Published November 9, 2015 | Version v1
Journal article

Optimal electron, phonon, and magnetic characteristics for low energy thermally induced magnetization switching

  • 1. Zukunftskolleg, Universität Konstanz, D-78457 Konstanz (Germany)
  • 2. Fachbereich Physik, Universität Konstanz, D-78457 Konstanz (Germany)
  • 3. College of Engineering, Mathematics and Physical Sciences, University of Exeter, Exeter, Devon EX4 4SB (United Kingdom)
  • 4. Department of Physics, University of York, York YO105DD (United Kingdom)
  • 5. Instituto de Ciencia de Materiales de Madrid, CSIC, Cantoblanco, 28049 Madrid (Spain)

Description

Using large-scale computer simulations, we thoroughly study the minimum energy required to thermally induced magnetization switching (TIMS) after the application of a femtosecond heat pulse in transition metal-rare earth ferrimagnetic alloys. We find that for an energy efficient TIMS, a low ferrimagnetic net magnetization with a strong temperature dependence is the relevant factor for the magnetic system. For the lattice and electron systems, the key physics for efficient TIMS is a large electron-phonon relaxation time. Importantly, we show that as the cooling time of the heated electrons is increased, the minimum power required to produce TIMS can be reduced by an order of magnitude. Our results show the way to low power TIMS by appropriate engineering of magnetic heterostructures

Additional details

Identifiers

Publishing Information

Journal Title
Applied Physics Letters
Journal Volume
107
Journal Issue
19
Journal Page Range
p. 192402-192402.5
ISSN
0003-6951
CODEN
APPLAB

INIS

Country of Publication
United States
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
47056034
Subject category
S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS;
Descriptors DEI
ALLOYS; COMPUTERIZED SIMULATION; COOLING TIME; ELECTRONS; HEAT; MAGNETIZATION; PHONONS; RARE EARTHS; RELAXATION TIME; TEMPERATURE DEPENDENCE; TRANSITION ELEMENTS
Descriptors DEC
ELEMENTARY PARTICLES; ELEMENTS; ENERGY; FERMIONS; LEPTONS; METALS; QUASI PARTICLES; SIMULATION

Optional Information

Notes
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