Miniaturized two-stack Blumlein pulser with a variable repetition-rate for non-thermal irreversible-electroporation experiments

作者:Min Sun Hong*; Kwon Ohjoon; Sattorov Matlabjon; Baek In Keun; Kim Seontae; Jeong Jin Young; Hong Dongpyo; Park Seunghyuk; Park Gun Sik
来源:Review of Scientific Instruments, 2017, 88(1): 014704.
DOI:10.1063/1.4973768

摘要

Non-thermal irreversible electroporation (NTIRE) to avoid thermal damage to cells during intense DC ns pulsed electric fields (nsPEFs) is a recent modality for medical applications. This mechanism, related to bioelectrical dynamics of the cell, is linked to the effect of a DC electric field and a threshold effect with an electrically stimulated membrane for the charge distribution in the cell. To create the NTIRE condition, the pulse width of the nsPEF should be shorter than the charging time constant of the membrane related to the cell radius, membrane capacitance, cytoplasm resistivity, and medium resistivity. It is necessary to design and fabricate a very intense nanosecond DC electric field pulser that is capable of producing voltages up to the level of 100 kV/cm with an artificial pulse width (similar to ns) with controllable repetition rates. Many devices to generate intense DC nsPEF using various pulse-forming line technologies have been introduced thus far. However, the previous Blumlein pulse-generating devices are clearly inefficient due to the energy loss between the input voltage and the output voltage. An improved two-stage stacked Blumlein pulse-forming line can overcome this limitation and decrease the energy loss from a DC power supply. A metal oxide silicon field-effect transistor switch with a fast rise and fall time would enable a high repetition rate (max. 100 kHz) and good endurance against very high voltages (DC similar to 30 kV). The load is designed to match the sample for exposure to cell suspensions consisting of a 200 Omega resistor matched with a Blumlein circuit and two electrodes without the characteristic RC time effect of the circuit (capacitance = 0.174 pF). Published by AIP Publishing.

  • 出版日期2017-1

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