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Control of magnetic frustration for energy efficient technologies

Control of magnetic frustration for energy efficient technologies
节能技术的磁挫败控制
批准号:
2748957
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --

项目摘要

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中文摘要
翻译
磁性材料支撑着大量的现代技术,如计算机硬件、运输系统和制冷设备等。直到最近,这些技术几乎完全依赖于铁磁体,因为它们的磁化强度很大,很容易检测和操纵。另一方面,反铁磁体的磁化强度为零,因此发现者(Louis Néel)将其描述为“有趣但无用”。然而,过去十年的进步导致了反铁磁性的复兴。最近发现的新型反铁磁技术的应用远远超过了铁磁体,例如在超快计算、能量转换、能量收集和固态制冷方面。除此之外,对反铁磁性的新理解是基本感兴趣的,因为支撑其功能的内在性质与基本粒子的性质相似。在这些发现的基础上,该项目旨在开发和了解具有增强功能的新的反铁磁材料,特别是脱碳技术,如热量制冷和自旋电子学。目标(I)该项目将合成新型的反铁磁材料,这些材料在磁上受到阻碍--它们的磁相互作用不能得到满足,这反过来又可以增强它们的功能特性。(2)该项目将利用国家同步加速器和中子设施的先进技术以及格拉斯哥大学开尔文纳米表征中心的电子显微镜对这些材料进行表征。这一分析将指导这些材料的合成,以优化它们的“挫折感”和功能性。(Iii)将选择优化的材料来生长薄膜,以确定其在热量加热和冷却或反铁磁自旋体等应用中的潜在用途。到目前为止,自旋电子学一直由铁磁材料主导,反铁磁材料具有许多优点,有望提高电流器件的效率、密度和速度。该项目将开发新材料来实现这一潜力。反铁磁体最近也显示出作为热能材料的巨大前景,但已知的材料很少,而且有很大的空间来改进它们的功能特性。该项目旨在开发性能将挑战传统碳氢化合物制冷剂的新材料。调整和战略为了实现我们的净零目标,显然需要技术上的脱碳。该项目通过开发利用新物理的先进功能材料来实现这一目标。因此,该项目与与脱碳相关的国家战略以及EPSRC在工程净零和物理科学方面的优先领域保持一致。合作该项目由材料和凝聚态物理小组讲师David Boldrin博士监督。该项目将利用格拉斯哥大学的开尔文纳米特征中心以及欧洲的一些国家设施;钻石光源、ISIS中子和缪子设施以及法国格勒诺布尔的劳埃-朗之万研究所。
英文摘要
Magnetic materials underpin a huge number of modern technologies, such as computer hardware, transport systems and refrigeration devices to name a few. Until recently these technologies have almost exclusively relied on ferromagnets owing to their large magnetisation which is easy to sense and manipulate. Antiferromagnets on the other hand have zero magnetisation, resulting in their discoverer (Louis Néel) describing them as "Interesting but useless". However, advances in the last decade have led to a renaissance of antiferromagnetism. Applications of novel antiferromagnetic technologies have recently been discovered that vastly outperform ferromagnets, for example in ultrafast computing, energy conversion, energy harvesting and solid-state refrigeration. Beyond this, the renewed understanding of antiferromagnetism is of fundamental interest as the intrinsic properties that underpin their functionality are analogous to those of elementary particles. Building on these discoveries, this project aims to develop and understand new antiferromagnetic materials with enhanced functional properties, with particular emphasis on decarbonising technologies such as caloric refrigeration and spintronics.Objectives(i) The project will synthesise novel antiferromagnetic materials that are magnetically 'frustrated' - their magnetic interactions cannot be satisfied, which in turn can enhance their functional properties. (ii) The project will characterise these materials using advanced techniques at national synchrotron and neutron facilities and using the electron microscopes in the Kelvin Nano-Characterisation Centre at the University of Glasgow. This analysis will guide the synthesis of these materials in order to optimise their 'frustration' and functionality. (iii) Optimised materials will be selected to grow thin films in order to determine their potential use in applications such as caloric heating and cooling or antiferromagnetic spintronics.NoveltyThe project will discover novel antiferromagnetic materials for use in low carbon technologies in the areas of spintronics and caloric materials. Up to now, spintronics has been dominated by ferromagnetic materials; antiferromagnetic materials offer a number of advantages and are predicted to improve the efficiency, density and speed of current devices. This project will develop new materials to realise this potential. Antiferromagnets have very recently also shown great promise as caloric materials, yet only a handful of materials are known and there is significant scope to improve their functional properties. This project will aim to develop new materials with properties that will challenge conventional hydrocarbon refrigerants.Alignment and StrategyThe need for decarbonisation of technologies in order to meet our net-zero goals is clear. This project works towards this goal through the development of advanced functional materials that takes advantage of novel physics. As such, the project is aligned to national strategies associated with decarbonisation as well as EPSRC priority areas in engineering net zero and the physical sciences.CollaborationsThe project is supervised by Dr David Boldrin, Lecturer in the Materials and Condensed Matter Physics group. The project will utilise the University of Glasgow's Kelvin Nanocharacterisation Centre as well as a number of national facilities within Europe; Diamond Light Source, ISIS Neutron and Muon Facility and the Institut Laue-Langevin in Grenoble, France.
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