Title :
Dipolar Coupling Between Nanopillar Spin Valves and Magnetic Quantum Cellular Automata Arrays
Author :
Colci, Madalina ; Johnson, Mark
Author_Institution :
Mater. Phys. Div., Naval Res. Lab., Washington, DC, USA
Abstract :
We experimentally demonstrate magnetostatic coupling between a nanopillar pseudo spin valve structure and a linear array of dipole-coupled permalloy nanomagnets. Using magnetic force microscopy, we study the interaction between the spin valve and the first element of the array, and present evidence that the nanomagnet couples with the hard layer of the spin valve for two spin valves with distinctly different composition. Our study includes a statistical analysis of antiferromagnetic order within the linear array and provides insights into the range of behavior that these arrays can display. These results bear directly on the design of magnetic quantum cellular automata (MQCA) logic devices, showing that multilayer devices can couple to simple nanomagnets. Redesigning the hard layer of the magnetoresistive devices would make them operational as an electronic input that will allow integration of MQCA networks in complex electronic circuitry.
Keywords :
Permalloy; antiferromagnetic materials; cellular automata; logic devices; magnetic force microscopy; magnetostatics; nanomagnetics; spin valves; statistical analysis; MQCA logic devices; antiferromagnetic order; complex electronic circuitry; dipolar coupling; dipole-coupled permalloy nanomagnets; hard layer; linear array; magnetic force microscopy; magnetic quantum cellular automata arrays; magnetoresistive devices; magnetostatic coupling; multilayer devices; nanopillar pseudospin valve structure; statistical analysis; Couplings; Magnetic multilayers; Magnetic resonance imaging; Magnetic tunneling; Magnetization; Magnetostatics; Spin valves; Electromagnetic coupling; logic circuits; magnetic circuits; magnetic devices; magnetic force microscopy (MFM); magnetic multilayers; magnetic switching; magnetization reversal; nanostructures; programmable logic devices; quantum cellular automata; spin valves;
Journal_Title :
Nanotechnology, IEEE Transactions on
DOI :
10.1109/TNANO.2013.2275033