Passive Components Blog
No Result
View All Result
  • Home
  • NewsFilter
    • All
    • Aerospace & Defence
    • Antenna
    • Applications
    • Automotive
    • Capacitors
    • Circuit Protection Devices
    • electro-mechanical news
    • Filters
    • Fuses
    • Inductors
    • Industrial
    • Integrated Passives
    • inter-connect news
    • Market & Supply Chain
    • Market Insights
    • Medical
    • Modelling and Simulation
    • New Materials & Supply
    • New Technologies
    • Non-linear Passives
    • Oscillators
    • Passive Sensors News
    • Resistors
    • RF & Microwave
    • Telecommunication
    • Weekly Digest

    Binder Hybrid Connector Simplifies One Cable Automation

    Tapped Inductor Buck Converter Fundamentals

    TAIYO YUDEN Releases Mini Metal Power Inductors

    Molecular Memristor Shows Record 145 kH Emergent Inductance

    Planar vs Conventional Transformer: When it Make Sense

    Researchers Propose Next‑Gen Compact Memory Using Ultra-thin Ferroelectric Capacitors

    Nichicon ADN Automotive Hybrid Aluminum Capacitors Now Available in EMEA

    Wk 19 Electronics Supply Chain Digest

    Electrocaloric Multilayer Capacitors: Towards Quiet, Solid‑State Cooling Around Room Temperature

    Trending Tags

    • Ripple Current
    • RF
    • Leakage Current
    • Tantalum vs Ceramic
    • Snubber
    • Low ESR
    • Feedthrough
    • Derating
    • Dielectric Constant
    • New Products
    • Market Reports
  • VideoFilter
    • All
    • Antenna videos
    • Capacitor videos
    • Circuit Protection Video
    • Filter videos
    • Fuse videos
    • Inductor videos
    • Inter-Connect Video
    • Non-linear passives videos
    • Oscillator videos
    • Passive sensors videos
    • Resistor videos

    Tapped Inductor Buck Converter Fundamentals

    Planar vs Conventional Transformer: When it Make Sense

    Modeling Fringing Field Losses in Inductors & Transformers

    Why Power Inductors Use a Ferrite Core With an Air Gap

    Transformer-Based Power-Line Harvester Magnetic Design

    Thermal Modeling of Magnetics

    Standard vs Planar LLC transformers Comparison for Battery Chargers

    How Modern Tools Model Magnetic Components for Power Electronics

    Advanced Loss Modeling for Planar Magnetics in the Frenetic Planar Tool

    Trending Tags

    • Capacitors explained
    • Inductors explained
    • Resistors explained
    • Filters explained
    • Application Video Guidelines
    • EMC
    • New Products
    • Ripple Current
    • Simulation
    • Tantalum vs Ceramic
  • Knowledge Blog
  • DossiersNew
  • Suppliers
    • Who is Who
  • PCNS
    • PCNS 2025
    • PCNS 2023
    • PCNS 2021
    • PCNS 2019
    • PCNS 2017
  • Events
  • Home
  • NewsFilter
    • All
    • Aerospace & Defence
    • Antenna
    • Applications
    • Automotive
    • Capacitors
    • Circuit Protection Devices
    • electro-mechanical news
    • Filters
    • Fuses
    • Inductors
    • Industrial
    • Integrated Passives
    • inter-connect news
    • Market & Supply Chain
    • Market Insights
    • Medical
    • Modelling and Simulation
    • New Materials & Supply
    • New Technologies
    • Non-linear Passives
    • Oscillators
    • Passive Sensors News
    • Resistors
    • RF & Microwave
    • Telecommunication
    • Weekly Digest

    Binder Hybrid Connector Simplifies One Cable Automation

    Tapped Inductor Buck Converter Fundamentals

    TAIYO YUDEN Releases Mini Metal Power Inductors

    Molecular Memristor Shows Record 145 kH Emergent Inductance

    Planar vs Conventional Transformer: When it Make Sense

    Researchers Propose Next‑Gen Compact Memory Using Ultra-thin Ferroelectric Capacitors

    Nichicon ADN Automotive Hybrid Aluminum Capacitors Now Available in EMEA

    Wk 19 Electronics Supply Chain Digest

    Electrocaloric Multilayer Capacitors: Towards Quiet, Solid‑State Cooling Around Room Temperature

    Trending Tags

    • Ripple Current
    • RF
    • Leakage Current
    • Tantalum vs Ceramic
    • Snubber
    • Low ESR
    • Feedthrough
    • Derating
    • Dielectric Constant
    • New Products
    • Market Reports
  • VideoFilter
    • All
    • Antenna videos
    • Capacitor videos
    • Circuit Protection Video
    • Filter videos
    • Fuse videos
    • Inductor videos
    • Inter-Connect Video
    • Non-linear passives videos
    • Oscillator videos
    • Passive sensors videos
    • Resistor videos

    Tapped Inductor Buck Converter Fundamentals

    Planar vs Conventional Transformer: When it Make Sense

    Modeling Fringing Field Losses in Inductors & Transformers

    Why Power Inductors Use a Ferrite Core With an Air Gap

    Transformer-Based Power-Line Harvester Magnetic Design

    Thermal Modeling of Magnetics

    Standard vs Planar LLC transformers Comparison for Battery Chargers

    How Modern Tools Model Magnetic Components for Power Electronics

    Advanced Loss Modeling for Planar Magnetics in the Frenetic Planar Tool

    Trending Tags

    • Capacitors explained
    • Inductors explained
    • Resistors explained
    • Filters explained
    • Application Video Guidelines
    • EMC
    • New Products
    • Ripple Current
    • Simulation
    • Tantalum vs Ceramic
  • Knowledge Blog
  • DossiersNew
  • Suppliers
    • Who is Who
  • PCNS
    • PCNS 2025
    • PCNS 2023
    • PCNS 2021
    • PCNS 2019
    • PCNS 2017
  • Events
No Result
View All Result
Passive Components Blog
No Result
View All Result

Antiferromagnetic Material’s Promise for High-Speed and Low-Power Consuming Next-Generation Electronic Devices.

13.11.2020
Reading Time: 3 mins read
A A
Fig.1: A schematic diagram of information storage using conventional ferromagnet (FM)-based spintronic devices (left) and the proposed antiferromagnets (AFMs)-based devices (right) (the arrows indicate magnetic moments). In FM-based devices (left), bits of information (state "1" or "0") are encoded in the orientation (red/up or blue/down) of the moments. The compensated structure of AFMs (right) entails unique advantages while posing significant hurdles at the same time. ©︎Samik DuttaGupta and Shunsuke Fukami

Fig.1: A schematic diagram of information storage using conventional ferromagnet (FM)-based spintronic devices (left) and the proposed antiferromagnets (AFMs)-based devices (right) (the arrows indicate magnetic moments). In FM-based devices (left), bits of information (state "1" or "0") are encoded in the orientation (red/up or blue/down) of the moments. The compensated structure of AFMs (right) entails unique advantages while posing significant hurdles at the same time. ©︎Samik DuttaGupta and Shunsuke Fukami

The quest for high throughput intelligent computing paradigms – for big data and artificial intelligence – and the ever-increasing volume of digital information has led to an intensified demand for high-speed and low-power consuming next-generation electronic devices. The “forgotten” world of antiferromagnets (AFM), a class of magnetic materials, offers promise in future electronic device development and complements present-day ferromagnet-based spintronic technologies.

Formidable challenges for AFM-based functional spintronic device development are high-speed electrical manipulation (recording), detection (retrieval), and ensuring the stability of the recorded information – all in a semiconductor industry-friendly material system.

RelatedPosts

Binder Hybrid Connector Simplifies One Cable Automation

Tapped Inductor Buck Converter Fundamentals

TAIYO YUDEN Releases Mini Metal Power Inductors

Researchers at Tohoku University, University of New South Wales (Australia), ETH Zürich (Switzerland), and Diamond Light Source (United Kingdom) successfully demonstrated current-induced switching in a polycrystalline metallic antiferromagnetic heterostructure with high thermal stability. The established findings show potential for information storage and processing technologies.

The research group used a Mn-based metallic AFM (PtMn)/heavy metal (HM) heterostructure – attractive because of its significant antiferromagnetic anisotropy and its compatibility with PtMn Silicon-based electronics (Fig. 2(a)). Electrical recording of resistance states (1 or 0) was obtained through the spin-orbit interaction of the HM layer; a charge current in the adjacent HM resulted in spin-orbit torques acting on the AFM, leading to a change in the resistance level down to a microsecond regime (Fig. 2(b)).

Fig.2: (a) A schematic diagram of the developed stack structure. (b) The experimental results of current-induced switching of AFM/HM PtMn/Pt structure under applied current JPt in the Pt layer. The reading of the antiferromagnetic states was achieved by measuring the output read resistance (RHall). (c) The stability of recorded states (1 or 0) was investigated by measuring RHall for several hours. The red and blue shaded area corresponds to the electrical recording of the high resistive (“1”) or low resistive (“0”) states. (d), (e) X-ray magnetic imaging of the PtMn/Pt structure after the application of current pulses. White and black areas of the image indicate regions of opposite magnetic contrast, representing the reversal of the antiferromagnetic order. ©︎Samik DuttaGupta and Shunsuke Fukami

“Interestingly, the switching degree is controllable by the strength of the current in the HM layer and shows long-term data retention capabilities,” said Samik DuttaGupta, corresponding author of the study (Fig. 2(c)). “The experimental results from electrical measurements were supplemented by a magnetic X-ray imaging, helping to clarify the reversible nature of switching dynamics localized within nm-sized AFM domains.” (Fig. 2(d),(e)).

The results are the first demonstration of current-induced switching of an industry-compatible AFM down to the microsecond regime within the field of metallic antiferromagnetic spintronics. These findings are expected to initiate new avenues for research and encourage further investigations towards the realization of functional devices using metallic AFMs for information storage and processing technologies.

Publication Details:

Title: Spin-orbit torque switching of an antiferromagnetic metallic heterostructure
Authors: S. DuttaGupta, A. Kurenkov, O. A. Tretiakov, G. Krishnaswamy, G. Sala, V. Krizakova, F. Maccherozzi, S. S. Dhesi, P. Gambardella, S. Fukami and H. Ohno
Journal: Nature Communications
DOI: 10.1038/s41467-020-19511-4

Related

Source: Tohoku University

Recent Posts

Tapped Inductor Buck Converter Fundamentals

13.5.2026
10

TAIYO YUDEN Releases Mini Metal Power Inductors

13.5.2026
9

Molecular Memristor Shows Record 145 kH Emergent Inductance

12.5.2026
11

Planar vs Conventional Transformer: When it Make Sense

11.5.2026
35

Researchers Propose Next‑Gen Compact Memory Using Ultra-thin Ferroelectric Capacitors

11.5.2026
28

Electrocaloric Multilayer Capacitors: Towards Quiet, Solid‑State Cooling Around Room Temperature

7.5.2026
185

High-Crystallinity Nanocrystalline Composites for MHz Chip Inductors

7.5.2026
63

Würth Elektronik Introduces Compact Flat-wire SMT Power Inductors for Automotive

5.5.2026
49

Modeling Fringing Field Losses in Inductors & Transformers

30.4.2026
53

Upcoming Events

May 13
17:00 - 17:30 CEST

Winding Loss Modeling for Toroidal Magnetics – Including Gapped Cores

May 19
16:00 - 17:00 CEST

Designing Qi2 Wireless Power Systems: Practical Development and EMC Optimization

Jun 2
16:00 - 17:00 CEST

Calculation, Simulation and Measurement of 800V EMC Filters

View Calendar

Popular Posts

  • Buck Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • Boost Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • Flyback Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • LLC Resonant Converter Design and Calculation

    0 shares
    Share 0 Tweet 0
  • MLCC and Ceramic Capacitors

    0 shares
    Share 0 Tweet 0
  • Dual Active Bridge (DAB) Topology

    0 shares
    Share 0 Tweet 0
  • What Electronics Engineer Needs to Know About Passive Low Pass Filters

    0 shares
    Share 0 Tweet 0
  • Capacitor Charging and Discharging

    0 shares
    Share 0 Tweet 0
  • Ripple Current and its Effects on the Performance of Capacitors

    3 shares
    Share 3 Tweet 0
  • MLCC Case Sizes Standards Explained

    0 shares
    Share 0 Tweet 0

Newsletter Subscription

 

Passive Components Blog

© EPCI - Leading Passive Components Educational and Information Site

  • Home
  • Privacy Policy
  • EPCI Membership & Advertisement
  • About

No Result
View All Result
  • Home
  • Knowledge Blog
  • PCNS

© EPCI - Leading Passive Components Educational and Information Site

This website uses cookies. By continuing to use this website you are giving consent to cookies being used. Visit our Privacy and Cookie Policy.
Go to mobile version