aDepartment of Applied Science and Humanities, United College of Engineering
and Research, Naini, Prayagraj – 211010, India
bDepartment of Electronics and Communication Engineering, Chandigarh
Engineering College, Chandigarh Group of Colleges, Jhanjeri-140307, India
cDepartment bDepartment of Interdisciplinary Courses in Engineering, Chitkara University Institute of Engineering and Technology, Chitkara University, India
dDepartment of Mechanical Engineering, United College of Engineering and
Research, Naini, Prayagraj – 211010, India
Journal of Optoelectronic and Biomedical Materials 2025, 17(2),41-49; https://doi.org/10.15251/JOBM.2025.172.41
Single-component phosphors for white-light emission are gaining interest among researchers. This paper presents a cost-effective synthesis of Dy3+ doped and un-doped ZnMoO4 by environment-friendly and auto-combustion process. The Dy3+ doped ZnMoO4 phosphor is well suited for single ingredient white-light emitting phosphor. The X-ray diffraction (XRD) pattern reflects a triclinic phase of un-doped and Dy3+ doped ZnMoO4 phosphor. The UV-Vis absorption analysis of Dy3+ doped ZnMoO4 depicts a blue shift in the absorption peak. A broadband photoluminescence (PL) emission was observed due to the charge transfer band from O2- to Mo6+/ Dy3+ . Broad PL emission was de-convoluted in the form of three intense emission peaks at 484 nm, 574 nm, and 661 nm for Dy3+ doped phosphor, correlated with Dy3+ transitions 4F9/2 → 6Hj (j = 15/2, 13/2, and 11/2).
Mechanism of energy transfer between [MoO4]2- to Dy3+ energy states discussed based on different transitions.

