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Logic Devices with Spin Wave Buses - an Approach to Scalable Magneto-Electric Circuitry

机译:具有自旋波总线的逻辑器件-一种可扩展的电磁电路的方法

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We analyze spin wave-based logic circuits as a possible route to building reconfigurable magnetic circuits compatible with conventional electron-based devices. A distinctive feature of the spin wave logic circuits is that a bit of information is encoded into the phase of the spin wave. It makes possible to transmit information as a magnetization signal through magnetic waveguides without the use of an electric current. By exploiting sin wave superposition, a set of logic gates such as AND, OR, and Majority gate can be realized in one circuit. We present experimental data illustrating the performance of a three-terminal micrometer scale spin wave-based logic device fabricated on a silicon platform. The device operates in the GHz frequency range and at room temperature. The output power modulation is achieved via the control of the relative phases of two input spin wave signals. The obtained data shows the possibility of using spin waves for achieving logic functionality. The scalability of the spin wave-based logic devices is defined by the wavelength of the spin wave, which depends on the magnetic material and waveguide geometry. Potentially, a multifunctional spin wave logic gate can be scaled down to 0.1μm~2. Another potential advantage of the spin wave-based logic circuitry is the ability to implement logic gates with fewer elements as compared to CMOS-based circuits in achieving same functionality. The shortcomings and disadvantages of the spin wave-based devices are also discussed.
机译:我们将基于自旋波的逻辑电路分析为构建与常规基于电子的设备兼容的可重构磁路的可能途径。自旋波逻辑电路的显着特征是将一些信息编码到自旋波的相位中。可以在不使用电流的情况下通过磁波导将信息作为磁化信号传输。通过利用正弦波叠加,可以在一个电路中实现一组逻辑门,例如AND,OR和Majority门。我们目前的实验数据说明了在硅平台上制造的基于三端微米规模自旋波的逻辑器件的性能。该设备在GHz频率范围和室温下运行。输出功率调制是通过控制两个输入自旋波信号的相对相位来实现的。获得的数据显示了使用自旋波实现逻辑功能的可能性。基于自旋波的逻辑器件的可伸缩性由自旋波的波长定义,该波长取决于磁性材料和波导的几何形状。多功能自旋波逻辑门可能会缩小到0.1μm〜2。与基于CMOS的电路相比,基于自旋波的逻辑电路的另一个潜在优势是能够以更少的元件实现逻辑门,以实现相同的功能。还讨论了基于自旋波的设备的缺点和缺点。

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