发光
巴(单位)
材料科学
温度计
激光器
光电子学
光子上转换
超高真空
强度(物理)
辐照
光学
纳米技术
物理
量子力学
气象学
核物理学
作者
Marcin Runowski,Przemysław Woźny,Stefan Lis,V. Lavı́n,I.R. Martı́n
标识
DOI:10.1002/admt.201901091
摘要
Abstract Currently the lowest optically determinable pressure values are around 10 2 bar, making the pressure below inaccessible for optical detection. This work shows for the first time how to overcome these limitations, and optically monitor the low pressure values in a vacuum region (from ≈10 −5 to 10 −2 bar), utilizing the light‐induced and pressure‐governed heating–cooling of the material. Herein, the well‐defined temperature dependency of the luminescence intensity ratio of the Er 3+ thermally‐coupled levels (TCLs), is used to monitor the elevation of local temperature of the upconverting material (YVO 4 :Yb 3+ ‐Er 3+ ), induced by a NIR laser irradiation. The unprecedented enhancement (≈20 times) of the laser‐induced heating of the sample observed under vacuum conditions, is used to convert the luminescent thermometer into the remote vacuum sensor. The variations of pressure in the system are correlated with changes of the band intensity ratio (525/550 nm) of Er 3+ TCLs, which are further applied for the remote, contactless vacuum sensing.
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