Investigation of a Nonlinear XNOR Logic Gate Based on an Induced Nonlinear Phase Shift of Spin Waves

R. V. Haponchyk, I. Tatsenko, V. Vitko, A. A. Stashkevich, T. Goto, A. B. Ustinov
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Abstract

Introduction. Recent years have seen a growing interest in studying the nonlinear properties of spin waves. Nonlinear phenomena, such as envelope solitons, nonlinear frequency shifts of intense spin waves, and etc., have attracted particular attention. However, a number of important issues remain to be underexplored, including the problem of induced nonlinear phase shift of spin waves. The relevance of this problem is related to the need to develop spin-wave logic gates that could be controlled by changing the spin wave phase.Aim. To study a nonlinear XNOR logic gate whose operation is based on the induced nonlinear phase shift of a spin wave.Materials and methods. An original theory is used to simulate the frequency response of a nonlinear XNOR logic gate. The operating principle of the nonlinear XNOR logic gate is substantiated. The possibility of implementing the nonlinear XNOR logic gate in a circuit similar to a spin-wave Mach-Zehnder interferometer is experimentally demonstrated.Results. An experimental study of the induced nonlinear phase shift of operating signals incident on identical nonlinear spin-wave phase shifters located in the arms of the logic gate was carried out. It is shown that an increase in the pump signal power up to 60 mW, supplied to nonlinear phase shifters, changes the induced nonlinear phase shift of the operating signal by more than 180°. Hence, nonlinear phase shifters can be used for constructing spin-wave logic gates. In addition, the operating principle of a spin-wave logic gate was experimentally studied. It is shown that the XNOR logical function is implemented in the low-frequency part of the device’s frequency response characteristic.Conclusion. Numerical simulation of the characteristics of a nonlinear XNOR logic gate based on the Mach-Zehnder interferometer circuit was carried out. It is shown that its logical functions are implemented due to the effect of an induced nonlinear phase shift of spin waves in nonlinear phase shifters located in different arms of the logic gate.
基于自旋波非线性相移的非线性 XNOR 逻辑门研究
导言。近年来,人们对自旋波非线性特性的研究兴趣与日俱增。包络孤子、强自旋波的非线性频移等非线性现象尤其引人关注。然而,许多重要问题仍未得到充分探索,其中包括自旋波的诱导非线性相移问题。这一问题的相关性与开发可通过改变自旋波相位来控制的自旋波逻辑门的需要有关。研究一种非线性 XNOR 逻辑门,其工作原理基于自旋波的诱导非线性相移。使用原创理论模拟非线性 XNOR 逻辑门的频率响应。证实了非线性 XNOR 逻辑门的工作原理。实验证明了在类似自旋波马赫-泽恩德干涉仪的电路中实现非线性 XNOR 逻辑门的可能性。对位于逻辑门臂中的相同非线性自旋波移相器上入射的工作信号的诱导非线性相移进行了实验研究。结果表明,向非线性移相器提供的泵浦信号功率增加到 60 mW 时,工作信号的诱导非线性相移会发生 180° 以上的变化。因此,非线性移相器可用于构建自旋波逻辑门。此外,还对自旋波逻辑门的工作原理进行了实验研究。实验表明,XNOR 逻辑功能是在器件频率响应特性的低频部分实现的。对基于马赫-泽恩德干涉仪电路的非线性 XNOR 逻辑门的特性进行了数值模拟。结果表明,其逻辑功能的实现是由于位于逻辑门不同臂的非线性移相器中的自旋波的诱导非线性相移的影响。
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