Realization of the skyrmionic logic gates and diodes in the same racetrack with enhanced and modified edges

Author:

Shu Yun1ORCID,Li Qianrui1ORCID,Xia Jing12ORCID,Lai Ping3,Hou Zhipeng45ORCID,Zhao Yonghong1,Zhang Degang1,Zhou Yan6ORCID,Liu Xiaoxi7ORCID,Zhao Guoping12ORCID

Affiliation:

1. College of Physics and Electronic Engineering, Sichuan Normal University, Chengdu 610068, China

2. Center for Magnetism and Spintronics, Sichuan Normal University, Chengdu 610068, China

3. School of Electronic Information and Automation, Aba Teachers University, Wenchuan 623002, China

4. Guangdong Provincial Key Laboratory of Optical Information Materials and Technology, Guangzhou 510006, China

5. Institute for Advanced Materials, South China Academy of Advanced Optoelectronics, South China Normal University, Guangzhou 510006, China

6. School of Science and Engineering, The Chinese University of Hong Kong, Shenzhen, Guangdong 518172, China

7. Department of Electrical and Computer Engineering, Shinshu University, Wakasato 4-17-1, Nagano 380-8553, Japan

Abstract

Magnetic skyrmions are topological quasiparticles with nanoscale size and high mobility, which have potential applications in information storage and spintronic devices. Here, we computationally investigate the dynamics of isolated skyrmions in a ferromagnetic racetrack, where magnetic properties of the edges are enhanced and modified, forming a channel with lower magnetic anisotropy for skyrmion motion. It is found that the rectangular notch at the edge can have a pinning effect on the skyrmion and enrich the dynamics of the skyrmion. Based on the racetrack with modified edges and the notch, we design a racetrack that realizes the skyrmionic logic AND, OR, and NOT gates as well as the diode in the same magnetic racetrack. It is found that the driving current density could be much smaller than those used in previous designs of skyrmion-based logic gates. By slightly altering the shape of the racetrack, we also design the NAND and NOR gates. Finally, we study the feasibility of our design at finite temperatures. Our results may contribute to the design of nonvolatile spintronic devices with integrated multiple functions and ultra-low energy consumption.

Funder

National Natural Science Foundation of China

Central Government Funds of Guiding Local Scientific and Technological Development for Sichuan Province

National Key Research and Development Program of China

Science and Technology Program of Guangzhou

Guangdong Special Support Project

Shenzhen Fundamental Research Fund

Shenzhen Peacock Group Plan

Pearl River Recruitment Program of Talents

Grants-in-Aid Scientific Research from JSPS KAKENHI

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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