Z.Y.; Song, Y.; Li, L.; Li, G.H. Far-red-emitting SrGdAlO4: Cr3+, Bi3+ phosphors for plant growth regulation. Opt. Mater. 2022, 133, 112904. [Google Scholar]
- Shao, Y.M.; Li, C.L.; Zou, Z.Q.; Wang, J.F.; Sun, H.Y.; Qin, R.K.; Zhang, D.; Xie, S.A.; Yu, R.J. A high-efficiency double perovskite phosphor SrLaNaTeO6: Mn4+: Potential applications in w-LEDs and indoor plant growth lighting. Ceram. Int. 2024, 50, 4433–4445. [Google Scholar]
- Chen, S.G.; Yao, X.M.; Yang, Y.; Yang, Y.; Du, Y.F.; Cheng, Y.; Yu, M.H.; Du, X.C.; Deng, H.J.; Yu, R.J. A novel far-red-emitting phosphor Ca2InTaO6: Mn4+ with excellent responsiveness to phytochrome Pfr for plant growth. Ceram. Int. 2024, 50, 50821–50833. [Google Scholar] [CrossRef]
- Liu, X.Y.; Xu, Y.M.; Cheng, K.; Long, J.L.; Huang, W.C.; Deng, C.Y. A novel Mn4+-activated far-red Sr2MgWO6 phosphor: Synthesis, luminescence enhancement, and application prospect. Luminescence 2023, 38, 692. [Google Scholar] [CrossRef]
- Cao, L.W.; Li, P.L.; Cui, J.; Wang, X.J.; Yao, Y.; Zhang, M.Y.; Zheng, M.J.; Yang, Z.B.; Suo, H.; Wang, Z.J. Achieving the potential multifunctional near-infrared materials Ca3In2−xGaxGe3O12: Cr3+ using a solid state method. RSC Adv. 2021, 11, 10043–10053. [Google Scholar] [CrossRef]
- Ma, R.; Ma, C.Y.; Zhang, J.T.; Long, J.Q.; Wen, Z.C.; Yuan, X.Y.; Cao, Y.G. Energy transfer properties and enhanced color rendering index of chromaticity tunable green-yellow-red-emitting Y3Al5O12: Ce3+, Cr3+ phosphors for white light-emitting diodes. Opt. Mater. Express 2017, 7, 454–467. [Google Scholar] [CrossRef]
- Pi, Y.W.; Cui, R.R.; Gong, X.Y.; Deng, C.Y. A novel far-red and near-infrared adjustable phosphor Sr9Al(PO4)7: Cr3+: Structure and luminescence properties. J. Mater. Sci. Mater. Electron. 2024, 35, 1488. [Google Scholar]
- Han, Y.J.; Wang, S.; Liu, H.; Shi, L.; Liu, S.X.; Zhang, Y.; Liu, C.; Shi, X.F.; Wang, Q.; Mu, Z.F.; et al. A novel promising red phosphor Ca9LiBi0.667(PO4)7: Eu3+ with excellent responsiveness to phytochrome Pfr for the indoor plant cultivation. J. Mol. Struct. 2020, 1210, 127998. [Google Scholar]
- Zhang, S.; Liu, Y.; Yin, J.; Zhang, X.; Li, Y.; Su, L.; Zhou, Z.; Xia, M. A novel Cr3+-activated far-red titanate phosphor: Synthesis, luminescence enhancement and application prospect. Mater. Today Chem. 2022, 24, 100835. [Google Scholar]
- Han, Y.J.; Shi, L.; Liu, H.; Zhang, Z.W. A novel far red-emitting phosphor SrMgAl10O17: Cr3+ for warm w-LEDs. Optik 2019, 195, 162014. [Google Scholar] [CrossRef]
- Shi, L.; Han, Y.J.; Ji, Z.X.; Li, Z.H.; Li, H.H.; Zhang, J.Y.; Zhang, Z.W. Synthesis and photoluminescence properties of a novel Ca2LaNbO6: Mn4+ double perovskite phosphor for plant growth LEDs. J. Mater. Sci. Mater. Electron. 2019, 30, 15504–15511. [Google Scholar]
- Wang, W.B.; Xiao, S.G. Comparative investigation on luminescence properties of Mn4+ doped Ba6Y2W3O18 and Ba6Gd2W3O18 phosphors. Mater. Res. Bull. 2020, 123, 110709. [Google Scholar]
- Wu, Z.J.; Li, L.; Li, H.; Mei, L.S.; Xia, W.D.; Yia, Y.S.; Hua, Y.B. Designing bifunctional platforms for LED devices and luminescence lifetime thermometers: A case of non-rare-earth Mn4+ doped tantalate phosphors. Dalton Trans. 2022, 51, 9062–9071. [Google Scholar]
- Wu, G.W.; Li, G.; Ke, D.X.; Li, X.; Zeng, M.; Hu, Y.M.; Gu, H.S.; Li, Y.B. Synthesis and photoluminescence properties of novel far-red emitting garnet phosphor Y3Ga3MgSi(1−y)GeyO12: Mn4+. J. Lumin. 2025, 277, 120897. [Google Scholar]
- Huang, S.; Shang, M.M.; Peng, K.L.; Zhao, Y.J.; Wang, J.D.; Yu, L.X. Garnet-type far-red emitting Li6CaLa2Nb2O12: Mn4+, Bi3+ phosphor for full-spectrum white LED. J. Lumin. 2022, 243, 118649. [Google Scholar]
- Wang, S.; Han, Y.J.; Lu, X.L.; Guo, Y.N.; Wang, Z.Y.; Zhang, B.; Mu, Z.F.; Shen, S.B.; Zhang, Z.W.; Song, A.J. A dual-emission Ca9MgLi(PO4)7: Ce3+, Mn2+ phosphor with energy transfer for plant-lighting. Opt. Mater. 2020, 108, 110201. [Google Scholar]
- Sun, K.; Yin, X.M.; Li, Z.Q.; Lin, H.; Hong, R.J.; Zhang, D.W.; Zhang, Z.J.; Zheng, G.H.J.; Ding, Y.C. Far-red emitting MgAl2O4: Cr3+ ceramic phosphors with luminescence thermal stability for plant lighting LEDs. Opt. Mater. Express 2022, 12, 2942–2953. [Google Scholar] [CrossRef]
- Khoury, H.N.; Sokol, E.V.; Kokh, S.N.; Seryotkin, Y.V.; Nigmatulina, E.N.; Goryainov, S.V.; Belogub, E.V.; Clark, I.D. Tululite, Ca14(Fe3+, Al)(Al, Zn, Fe3+, Si, P, Mn, Mg)15O36: A new Ca zincate-aluminate from combustion metamorphic marbles, central Jordan. Mineral. Petrol. 2016, 110, 125–140. [Google Scholar] [CrossRef]
- Yang, C.; Zhang, Z.F.; Hu, G.C.; Cao, R.; Liang, X.J.; Xiang, W.D. A novel deep red phosphor Ca14Zn6Ga10O35: Mn4+ as color converter for warm W-LEDs: Structure and luminescence properties. J. Alloys Compd. 2017, 694, 1201–1208. [Google Scholar] [CrossRef]
- Li, W.; Gao, X.J.; Yang, X.L.; Jin, X.L.; Xiao, S.G. Intense 1.85 μm emission of Tm3+ sensitized by Mn4+ in Mn4+/Tm3+ co-doped Ca14Zn6Al10O35 phosphor. J. Alloys Compd. 2016, 664, 181–187. [Google Scholar] [CrossRef]
- Sun, F.Q.; Xie, R.R.; Guan, L.; Zhang, C.Y. Cr3+ doped Ca14Zn6Ga10O35: A near-infrared long persistent luminescence phosphor. J. Lumin. 2016, 180, 251–257. [Google Scholar] [CrossRef]
- Sun, F.Q.; Xie, R.R.; Li, G.; Zhang, C.Y. The near-infrared long-persistent phosphorescence of Cr3+-activated non-gallate phosphor. Mater. Lett. 2016, 164, 39–43. [Google Scholar] [CrossRef]
- Gao, X.J.; Xia, W.B.; Chen, T.J.; Yang, X.L.; Jin, X.L.; Xiao, S.G. Conversion of broadband UV-visible light to near infrared emission by Ca14Zn6Al10O35: Mn4+, Nd3+/Yb3+. RSC Adv. 2016, 6, 7544–7552. [Google Scholar] [CrossRef]
- Gao, X.J.; Li, W.; Yang, X.L.; Jin, X.L.; Xiao, S.L. Near-infrared emission of Er3+ sensitized by Mn4+ in Ca14Zn6Al10O35 matrix. J. Phys. Chem. C 2015, 119, 28090–28098. [Google Scholar] [CrossRef]
- Fan, Y.; Li, Z.; Zhang, S.; Al-Hada, N.M.; Lin, X.; Li, C.; Lv, Y. Promoting NIR-driven luminescence activity of calcium zinc galliumate via energy transfer from Mn4+ to Ho3+ for second biological window. Eur. J. Inorg. Chem. 2024, 27, e202300704. [Google Scholar] [CrossRef]
- Liao, Z.F.; Xu, H.F.; Zhao, W.R.; Yang, H.X.; Zhong, J.Y.; Zhang, H.; Nie, Z.G.; Zhou, Z.K. Energy transfer from Mn4+ to Mn5+ and near infrared emission with wide excitation band in Ca14Zn6Ga10O35: Mn phosphors. Chem. Eng. J. 2020, 395, 125060. [Google Scholar] [CrossRef]
- Xiang, J.; Zhou, X.; Zhao, X.; Wu, Z.; Chen, C.; Zhou, X.; Guo, C. Ab initio site-selective occupancy and luminescence enhancement in broadband NIR emitting phosphor Mg7Ga2GeO12: Cr3+. Laser Photonics Rev. 2023, 17, 2200965. [Google Scholar] [CrossRef]
- Zhao, W.Y.; Chen, M.Y.; Wu, H.R.; Li, W.D.; Lu, B.A. Phosphorus-doping enables the superior durability of a palladium electrocatalyst towards alkaline oxygen reduction Reactions. Materials 2024, 17, 2879. [Google Scholar] [CrossRef]
- Zhang, M.; Li, B.; Yang, Y.S.; Chen, S.J.; He, X.; Zhao, F.H.; Zeng, Q.G. Correlation between structure and optical properties in (Y,Lu)3Al5O12: Ce3+ solid solutions. J. Phys. D Appl. Phys. 2016, 49, 415101. [Google Scholar] [CrossRef]
- Liu, S.; Zhang, S.; Mao, N.; Song, Z.; Liu, Q. Broadband deep-red-to-near-infrared emission from Mn2+ in strong crystal-field of nitride MgAlSiN3. J. Am. Ceram. Soc. 2020, 103, 6793–6800. [Google Scholar] [CrossRef]
- Chen, M.H.; Fan, H.; Lu, Z.Z.; Song, J.Y.; Zhang, X.G.; Pang, Q.; Chen, P.C.; Zhou, L.Y. Energy transfer realizes efficient NIR emitting Ca2ScTaO6: Cr3+, Yb3+ perovskite-structured phosphors. Ceram. Int. 2023, 49, 15717–15725. [Google Scholar] [CrossRef]
- Chen, W.; Shen, L.; Shen, C.; Zhang, Z.; Liang, X.; Xiang, W. Mn4+-related photoemission enhancement via energy transfer in La2MgGeO6: Dy3+, Mn4+ phosphor for plant growth light-emitting diodes. J. Am. Ceram. Soc. 2019, 102, 331–341. [Google Scholar] [CrossRef]
- Yang, H.; Xiahou, J.Q.; Zhu, Q.; Li, J.G. Considerable improved near-infrared luminescence in ionic-free doped ZnAl2O4 by oxygen defects engineering. J. Lumin. 2023, 253, 119455. [Google Scholar] [CrossRef]
- Pan, X.; Mei, L.F.; Zhuang, Y.X.; Seto, T.; Wang, Y.H.; Plyaskin, M.; Xi, W.; Li, C.; Guo, Q.F.; Liao, L.B. Anti-Defect engineering toward high luminescent efficiency in whitlockite phosphors. Chem. Eng. J. 2022, 434, 134652. [Google Scholar] [CrossRef]
- Chen, Y.B.; Yang, C.H.; Deng, M.P.; He, J.; Xub, Y.Q.; Liu, Z.Q. A highly luminescent Mn4+ activated LaAlO3 far-red-emitting phosphor for plant growth LEDs: Charge compensation induced Mn4+ incorporation. Dalton Trans. 2019, 48, 6738–6745. [Google Scholar] [CrossRef] [PubMed]
- Xu, S.; Yang, L.; Wang, Z.; Li, F.; Zhang, X.; Zhou, J.; Lv, D.; Ding, Y.; Sun, W. Few-layered black phosphorene as hole transport layer for novel all-inorganic perovskite solar cells. Materials 2025, 18, 415. [Google Scholar] [CrossRef]
- Dexter, D.L.; Schulman, J.H. Theory of concentration quenching in inorganic phosphors. Chem. Phys. 1954, 22, 1063–1070. [Google Scholar] [CrossRef]
- Li, J.; Lou, J.; Xiong, X.; Ye, H.Y.; Qiao, L.; Zheng, J.W.; Yu, J.; Ying, Y.; Cai, W.; Che, S.L. Effects of molten salt assistance on reaction pathways and luminescent properties of Ca14Zn6Ga10O35: Mn4+ phosphors. Ceram. Int. 2025, 51, 36294–36305. [Google Scholar] [CrossRef]
- Tolkacheva, A.; Shkerin, S.N.; Kuzmin, A.; Plaksin, S.V.; Korzun, I.; Kochedykov, V.A.; Yaroslavtseva, T.V. Synthesis, structure, and thermal properties of Ca5Ga6O14. Russ. J. Phys. Chem. 2018, 92, 1243–1247. [Google Scholar] [CrossRef]
- Hu, T.; Gao, Y.; Wang, B.; Yu, T.; Wen, D.W.; Cheng, Y.; Zenga, Q.G. A new class of battery-free, mechanically powered, piezoelectric Ca5Ga6O14: Tb3+ phosphors with self-recoverable luminescence. J. Mater. Chem. C 2022, 10, 9554–9562. [Google Scholar] [CrossRef]
- Bazzaoui, H.; Gao, M.G.; Hernandez, O.; Chenu, S.; He, L.J.; Genevois, C.; Veron, E.; Campo, L.D.; Allix, M.; Darling, G.; et al. La substitution into the melilite derivative Ca5Ga6O14: Prediction, synthesis and ionic conductivity. Inorg. Chem. 2024, 63, 18902–18913. [Google Scholar] [CrossRef]
- Ji, H.P. Spectroscopy fundamentals of Mn4+ Ions. Chin. J. Lumin. 2022, 43, 1175–1187. (In Chinese) [Google Scholar] [CrossRef]
- Brik, M.G.; Srivastava, A.M. Electronic energy levels of the Mn4+ ion in the perovskite, CaZrO3. ECS J. Solid State Sci. Technol. 2013, 2, R148–R152. [Google Scholar] [CrossRef]
- Brik, M.G.; Camardello, S.J.; Srivastava, A.M.; Avram, N.M.; Suchocki, A. Spin-forbidden transitions in the spectra of transition metal ions and nephelauxetic effect. ECS J. Solid State Sci. Technol. 2016, 5, R3067–R3077. [Google Scholar] [CrossRef]
- Brik, M.G.; Camardello, S.J.; Srivastava, A.M. Influence of covalency on the Mn4+ 2Eg→4A2g emission energy in crystals. ECS J. Solid State Sci. Technol. 2014, 4, R39. [Google Scholar] [CrossRef]
- Yuta, Y.; Eiki, N.; Masahiro, M.; Kotaro, F.; Masatomo, Y. Discovery of a rare-earth-free oxide-ion conductor Ca3Ga4O9 by screening through bond valence-based energy calculations, synthesis, and characterization of structural and transport properties. Inorg. Chem. 2019, 58, 9460–9468. [Google Scholar]
- Yin, L.; Wang, Y.; Pan, L.; Qiao, S.; Zhang, M.; Li, Y.; Townsend, P.D. Enhancing the optical information storage performance of Ca3Ga4O9: Bi3+ by co-doping with Zn2+ ions. Opt. Mater. 2022, 125, 112129. [Google Scholar] [CrossRef]
- Xue, W.H.; Lei, X.Y.; Liu, Y.G.; Wu, X.; Zhai, S.G. Stability of low-pressure and high-pressure CaGa2O4 polymorphs at elevated temperatures: Raman spectroscopic study. Vib. Spectrosc. 2022, 20, 103379. [Google Scholar] [CrossRef]
- Tatumi, S.H.; Soares, A.D.F.; Tudela, D.R.G.; Gonçalves, K.A.; Rocca, R.R. Sol-gel synthesis of strontium aluminate phosphor and its TL and OSL properties. Radiat. Phys. Chem. 2019, 157, 15–21. [Google Scholar] [CrossRef]
- Krasnikov, A.; Suchocki, A.; Tsiumra, V.; Vasylechko, L.; Wachnicki, L.; Zazubovich, S.; Zhydachevskyy, Y. Photoluminescence of the undoped and Bi3+-Doped Ca3Ga2Ge3O12 garnets. J. Lumin. 2021, 235, 118065. [Google Scholar] [CrossRef]
- Zorenko, T.; Gorbenko, V.; Witkiewicz, S.; Zorenko, Y. Study of the luminescence of Eu2+ and Eu3+ states in Ca3Ga2Ge3O12: Eu garnet using synchrotron radiation excitation. Opt. Mater. 2020, 99, 109498. [Google Scholar] [CrossRef]
- Li, J.P.; Tu, Z.Y.; Zheng, Y.K.; Zeng, Q.; Hu, Q.; Li, Q.; Xiang, X.F.; Kong, Y.C.; Zhang, H.Z.; Wang, B.; et al. Zero-thermal-quenching and charge compensation for efficient luminescence in Ca9ZnK(PO4)7: Sm3+: Optimizing defect engineering. Ceram. Int. 2024, 50, 9869–9877. [Google Scholar]
- Cai, P.Q.; Qin, L.; Chen, C.L.; Wang, J.; Seo, H.J. Luminescence, energy transfer and optical thermometry of a novel narrow red emitting phosphor: Cs2WO2F4:Mn4+. Dalton Trans. 2017, 46, 14331–14340. [Google Scholar] [CrossRef]
- Manaka, M.C.; Mothudi, B.M.; Dhlamini, M.S. Photoluminescence and thermoluminescence properties of manganese doped BaAl2O4 phosphor. Mater. Sci. Eng. B 2022, 278, 115604. [Google Scholar] [CrossRef]
- Qin, L.; Cai, P.Q.; Chen, C.L.; Wang, J.; Seo, H.J. Synthesis, structure and optical performance of red-emitting phosphor Ba5AlF13:Mn4+. RSC Adv. 2017, 7, 49473–49479. [Google Scholar] [CrossRef]
- Jiang, B.; Mao, J.S.; Chi, F.F.; Chen, Y.H.; Yin, M. Investigation on the luminescent properties of a novel Bi3+ based blue long afterglow phosphor Ca14Ga10Zn6O35:Bi3+. Opt. Mater. 2021, 120, 111436. [Google Scholar] [CrossRef]
- Bessière, A.; Sharma, S.K.; Basavaraju, N.; Priolkar, K.R.; Binet, L.; Viana, B.; Bos, A.J.J.; Maldiney, T.; Richard, C.; Scherman, D.; et al. Storage of visible light for long-lasting phosphorescence in chromium-doped zinc gallate. Chem. Mater. 2014, 26, 1365–1373. [Google Scholar] [CrossRef]
- Dai, T.S.; Ju, G.F.; Lv, Y.; Jin, Y.H.; Wu, H.Y.; Hu, Y.H. Luminescence properties of novel dual-emission (UV/red) long afterglow phosphor LiYGeO4: Eu3+. J. Lumin. 2021, 237, 118193. [Google Scholar] [CrossRef]
- Wu, M.H.; Chen, B.L.; He, C.; Huang, X.M.; Liu, Q.Y.; Min, X.; Mi, R.Y.; Wu, X.W.; Fang, M.H.; Liu, Y.G.; et al. A high quantum yield red phosphor NaGdSiO4: Eu3+ with intense emissions from the 5D0→7F1,2 transition. Ceram. Int. 2022, 48, 23213–23223. [Google Scholar] [CrossRef]
- Yang, Z.F.; Yang, L.L.; Ji, C.J.; Xu, D.H.; Zhang, C.Q.; Bu, H.X.; Tan, X.; Yun, X.Y.; Sun, J.Y. Studies on luminescence properties of double perovskite deep red phosphor La2ZnTiO6: Mn4+ for indoor plant growth LED applications. J. Alloys Compd. 2019, 802, 628–635. [Google Scholar] [CrossRef]
- Sun, Q.; Wang, S.Y.; Devakumar, B.; Li, B.; Sun, L.L.; Liang, J.; Chen, D.Q.; Huang, X.Y. Novel far-red-emitting SrGdAlO4: Mn4+ phosphors with excellent responsiveness to phytochrome Pfr for plant growth lighting. RSC Adv. 2018, 8, 39307–39313. [Google Scholar] [CrossRef]
- Shi, L.; Han, Y.J.; Wang, H.X.; Shi, D.C.; Geng, X.Y.; Zhang, Z.W. High-efficiency and thermally stable far-red emission of Mn4+ in double cubic perovskite Sr9Y2W4O24 for plant cultivation. J. Lumin. 2019, 208, 307–312. [Google Scholar] [CrossRef]
- Shi, L.; Han, Y.J.; Ji, Z.X. Highly efficient and thermally stable CaYMgSbO6: Mn4+ double perovskite red phosphor for indoor plant growth. J. Mater. Sci. Mater. Electron. 2019, 30, 3107–3113. [Google Scholar] [CrossRef]
- Wang, S.Y.; Sun, Q.; Devakumar, B.; Liang, J.; Sun, L.L.; Huang, X.Y. Novel Ca2GdTaO6: Mn4+, M (M = Li+, Na+, K+, and Mg2+) red phosphors for plant cultivation light-emitting diodes: Synthesis and luminescence properties. J. Lumin. 2019, 214, 116525. [Google Scholar] [CrossRef]
- Shi, L.; Wang, S.; Han, Y.J.; Ji, Z.X.; Ma, D.; Mu, Z.F.; Mao, Z.Y.; Wang, D.J.; Zhang, Z.W.; Liu, L. Sr2LaSbO6: Mn4+ far-red phosphor for plant cultivation: Synthesis, luminescence properties and emission enhancement by Al3+ ions. J. Lumin. 2020, 221, 117091. [Google Scholar] [CrossRef]
- Shi, L.; Han, Y.J.; Zhao, Y.; Li, M.; Geng, X.Y.; Zhang, Z.W.; Wang, L.J. Synthesis and photoluminescence properties of novel Sr3LiSbO6:Mn4+ red phosphor for indoor plant growth. Opt. Mater. 2019, 89, 609–614. [Google Scholar] [CrossRef]
- Zhao, Y.; Shi, L.; Han, Y.J.; Li, H.H.; Ji, Z.X.; Zhang, Z.W. Luminescent properties of Zn2+-doped CaAl12O19: Mn4+ deep-red phosphor for indoor plant cultivation. Ceram. Int. 2019, 45, 8265–8270. [Google Scholar] [CrossRef]
- Mo, F.W.; Lu, Z.Z.; Zhou, L.Y. Synthesis and luminescence properties of Mn4+-activated Ba2LaSbO6 deep-red phosphor. J. Lumin. 2019, 205, 393–399. [Google Scholar] [CrossRef]
- Shi, L.; Wang, S.; Han, Y.J.; Ji, Z.X.; Liu, L.; Ma, D.; Mu, Z.F.; Mao, Z.Y.; Wang, D.J.; Zhang, Z.W.; et al. Effects of Ti4+- and W6+-substitution on photoluminescence properties of Sr2GdSbO6: Mn4+ phosphor for plant cultivation. J. Alloys Compd. 2020, 829, 154475. [Google Scholar] [CrossRef]
- Liang, J.; Sun, L.L.; Devakumar, B.; Wang, S.Y.; Sun, Q.; Guo, H.; Bin, L.; Huang, X.Y. Novel Mn4+-activated LiLaMgWO6 far-red emitting phosphors: High photoluminescence efficiency, good thermal stability, and potential applications in plant cultivation LEDs. RSC Adv. 2018, 8, 27144–27151. [Google Scholar] [CrossRef] [PubMed]









| Dq | Dq/B | B | C | β1 | |
|---|---|---|---|---|---|
| CMLIGO:0.05Mn4+ | 2114 | 2.87 | 736.7 | 2799.6 | 0.909 |
| CMLIGO:0.05Mn4+@2 wt% MgCl2 | 2119 | 2.99 | 708.1 | 2859.3 | 0.902 |
| CMLIGO:0.05Mn4+@3 wt% MgCl2 | 2117 | 3.00 | 705.0 | 2866.2 | 0.902 |
| CMLIGO:0.05Mn4+@4 wt% MgCl2 | 2114 | 2.98 | 710.3 | 2854.7 | 0.903 |
| CMLIGO:0.05Mn4+@5 wt% MgCl2 | 2119 | 2.99 | 708.1 | 2859.3 | 0.902 |
| TG Loss Step | Experimental Weight Loss Percentage (wt%) | Corresponding Reaction | Theoretical Weight Loss Percentage (wt%) |
|---|---|---|---|
| loss step 1 | 4.43 | The dehydration of 4MgCO3·Mg(OH)2·5H2O; | 3.66 |
| loss step 2 | 8.11 | MnCO3 → MnO + CO2 MgCO3 → MgO + CO2 Mg(OH)2 → MgO + H2O | 7.96 |
| loss step 3 | 20.99 | CaCO3 → CaO + CO2 Li2CO3 → Li2O + CO2 | 21.11 |
| TG Loss Step | Experimental Weight Loss Percentage (wt%) | Corresponding Reaction | Theoretical Weight Loss Percentage (wt%) |
|---|---|---|---|
| loss step 1 | 5.18 | The dehydration of 4MgCO3·Mg(OH)2·5H2O; The evaporation of adsorbed water | ≥3.59 |
| loss step 2 | 8.07 | MnCO3 → MnO + CO2 MgCO3 → MgO + CO2 Mg(OH)2 → MgO + H2O | 7.80 |
| loss step 3 | 19.37 | CaCO3 → CaO + CO2 Li2CO3 → Li2O + CO2 | 20.70 |
| τ1 (ms) | τ2 (ms) | A1 | A2 | τavg (ms) | |
|---|---|---|---|---|---|
| CMLIGO:0.05Mn4+ | 1.27 | 3.17 | 375.82 | 2473.45 | 3.06 |
| CMLIGO:0.05Mn4+@3 wt% MgCl2 | 0.58 | 3.07 | 218.38 | 2783.23 | 3.03 |
| Tm (K) | Etrap (eV) | |
|---|---|---|
| CMLIGO:0.05Mn4+ | 411.29 | 0.823 |
| 466.58 | 0.933 | |
| 574.62 | 1.149 | |
| CMLIGO:0.05Mn4+@3 wt% MgCl2 | 436.31 | 0.873 |
| 569.61 | 1.139 |
| Phosphor | IQE |
|---|---|
| CMLIGO:0.05Mn4+@3 wt% MgCl2 | 91.4% (this work) |
| Sr9Y2W4O24:0.005Mn4+ | 49.8% [76] |
| Li2MgTi3O8:0.01Cr3+, 0.1Zn2+ | 41.3% [23] |
| CaYMgSbO6:0.002Mn4+ | 51.5% [77] |
| Ca2GdTaO6:0.004Mn4+ | 33.0% [78] |
| Sr2LaSbO6:0.008Mn4+, 0.008Al3+ | 38.1% [79] |
| Sr3LiSbO6:0.003Mn4+ | 52.3% [80] |
| Ca0.96Zn0.04Al12O19:0.005Mn4+ | 67.1% [81] |
| SrMgAl10O17:0.003Cr3+ | 44.1% [24] |
| Ba2LaSbO6:0.0013Mn4+ | 20.2% [82] |
| Sr2GdSbO6:0.004Mn4+, 0.004 W6+ | 40.1% [83] |
| LiLaMgWO6:0.007Mn4+ | 69.1% [84] |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Li, J.; Ye, H.; Zhong, F.; Wu, P.; Chang, M.; Han, L.; Zheng, J.; Qiao, L.; Yu, J.; Ying, Y.; et al. A Novel Strategy for High Quantum Efficiency Composite Oxide Far-Red Phosphors: Ca14Mg5.94Li0.03In0.03Ga9.95O35:0.05Mn4+. Materials 2026, 19, 1367. https://doi.org/10.3390/ma19071367
Li J, Ye H, Zhong F, Wu P, Chang M, Han L, Zheng J, Qiao L, Yu J, Ying Y, et al. A Novel Strategy for High Quantum Efficiency Composite Oxide Far-Red Phosphors: Ca14Mg5.94Li0.03In0.03Ga9.95O35:0.05Mn4+. Materials. 2026; 19(7):1367. https://doi.org/10.3390/ma19071367
Chicago/Turabian StyleLi, Juan, Huiying Ye, Fachangsheng Zhong, Peng Wu, Menghao Chang, Linkun Han, Jingwu Zheng, Liang Qiao, Jing Yu, Yao Ying, and et al. 2026. "A Novel Strategy for High Quantum Efficiency Composite Oxide Far-Red Phosphors: Ca14Mg5.94Li0.03In0.03Ga9.95O35:0.05Mn4+" Materials 19, no. 7: 1367. https://doi.org/10.3390/ma19071367
APA StyleLi, J., Ye, H., Zhong, F., Wu, P., Chang, M., Han, L., Zheng, J., Qiao, L., Yu, J., Ying, Y., Cai, W., & Che, S. (2026). A Novel Strategy for High Quantum Efficiency Composite Oxide Far-Red Phosphors: Ca14Mg5.94Li0.03In0.03Ga9.95O35:0.05Mn4+. Materials, 19(7), 1367. https://doi.org/10.3390/ma19071367

