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Electric field imaging with vibrationally-resonant electric field-induced sum-frequency generation

机译:电场产生的振动共振电场和频率的成像

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We demonstrate all-optical sensing and imaging of quasi-DC electric fields using vibrationally-resonant electric field-induced sum-frequency generation (VR-EFSFG). Two femtosecond laser pulses at fixed 1035 and tunable 3500 nm are mixed in a cubically-nonlinear CH-rich sample to which an external field is applied by means of metallic electrodes defined via electron-beam lithography. The 2D images are acquired by raster scanning the lasers in an all-reflective laser scanning microscope. Photon-counting detection is implemented in transmission mode. Volt-level potentials across sub-micrometer gaps are imaged at a rate of approximately 0.5 frames per second. Signal enhancement of up to 50 times due to CH vibrational resonance is typically obtained, as veriied by wavelength tuning of the mid-IR laser in the range 2400-3400 wavenumbers. Nearly ideal quadratic dependence of the signal on quasi-DC ield amplitude is obtained conirming purely cubic nonlinear interaction in the sample. Using numerical modeling we establish the connection to imaging of transmembrane potential on neuronal axons and derive sensitivity limits of the method.
机译:我们演示了使用振动共振电场感应和频生成(VR-EFSFG)的准DC电场的全光传感和成像。在固定于1035和可调3500 nm的两个飞秒激光脉冲混合在立方非线性的富CH样品中,该样品通过通过电子束光刻定义的金属电极施加到外部磁场。通过在全反射激光扫描显微镜中对激光进行光栅扫描来获取2D图像。光子计数检测是在传输模式下实现的。跨亚微米间隙的伏特级电势以每秒约0.5帧的速率成像。通过中频激光在2400-3400波数范围内的波长调谐,可以确认由于CH振动共振,通常可获得高达50倍的信号增强。考虑到样本中的纯立方非线性相互作用,获得了信号对准DC产生幅度的近乎理想的二次依赖性。使用数值模型,我们建立了与神经元轴突上跨膜电位成像的联系,并得出了该方法的灵敏度极限。

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