Production Technology Research Center, Kumoh National Institute of Technology, 61 Daehak-ro, Gumi 39177, Gyeongsangbuk-do, Republic of Korea.
Department of Optical Engineering, Kumoh National Institute of Technology, 350-27 Gumi-daero, Gumi 39253, Gyeongsangbuk-do, Republic of Korea.
Biosensors (Basel). 2022 Dec 10;12(12):1154. doi: 10.3390/bios12121154.
The photoacoustic (PA) effect occurs when sound waves are generated by light according to the thermodynamic and optical properties of the materials; they are absorption spectroscopic techniques that can be applied to characterize materials that absorb pulse or continuous wave (CW)-modulated electromagnetic radiation. In addition, the wavelengths and properties of the incident light significantly impact the signal-to-ratio and contrast with photoacoustic signals. In this paper, we reviewed how absorption spectroscopic research results have been used in applying actual photoacoustic effects, focusing on light sources of each wavelength. In addition, the characteristics and compositions of the light sources used for the applications were investigated and organized based on the absorption spectrum of the target materials. Therefore, we expect that this study will help researchers (who desire to study photoacoustic effects) to more efficiently approach the appropriate conditions or environments for selecting the target materials and light sources.
光声(PA)效应是根据材料的热力学和光学性质产生的声波,是可以应用于对吸收脉冲或连续波(CW)调制电磁辐射的材料进行特征分析的吸收光谱技术。此外,入射光的波长和性质会显著影响信号与光声信号的比值和对比度。在本文中,我们综述了吸收光谱研究结果如何应用于实际的光声效应,重点关注每个波长的光源。此外,我们还根据目标材料的吸收光谱,研究并组织了应用中所用光源的特性和组成。因此,我们希望本研究能帮助那些希望研究光声效应的研究人员更有效地选择目标材料和光源的合适条件或环境。