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Large volumetric optical-resolution photoacoustic microscopy based on a tunable acoustic gradient lens and fiber delay network

机译:基于可调谐声学梯度镜头和光纤延迟网络的大容量光学分辨率光声学显微镜

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Photoacoustic imaging is a high-resolution and high-contrast technique, which combines optical contrast with ultrasonic detection to map the distribution of the absorbing pigments in biological tissues. As an important branch of photoacoustic imaging, optical-resolution photoacoustic microscopy (OR-PAM) suffers from narrow depth-of-field (DoF), since the lateral resolution is determined by tight optical focusing. The small DoF will prevent OR-PAM to achieve large volumetric imaging. Here, we developed an ultrafast axial-scanning multifocus photoacoustic microscope with extended depth-of-field based on a tunable acoustic gradient lens (TAG) and fiber delay network. The TAG lens is used to high -speed focus-shift. And a fiber delay network consists of three optical fibers with different lengths is used to split a single laser pulse into three sub-pulses with different delay time. A function generator generates a sinusoidal signal to drive the TAG lens at an eigenmode. The focusing power of the TAG lens will exhibit a sinusoidal oscillation at the frequency of the driving signal. Then, the three sub-pulses synchronizes with three vibration states of the TAG lens, respectively. Finally, we can obtain three focuses with different depth in one A-line data acquisition to improve the DoF. The DoF we measured by a vertically tilted carbon fiber is eatimated to larger than 775 u.m, which is ~ three times of that of single-focus PAM. The large DoF of large volumetric PAM was also verified by imaging a tungsten wire network. This system can achieve rapid and large-scale monitoring of physiological activities, which could expand the application of OR-PAM in biomedical researches.
机译:光声成像是一种高分辨率和高对比度技术,它与超声波检测结合了光学对比,以映射生物组织中吸收颜料的分布。作为光声成像的重要分支,光学分辨率的光声显微镜(或-PAM)遭受窄的场景(DOF),因为通过紧密的光学聚焦来确定横向分辨率。小型DOF将防止或PAM实现大容量成像。在这里,我们开发了一种超快轴向扫描多焦点光声显微镜,其基于可调声学梯度镜头(标签)和光纤延迟网络的延长场。标签镜头用于高 - 速度焦点。并且光纤延迟网络由三个具有不同长度的光纤组成,用于将单个激光脉冲分成三个子脉冲,具有不同的延迟时间。函数发生器产生正弦信号,以在特征模型驱动标签镜头。标签透镜的聚焦功率将在驱动信号的频率下表现出正弦振荡。然后,三个子脉冲分别与标签透镜的三个振动状态同步。最后,我们可以在一个A线数据采集中获得三个具有不同深度的焦点,以改善DOF。我们通过垂直倾斜的碳纤维测量的DOF被覆盖为大于775 U.m,这是单焦粉浆的三倍。通过成像钨丝网,还验证了大容量PAM的大型DOF。该系统可以实现对生理活动的快速和大规模监测,这可能扩大了生物医学研究中的或粉刷的应用。

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