Breakdown Voltage in Multi Walled Carbon- Nanotubes during Low Voltage (4 V) DC Switching

J. McBride, T. Bull
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Abstract

A metallic coated carbon nanotube surface, developed for use in a micro-electromechanical (MEMS) switching device, is investigated for performance, when switching 4 VDC, with current levels between 10 to 600 mA; with the objective of understanding the upper limits of the surface performance. The surface used is a Gold Coated (500 nm), forest of multi-walled carbon nanotubes (50 μm), referred to as Au/CNT. The surface has been previously investigated for endurance at low current levels of 4 μA, to characterize the cold switching performance over 4 billion switching cycles and tested in a cantilever MEMs test system with 10 mA (hot switching) over 0.5 billion cycles. This investigation studies the current loading level with a focus on the transient voltages during the opening process. The investigation is undertaken using a piezoelectric (PZT) actuator, as part of an in-situ test apparatus (ICE). Results are compared to the transient voltage on a reference carbon nanotube surface without the gold coating, under the same switching conditions. The results for the Au/CNT surface show that the voltage transients are dominated by molten metal bridge phenomena up to 300 mA above which a previously unreported switching transient is observed. The higher current levels (300 to 600 mA) are shown to puncture the gold surface after 10’s of switching cycles exposing the CNT. Under this condition the exposed CNT become conductive and thermally decompose (pyrolyze).
多壁碳纳米管在低压(4v)直流开关中的击穿电压
研究了一种用于微机电(MEMS)开关器件的金属涂层碳纳米管表面,当开关4 VDC时,电流水平在10至600 mA之间时的性能;目的是了解表面性能的上限。使用的表面是金涂层(500纳米),多壁碳纳米管(50 μm)森林,称为Au/CNT。该表面在4 μA的低电流水平下的耐久性已经进行了研究,以表征超过40亿次开关周期的冷开关性能,并在悬臂式MEMs测试系统中进行了10 mA(热开关)超过5亿次循环的测试。本文研究了电流负荷水平,重点研究了开启过程中的瞬态电压。该研究使用压电(PZT)致动器进行,作为原位测试装置(ICE)的一部分。在相同的开关条件下,将结果与未镀金的参考碳纳米管表面的瞬态电压进行了比较。金/碳纳米管表面的结果表明,电压瞬态由高达300 mA的熔融金属桥现象主导,在300 mA以上观察到以前未报道的开关瞬态。高电流水平(300至600毫安)显示,在10的开关周期暴露碳纳米管后,击穿金表面。在这种条件下,暴露的碳纳米管变得导电并热分解(热解)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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