Defect band enhanced Ca9Y(VO4)7: Yb3+/Er3+/Sr2+ phosphor upconversion luminescence for multimode optical temperature measurement
Abstract
This study explored the enhancement of strong red and near-infrared emissions in Ca9Y(VO4)7: Yb3+/Er3+ through doping with Sr2+ ions under a 980 nm laser. The phosphor exhibits weak green (528 nm, 2H11/2 → 4I15/2 and 550 nm, 4S3/2 → 4I15/2) and red (654 nm, 4F9/2 → 4I15/2) emissions, alongside a strong emission in the near-infrared range (807 nm, 4I9/2 → 4I15/2). The optimal doping concentration of Sr2+ in Ca9Y(VO4)7: Yb3+/Er3+ is 0.2, and the upconversion quantum yield is 4.91%. The enhancement of upconversion red and near-infrared emissions is ascribed to defect bands, playing a crucial role in facilitating the energy transfer from green levels to red and near-infrared levels. A multi-mode temperature sensor of Ca9Y(VO4)7: Yb3+/Er3+/Sr2+ phosphor was developed, featuring three temperature sensing modes based on the luminescent intensity ratio of 4F9/2/4I9/2 and 2H11/2/4S3/2 thermally coupled levels, as well as the LIR of 2H11/2/4F9/2 non-thermally coupled levels. Corresponding maximum relative sensitivities were 0.85% K−1 at 298 K, 1.18% K−1 at 298 K and 1.21% K−1 at 298 K, respectively. The phosphor demonstrates notable temperature sensitivity, highlighting its potential in optical temperature sensing. This study introduces an innovative platform for crafting multi-mode self-reference optical temperature sensors, presenting substantial advancements in the field.