荧光粉
激发态
发光
兴奋剂
热稳定性
分析化学(期刊)
材料科学
化学
光电子学
原子物理学
物理
有机化学
色谱法
作者
Nan Zhou,Longhai Liu,Zhipeng Zhou,Zhang Ye,Minghui Li,Cheng Zhou,Mao Xia,Zhi Zhou
摘要
Abstract In the recent years, Mn 4+ ‐doped phosphors for indoor plant cultivation have received extensive concern owing to the far‐red emission that can match well with the absorption spectra of plant pigments. Whereas, many Mn 4+ ‐doped phosphors still face some challenges such as poor light efficiency and low thermal stability. It is an effective way to resolve these problems via cation vacancies engineering. Herein, the Ca 14− x Al 10 Zn 6− y O 35 : Mn 4+ phosphors are successfully synthesized by combustion method. The luminescence intensity of Ca 14− x Al 10 Zn 6− y O 35 : Mn 4+ phosphor is enhanced through engineering Ca 2+ and Zn 2+ vacancies according to the charge compensation mechanism. The optimal content of each Ca 2+ and Zn 2+ vacancy is equal to be 0.3. Furthermore, the defect formation is accompanied with lattice distortion, which plays a vital role in driving the excited phonon traps to reduce the energy loss by non‐radiation transitions. Therefore, the thermal stability of Ca 14− x Al 10 Zn 6− y O 35 : Mn 4+ phosphor is also improved via engineering cation vacancies. In addition, the Ca 14− x Al 10 Zn 6− y O 35 : Mn 4+ phosphors can be effectively excited by blue light and it exhibits far‐red emission due to the Mn 4+ spin‐forbidden 2 E → 4 A 2 transition. The results suggest that the Ca 14− x Al 10 Zn 6− y O 35 : Mn 4+ phosphors can have a tremendous potential in indoor plant cultivation.
科研通智能强力驱动
Strongly Powered by AbleSci AI