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The ultimate switching speed limit of redox-based resistive switching devices

机译:氧化还原电阻切换装置的终极开关速度限制

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In contrast to classical charge-based memories, the binary information in redox-based resistive switching devices is decoded by a change of the atomic configuration rather than changing the amount of stored electrons. This offers in principle a higher scaling potential as ions are not prone to tunneling and the information is not lost by tunneling. The switching speed, however, is potentially smaller since the ionic mass is much higher than the electron mass. In this work, the ultimate switching speed limit of redox-based resistive switching devices is discussed. Based on a theoretical analysis of the underlying physical processes, it is derived that the switching speed is limited by the phonon frequency. This limit is identical when considering the acceleration of the underlying processes by local Joule heating or by high electric fields. Electra-thermal simulations show that a small filamentary volume can be heated up in picoseconds. Likewise, the characteristic charging time of a nanocrossbar device can be even below ps. In principle, temperature and voltage can be brought fast enough to the device to reach the ultimate switching limit. In addition, the experimental route and the challenges towards reaching the ultimate switching speed limit are discussed. So far, the experimental switching speed is limited by the measurement setup.
机译:与基于经典电荷的存储器相比,通过改变原子配置而不是改变所存储的电子量来解码基于氧化还原电阻切换装置的二进制信息。本原则上提出了更高的缩放潜力,因为离子不容易隧道,并且信息不会通过隧道丢失。然而,切换速度可能更小,因为离子质量远高于电子质量。在这项工作中,讨论了氧化还原基电阻切换装置的极限开关速度限制。基于对底层物理过程的理论分析,推导出开关速度受到声子频率的限制。当考虑到当地焦耳加热或高电场时,该限制是相同的。电热模拟表明,在皮秒中可以加热小的丝状体积。同样地,纳米杆装置的特征充电时间甚至可以低于PS。原则上,可以使温度和电压足够快,以达到最终的切换极限。此外,还讨论了实验路线和达到终极开关速度限制的挑战。到目前为止,实验开关速度受测量设置的限制。

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