研究目的
To prepare and characterize novel dense Gd3+ doped Bi2O3-GeO2 glasses and glass-ceramics for potential applications in solid-state lighting.
研究成果
The study successfully synthesized Gd3+ doped Bi2O3-GeO2 glasses and glass-ceramics with high density and promising luminescent properties for solid-state lighting applications. The GC-2Gd sample showed the most promising white light emission characteristics.
研究不足
The study is limited by the specific compositions and doping levels of Gd3+ ions investigated. The transparency of samples reduced with higher Gd3+ content, and for x=3 and 4 mol% doped samples, it became negligible with milky white body color.
1:Experimental Design and Method Selection
The study involved the synthesis of gadolinium doped Bi2O3-GeO2 glasses and glass-ceramics using the melt quenching method followed by heat treatment. Structural and optical properties were analyzed using XRD, FTIR, absorption, and emission spectroscopy.
2:Sample Selection and Data Sources
Samples with (100-x)(0.2Bi2O3-0.8GeO2)-xGd2O3 (x=0, 1, 2, 3, 4 in mol%) composition were prepared. Raw materials included Bi2O3, GeO2, and Gd2O3.
3:List of Experimental Equipment and Materials
Rigaku-Rint 2200/PC (Ultima 3) diffractometer for XRD, Perkin-Elmer Lambda 25 UV-Vis spectrometer for absorption measurements, FluoroMax-4 spectrofluorometer for photoluminescence measurements, Perkin-Elmer BX-II FTIR spectrometer for IR spectra.
4:Experimental Procedures and Operational Workflow
The mixtures were heated to 1075°C, poured into a preheated graphite plate, and cooled. Glass-ceramics were obtained by heating precursor glasses above the crystallization temperature. Samples were polished for optical measurements.
5:Data Analysis Methods
Optical band gaps were determined from Tauc plots. CIE color coordinates and CCT values were calculated from emission spectra.
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