TY - JOUR
T1 - Novel Cascadable Magnetic Majority Gates for Implementing Comprehensive Logic Functions
AU - Li, Xin
AU - Song, Min
AU - Xu, Nuo
AU - Luo, Shijiang
AU - Zou, Qiming
AU - Zhang, Shuai
AU - Hong, Jeongmin
AU - Yang, Xiaofei
AU - Min, Tai
AU - Han, Xiufeng
AU - Zou, Xuecheng
AU - Zhu, Jian Gang
AU - Salahuddin, Sayeef
AU - You, Long
N1 - Publisher Copyright:
© 1963-2012 IEEE.
PY - 2018/10
Y1 - 2018/10
N2 - In the quest for novel, scalable and energy-efficient computing technologies, spin-based logic devices are being extensively explored due to their potential for nonvolatility, small cell area, and low operational power. Spin torque majority gate (STMG) is one of the most promising options for beyond CMOS nonvolatile logic circuits for normally-off computing. However, significant problems arose with cascade-ability, signal nonreciprocity, and complicated circuit configurations based on STMG. In this paper, a novel magnetic majority gate (MMG) logic has been proposed, utilizing both spin transfer torque and spin-orbit torque effects. A logic family including and/nand and or/nor functions can be achieved with an easy configuration and under a stable operation. Communication between logic units is realized by spin current injection through a nonferromagnetic metal wire to ensure its cascade-ability and nonreciprocity to design multiple logic-depth circuits. With all of these advantages, the proposed cascadable MMGs can be utilized to design logic functions such as the BUFFER/ NOT, XOR/ XNOR, and complicated logic gates, which pave the pathway for designing robust and comprehensive logic circuits using full spintronic devices.
AB - In the quest for novel, scalable and energy-efficient computing technologies, spin-based logic devices are being extensively explored due to their potential for nonvolatility, small cell area, and low operational power. Spin torque majority gate (STMG) is one of the most promising options for beyond CMOS nonvolatile logic circuits for normally-off computing. However, significant problems arose with cascade-ability, signal nonreciprocity, and complicated circuit configurations based on STMG. In this paper, a novel magnetic majority gate (MMG) logic has been proposed, utilizing both spin transfer torque and spin-orbit torque effects. A logic family including and/nand and or/nor functions can be achieved with an easy configuration and under a stable operation. Communication between logic units is realized by spin current injection through a nonferromagnetic metal wire to ensure its cascade-ability and nonreciprocity to design multiple logic-depth circuits. With all of these advantages, the proposed cascadable MMGs can be utilized to design logic functions such as the BUFFER/ NOT, XOR/ XNOR, and complicated logic gates, which pave the pathway for designing robust and comprehensive logic circuits using full spintronic devices.
KW - Beyond-CMOS logic devices
KW - cascading
KW - magnetic majority gates (MMGs)
KW - magnetic tunneling junction (MTJ)
KW - micromagnetic simulations
UR - https://www.scopus.com/pages/publications/85053162064
U2 - 10.1109/TED.2018.2866621
DO - 10.1109/TED.2018.2866621
M3 - 文章
AN - SCOPUS:85053162064
SN - 0018-9383
VL - 65
SP - 4687
EP - 4693
JO - IEEE Transactions on Electron Devices
JF - IEEE Transactions on Electron Devices
IS - 10
M1 - 8456833
ER -