TERASWITCH - Towards low dissipation THz-induced switching of magnetic materials
TERASWITCH - Towards low dissipation THz-induced switching of magnetic materials
批准号:
EP/T027916/1
负责人:
Thomas Ostler
金额:
$29.1万
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2020
资助国家:
英国
项目状态:
已结题
起止时间:
2020 至 --
中文摘要
磁化在两个稳定的位状态(1和0)之间切换是现代存储技术的关键原理。随着“始终连接”设备数量的激增,以及消费者对多媒体和社交媒体内容的渴望,全球存储和处理的数据量以前所未有的速度增长,正在建设的新数据中心(例如Facebook在新加坡的新数据中心)就证明了这一点。全球正在产生的海量数据正在导致新市场的出现,企业以不同的方式利用和交易数据--欧盟估计,到2020年,欧洲数字经济的价值将达到7390亿欧元[1]。这种日益增长的数据存储需求提出了几个大问题:这些海量的数据将存储在哪里?如何才能使日益增长的数据存储和处理需求与能源责任的政治和社会需求相适应,并在理想情况下实现碳中和?据估计,到2025年,全球20%的电力需求将用于为数据中心供电[2],这个数字无疑还会增长,因此,任何减少数据处理和存储的能源需求的技术都具有重大的国家和国际重要性。这项建议涉及减少数据存储和处理所涉及的能源消耗的研究。由于每比特成本较低,磁性硬盘驱动器仍然构成服务器(因此是云)级别的大部分数据存储。然而,由于在两种状态之间切换比特所需的磁场,在盘驱动器中写入信息的过程使用了相对较大的能量。对使用飞秒(1飞秒是十亿分之一秒)激光脉冲的超快磁化动力学的研究表明,低能量转换是可能的,使用的能量少一个数量级。这些研究中的切换发生在两皮秒(1皮秒相当于十亿分之一秒)内,开启了写入高达10^12(一百万)比特每秒的可能性,比传统记录方法快1000倍,这是实现速度更快、响应更快的设备的一种极具吸引力的途径,需要研究投资。然而,强激光脉冲的使用往往会导致大量的加热,并会激发出许多非线性动力学。一种可能的解决方案是使用频率在太赫兹范围内的高强度光。从历史上看,产生这样的光脉冲是非常困难的,但最近的实验发展使这成为可能,在过去的十年里,太赫兹科学领域引起了人们的极大关注,最近在控制磁性方面也引起了极大的关注。初步研究表明,与传统记录相比,转换磁化状态所需的能量要少得多,这可能会彻底改变我们存储和处理信息的方式。这项提议旨在发展这些想法,目的是了解潜在的物理过程,以及我们如何才能设计出高效、低能量的磁性控制。这项工作将与世界领先的实验小组一起进行,以提供重要的验证并与理论工作进行比较。1-https://ec.europa.eu/digital-single-market/en/news/final-results-european-data-market-study-measuring-size-and-trends-eu-data-economy2-https://data-economy.com/data-centres-world-will-consume-1-5-earths-power-2025/
英文摘要
Magnetisation switching between two stable bit states (1 and 0) is the key principle of modern-day storage technology. With the explosion in the number of "always connected" devices, and the consumer desire for multimedia and social media content, the volume of data being stored and processed globally has risen at an unprecedented rate, as evidenced by the number of new data centres being built (e.g. Facebook's new data centre in Singapore). The vast quantities of data being generated globally is leading to the emergence of new markets with companies exploiting and trading data in diverse ways - an EU estimate values the digital economy in Europe will be worth 739bn euros by 2020[1]. This growing demand for data storage poses several big questions: where is this volume of data going to be stored? How can the growing demand for data storage and processing be made compatible with the political and social imperative for energy responsibility and, ideally, carbon neutrality? It is estimated that 20% of the world's electricity demand will be used to power data centres by 2025[2], a figure that will undoubtedly grow, and therefore any technology that reduces the energy requirements of data processing and storage is of great national and international importance. This proposal concerns research into reducing the energy use involved in data storage and processing.Magnetic hard disk drives still form most of the data storage at the server (and hence cloud) level due to their low cost per bit. However, the process of writing information in disk drives uses a relatively large amount of energy due to the magnetic field needed to toggle bits between the two states. Studies in ultrafast magnetization dynamics using femtosecond (1 femtosecond is one millionth of a billionth of a second) laser pulses have demonstrated that low-energy switching is possible, using orders of magnitude less energy. Switching in these studies occurs within two picoseconds (one picosecond is a thousandth of a billionth of a second) opening up the possibility of writing up to 10^12 (a million million) bits per second, one thousand times faster than conventional recording methods, an extremely attractive avenue to realise much faster and more responsive devices that requires research investment. However, the use of strong laser pulses often results in a large amount of heating and can excite a lot of non-linear dynamics. One possible solution to this is to use light at frequencies that are in the THz range with high intensities. Historically, it has been very difficult to generate such light pulses, but recent experimental developments have made this possible and the area of THz science in general has attracted significant attention over the past decade and more recently to control magnetism. Initial studies have shown that significantly lower amounts of energy are required to switch the magnetisation state than in conventional recording, which could revolutionise the way we store and process information. This proposal is aimed at developing these ideas with the goal of understanding the underlying physical processes and how we can engineer efficient, low energy control of magnetism. The work will be carried out alongside world-leading experimental groups to provide important validation and comparisons with theoretical work.1 - https://ec.europa.eu/digital-single-market/en/news/final-results-european-data-market-study-measuring-size-and-trends-eu-data-economy2 - https://data-economy.com/data-centres-world-will-consume-1-5-earths-power-2025/
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DOI:
10.1007/s12598-022-02117-8
发表时间:
2020-09
期刊:
Rare Metals
影响因子:
8.8
作者:
[Guanqiao Li;Xiangyu Zheng;Junlin Wang;Xianyang Lu;Jing Wu;J. Cai;Hao Meng;Bo Liu;T. Ostler;Yongbing Xu]
通讯作者:
Guanqiao Li;Xiangyu Zheng;Junlin Wang;Xianyang Lu;Jing Wu;J. Cai;Hao Meng;Bo Liu;T. Ostler;Yongbing Xu
Unifying femtosecond and picosecond single-pulse magnetic switching in GdFeCo
统一 GdFeCo 中的飞秒和皮秒单脉冲磁开关
DOI:
10.48550/arxiv.2004.14844
发表时间:
2020
期刊:
影响因子:
--
作者:
[Jakobs F]
通讯作者:
Jakobs F
DOI:
10.1103/physrevb.103.104422
发表时间:
2020-04
期刊:
Physical Review B
影响因子:
3.7
作者:
[F. Jakobs;T. Ostler;C. Lambert;Yang Yang-Yang;S. Salahuddin;Richard B. Wilson;J. Gorchon;J. Bokor;U. Atxitia]
通讯作者:
F. Jakobs;T. Ostler;C. Lambert;Yang Yang-Yang;S. Salahuddin;Richard B. Wilson;J. Gorchon;J. Bokor;U. Atxitia
DOI:
10.1103/physrevb.107.l041410
发表时间:
2023
期刊:
Physical Review B
影响因子:
3.7
作者:
[Binh N]
通讯作者:
Binh N
TERASWITCH - Towards low dissipation THz-induced switching of magnetic materials
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批准号:EP/T027916/2
-
项目类别:Research Grant
-
资助金额:$0.04万
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财政年份:2022
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负责人:Thomas Ostler
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依托单位:
海外基金