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Published on: December 14, 2011
A radio frequency/direct current hybrid rotatable spin torque ferromagnetic resonance platform
Yongcheng Deng1, Lujia Yang2, Weihao Li1,2
1State Key Laboratory of Semiconductor Physics and Chip Technologies, Institute of Semiconductors, Chinese Academy of Sciences, Beijing 100083, China.
A new hybrid rotational spin torque ferromagnetic resonance (ST-FMR) platform enables 360° sample rotation with high power RF and DC. This advancement facilitates precise temperature-dependent measurements for spintronic device research.
Area of Science:
- Physics
- Materials Science
- Electrical Engineering
Background:
- Spin torque ferromagnetic resonance (ST-FMR) is crucial for studying spin-dependent transport phenomena.
- Conventional ST-FMR systems often face limitations in achieving full sample rotation and handling high power inputs.
- Advancements in spintronic device research require versatile platforms for precise material characterization.
Purpose of the Study:
- To develop and demonstrate a novel hybrid rotational ST-FMR platform.
- To integrate radio frequency (RF) and direct current (DC) capabilities for enhanced experimental control.
- To enable precise temperature-dependent measurements of spintronic material properties.
Main Methods:
- Integration of conductive slip ring technology with a conventional ST-FMR system.
- Implementation of a rotational stage allowing 360° sample manipulation.
- Application of high voltage DC (up to 600 V/10 A) and high frequency RF (up to 40 GHz) sources.
- Utilizing DC ports for in-situ heating and temperature measurements.
Main Results:
- Achieved stable 360° sample rotation with minimal variation (<1% in DC resistance, <2% in S-parameters).
- Successfully integrated high power RF and DC sources into the ST-FMR setup.
- Obtained temperature dependence of spin Hall efficiency from 20-70°C.
- Demonstrated the platform's capability for accurate heating and temperature measurements.
Conclusions:
- The developed hybrid rotational ST-FMR platform is a valuable and scalable tool.
- This platform advances research in spin-dependent transport and regulation.
- It facilitates the development of next-generation spintronic devices through precise characterization.
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