Liu Heng, Zhao Meng, Gong Yongkang, Li Kang, Wang Cong, Wei Yuchen, Wang Jun, Liu Guozhen, Yao Jinlei, Li Ying, Li Zheyi, Gao Zhiqiang, Gao Ju
Jiangsu Key Laboratory of Micro and Nano Heat Fluid Flow Technology and Energy Application, Suzhou University of Science and Technology, Suzhou 215009, China.
School of Physics and Astronomy, Cardiff University, Cardiff CF24 3AA, UK.
Sensors (Basel). 2022 Feb 9;22(4):1313. doi: 10.3390/s22041313.
In this study, a multifunctional high-vacuum system was established to measure the electro-optical conversion efficiency of metamaterial-based thermal emitters with built-in heaters. The system is composed of an environmental control module, an electro-optical conversion measurement module, and a system control module. The system can provide air, argon, high vacuum, and other conventional testing environments, combined with humidity control. The test chamber and sample holder are carefully designed to minimize heat transfer through thermal conduction and convection. The optical power measurements are realized using the combination of a water-cooled KBr flange, an integrating sphere, and thermopile detectors. This structure is very stable and can detect light emission at the μW level. The system can synchronously detect the heating voltage, heating current, optical power, sample temperatures (both top and bottom), ambient pressure, humidity, and other environmental parameters. The comprehensive parameter detection capability enables the system to monitor subtle sample changes and perform failure mechanism analysis with the aid of offline material analysis using scanning electron microscopy, energy dispersive X-ray spectroscopy, and X-ray diffraction. Furthermore, the system can be used for fatigue and high-low temperature impact tests.
在本研究中,建立了一个多功能高真空系统,用于测量带有内置加热器的超材料热发射器的电光转换效率。该系统由一个环境控制模块、一个电光转换测量模块和一个系统控制模块组成。该系统可以提供空气、氩气、高真空和其他常规测试环境,并结合湿度控制。测试腔和样品架经过精心设计,以尽量减少通过热传导和对流的热传递。光功率测量通过水冷KBr法兰、积分球和热电堆探测器的组合来实现。这种结构非常稳定,能够检测到微瓦级别的光发射。该系统可以同步检测加热电压、加热电流、光功率、样品温度(顶部和底部)、环境压力、湿度以及其他环境参数。综合的参数检测能力使该系统能够监测样品的细微变化,并借助扫描电子显微镜、能量色散X射线光谱和X射线衍射等离线材料分析手段进行失效机理分析。此外,该系统还可用于疲劳和高低温冲击测试。