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Memristive effects in oxygenated amorphous carbon nanodevices

机译:含氧非晶碳纳米烃中的椎体作用

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Computing with resistive-switching (memristive) memory devices has shown much recent progress and offers an attractive route to circumvent the von-Neumann bottleneck, i.e. the separation of processing and memory, which limits the performance of conventional computer architectures. Due to their good scalability and nanosecond switching speeds, carbon-based resistive-switching memory devices could play an important role in this respect. However, devices based on elemental carbon, such as tetrahedral amorphous carbon or ta-C, typically suffer from a low cycling endurance. A material that has proven to be capable of combining the advantages of elemental carbon-based memories with simple fabrication methods and good endurance performance for binary memory applications is oxygenated amorphous carbon, or a-COx. Here, we examine the memristive capabilities of nanoscale a-COx devices, in particular their ability to provide the multilevel and accumulation properties that underpin computing type applications. We show the successful operation of nanoscale a-COx memory cells for both the storage of multilevel states (here 3-level) and for the provision of an arithmetic accumulator. We implement a base-16, or hexadecimal, accumulator and show how such a device can carry out hexadecimal arithmetic and simultaneously store the computed result in the self-same a-COx cell, all using fast (sub-10 ns) and low-energy (sub-pJ) input pulses.
机译:使用电阻切换(Memristive)存储器件的计算已经显示了最近的进展,并提供了一种有吸引力的路线,以规避von-neumann瓶颈,即处理和内存的分离,这限制了传统计算机架构的性能。由于其良好的可扩展性和纳秒切换速度,基于碳的电阻切换存储器装置可以在这方面发挥重要作用。然而,基于元素碳的装置,例如四面体非晶碳或Ta-C,通常遭受低循环耐久性。已经证明能够将基于碳基存储器的优点与简单的制造方法和二进制存储器应用的良好耐久性性能相结合的材料是含氧化无定形碳,或A-Cox。在这里,我们检查纳米级A-Cox器件的Memristive功能,特别是它们提供了在计算类型应用程序的多级和累积特性的能力。我们展示了纳米级A-Cox存储器单元的成功操作,用于存储多级状态的存储(这里3级)和提供算术累加器。我们实现了一个基本-16,或十六进制,累加器,并展示这种设备如何执行十六进制算术,并同时将计算结果存储在自相同的A-Cox单元中,所有这些都使用快速(Sub-10 NS)和低能量(子PJ)输入脉冲。

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