Simultaneous realization of FIR-based multimode optical thermometry and photonic molecular logic gates in Er3+ and Yb3+ co-doped SrTiO3 phosphor

荧光粉 材料科学 光致发光 发光 分析化学(期刊) 兴奋剂 光电子学 大气温度范围 发射光谱 离子 光谱学 谱线 物理 化学 色谱法 量子力学 天文 气象学
作者
Ishant Kumar,Avinash Kumar,Sandeep Kumar,Govind B. Nair,H.C. Swart,Arvind K. Gathania
出处
期刊:Physica Scripta [IOP Publishing]
卷期号:98 (10): 105532-105532 被引量:24
标识
DOI:10.1088/1402-4896/acfa2b
摘要

Abstract Er 3+ and Yb 3+ co-doped SrTiO 3 phosphors were synthesized and characterized by using the x-ray powder diffraction method, field emission scanning electron microscopy, and photoluminescence spectroscopy. The samples were subjected to thorough luminescence analysis. Under 980 nm infrared (IR) excitation, the ( 2 H 11/2 , 4 S 3/2 ) → 4 I 15/2 and 4 F 9/2 → 4 I 15/2 transitions of Er 3+ gave green and red emissions, respectively. The up-conversion mechanism of the synthesized phosphor was studied using the power-dependent emission spectra of the SrTiO 3 :Yb 3+ , Er 3+ phosphor. A rate equation model for the up-conversion mechanism of SrTiO 3 :Yb 3+ , Er 3+ has been proposed. The temperature-dependent responses of various thermal and non-thermally coupled emission lines of Er 3+ ions were used to elaborate the thermal sensing capabilities of the synthesized phosphor. The fluorescence intensity ratio technique was used for the temperature sensing measurements. Sensing measurements were performed in the temperature range of 303 to 618 K. Relative sensitivities of 1.28% K −1 , 0.15% K −1 , 0.98% K −1 , and 0.15% K −1 were observed using various thermally and non-thermally coupled energy levels. Furthermore, using heat and incident IR excitation as physical inputs, we have shown that the synthesized phosphor can also be used to design various elementary logic gates such as AND, INHIBIT, and DEMULTIPLEX photonic molecular logic gates. A high switching ratio of ∼143% for the AND gate and ∼44.8% for the INHIBIT gate was observed using the scheme presented in this manuscript. The synthesized phosphor has the potential to be used as a bifunctional material for optical thermometry and molecular logic devices.
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