GOALI/Collaborative Research: Effect of Stress and Heat on Magnetic Properties of Thin Films
GOALI/Collaborative Research: Effect of Stress and Heat on Magnetic Properties of Thin Films
批准号:
1463301
负责人:
Yang-Ki Hong
金额:
$21.8万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-04-15 至 2019-03-31
中文摘要
磁性材料的性能受到应力和热的影响。 当铁磁材料经历表面接触时,它可以降低或改变其原始磁特性。随着材料中微观磁畴尺寸的减小,磁稳定性降低。为了提高铁磁器件的性能,需要减小磁畴的物理尺寸。这个学术与工业联络(GOALI)计划合作研究奖的资助机会支持基础研究,以调查铁磁薄膜在应力,热和摩擦下磁性退化的科学机制。 通过大学与产业伙伴的合作,将基础研究活动转化为实际产品,即,在硬盘驱动器(HDD)中的磁记录介质,以实现更稳定和可靠的设计。 这项多学科合作研究的成果不仅将提供即时解决方案,以提高磁机械应用的能效、准确性和可靠性(例如,磁存储器件、磁传感器和致动器、磁MEMS/NEMS谐振器等)而且为下一代铁磁器件提供了关键的设计规则。 绝热/摩擦生热的微应力和热扰动的耦合效应将被系统地和定量地研究材料的磁性设计参数,如磁畴尺寸和磁各向异性能量密度。 首先,在理论建模中,将接触力学和传热学的理论结合到磁特性中,其中微观应力张量和空间温度分布改变磁场和磁化强度。 第二,在计算模拟中,从从头计算得到的原子级无序将扩展到宏观磁化过程中,其中将应用蒙特卡罗模拟来最小化系统能量。 最后,理论和计算模拟的科学发现将通过动态表面接触实验和仪器材料表征进行验证。
英文摘要
The properties of magnetic materials are affected by stress and heat. When a ferromagnetic material experiences surface contact, it can degrade or change its original magnetic properties. The magnetic stability decreases as the size of the microscopic magnetic domain in the material decreases. In order to improve the performance of ferromagnetic devices, the physical size of magnetic domains needs to be reduced. This Grant Opportunity for Academic Liaison with Industry (GOALI) Program collaborative research award supports fundamental research to investigate the scientific mechanism of magnetic degradation for ferromagnetic thin films under stress, heat, and friction. With the collaboration between universities and industrial partner, the fundamental research activities will be brought into actual product, i.e., magnetic recording media in a hard disk drive (HDD), to achieve more stable and reliable design. The outcomes from this multi-disciplinary and collaborative research will not only provide immediate solutions to improve energy efficiency, accuracy and reliability of magneto-mechanical applications (e.g., magnetic storage devices, magnetic sensors and actuators, magnetic MEMS/NEMS resonator, etc.) but also deliver key design rules for the next-generation ferromagnetic devices. The coupled effects of micro-stress and thermal agitation by adiabatic/frictional heat generation will be systematically and quantitatively examined with respect to magnetic design parameters of materials such as magnetic domain size and magnetic anisotropy energy density. First, in theoretical modeling, the theories of contact mechanics and heat transfer will be incorporated into magnetic properties, where the micro-stress tensor and spatial temperature distribution change magnetic field and magnetization. Second, in computational simulation, atomic level disorders obtained from the ab-initio calculation will be extended to the macroscopic magnetization process, where Monte Carlo simulation will be applied to minimize the system energy. Lastly, the scientific findings from the theoretical and computational simulations will be verified through dynamic surface contact experiment and instrumental material characterization.
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会议论文
IUCRC Phase II University of Alabama: Center for Efficient Vehicles and Sustainable Transportation Systems (EVSTS)
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批准号:2137275
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项目类别:Continuing Grant
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资助金额:$50.0万
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财政年份:2022
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负责人:Yang-Ki Hong
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依托单位:
Phase I I/UCRC University of Alabama: Center for Efficient Vehicles and Sustainable Transportation Systems (EV-STS)
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批准号:1650564
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项目类别:Continuing Grant
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资助金额:$60.0万
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财政年份:2017
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负责人:Yang-Ki Hong
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依托单位:
海外基金