Automated Laser-Fiber Coupling Module for Optical-Resolution Photoacoustic Microscopy.
Seongyi HanHyunjun KyeChang-Seok KimTae-Kyoung KimJinwoo YooJeesu KimPublished in: Sensors (Basel, Switzerland) (2023)
Photoacoustic imaging has emerged as a promising biomedical imaging technique that enables visualization of the optical absorption characteristics of biological tissues in vivo. Among the different photoacoustic imaging system configurations, optical-resolution photoacoustic microscopy stands out by providing high spatial resolution using a tightly focused laser beam, which is typically transmitted through optical fibers. Achieving high-quality images depends significantly on optical fluence, which is directly proportional to the signal-to-noise ratio. Hence, optimizing the laser-fiber coupling is critical. Conventional coupling systems require manual adjustment of the optical path to direct the laser beam into the fiber, which is a repetitive and time-consuming process. In this study, we propose an automated laser-fiber coupling module that optimizes laser delivery and minimizes the need for manual intervention. By incorporating a motor-mounted mirror holder and proportional derivative control, we successfully achieved efficient and robust laser delivery. The performance of the proposed system was evaluated using a leaf-skeleton phantom in vitro and a human finger in vivo, resulting in high-quality photoacoustic images. This innovation has the potential to significantly enhance the quality and efficiency of optical-resolution photoacoustic microscopy.
Keyphrases
- high speed
- high resolution
- fluorescence imaging
- single molecule
- mass spectrometry
- room temperature
- optical coherence tomography
- gene expression
- magnetic resonance imaging
- machine learning
- endothelial cells
- magnetic resonance
- computed tomography
- photodynamic therapy
- convolutional neural network
- induced pluripotent stem cells
- single cell
- ionic liquid
- dual energy