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GENERATION OF KILOVOLT, PICOSECOND ELECTRIC PULSES BY COHERENT COMBINING IN OPTOELECTRONIC SYSTEM

机译:通过相干在光电系统中的相干结合,千螺孔,皮秒电脉冲

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Nowadays, interactions between pulsed electromagnetic field and biological cells and tissues are particularly investigated to prevent any noxious effects and/or to develop therapeutic processes able to improve cancer treatment. Electrochemotherapy is an example which allows drugs delivery improvement thanks to local pulsed electric field application. Consequently, high voltage electrical nanosecond pulse generation has received great interest from the researchers working in the bioelectromagnetic domain. In that framework, we demonstrated that picosecond kilovolt generator activated by a nanosecond and femtosecond laser sources can be coupled with a Multiplex Coherent Anti-Stokes Raman Scattering system (M-CARS) to study the impact of electric pulses on biological cells. We generated kilovolt picosecond electric pulses by using a frozen-wave generator which integrated silicon PhotoConductive Semiconductors Switches (PCSSs). Because of the linear switching regime no temporal jitter is observed during the optical switching thus, coherent combining of short electric pulses can be obtained. Two semiconductors are activated with adjustable time delay, generating unipolar pulses with less than 60 ps rise time (pulse duration 100 ps). Balanced and unbalanced bipolar pulses have been also obtained with a peak to peak voltage of 1.4 kV and a total duration of 244 ps. The initial optical pulse may be used to produce a supercontinnum extended from the visible and up to infrared domain (2.4 μm). Thus synchronized M-CARS diagnosis can be realized when nanosecond and picosecond electric pulse excitation is applied to biological samples.
机译:如今,特别研究了脉冲电磁场​​和生物细胞和组织之间的相互作用以防止任何有害的效果和/或开发能够改善癌症治疗的治疗过程。电化学疗法是一种允许药物交付的例子,由于局部脉冲电场应用。因此,高压电纳秒脉冲产生已经从生物电磁结构域中工作的研究人员获得了极大的兴趣。在该框架中,我们证明,由纳秒和飞秒激光源激活的皮秒千伏发生器可以与多路复用相干反斯托克斯拉曼散射系统(M-CARS)联接,以研究电脉冲对生物细胞的影响。通过使用集成硅光电导通开关(PCSSS)的冻波发生器,通过冻结波发生器产生千伏皮秒电脉冲。由于线性切换状态,在光学切换期间没有观察到时间抖动,因此可以获得短电脉冲的相干组合。通过可调时间延迟激活两个半导体,产生小于60ps上升时间的单极脉冲(脉冲持续时间100 ps)。已经获得平衡和不平衡的双极脉冲,峰值达到1.4kV的峰值电压和总持续时间为244ps。初始光学脉冲可用于产生从可见光延伸的超征收in,直到红外域(2.4μm)。因此,当纳秒和皮秒电脉冲激发应用于生物样品时,可以实现同步的M-CARS诊断。

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