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绿色激光退火对多晶锗硅薄膜特性的影响
  • ISSN号:1003-353X
  • 期刊名称:《半导体技术》
  • 时间:0
  • 分类:O189.22[理学—数学;理学—基础数学] O231[理学—运筹学与控制论;理学—数学]
  • 作者机构:[1]Department of Physics, Beijing Normal University, Beijing 100875, China, [2]Tsinghua National Laboratory for Information Science and Technology, Institute of Microelectronics, Tsinghua University, Beijing 100084, China, [3]School of Microelectronics and Solid-State Electronics, University Of Electronic Science and Technology of China, Chengdu 611731, China, [4]State Key Laboratory of High Performance Ceramics and Superfine Microsaucture, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, China
  • 相关基金:Project supported by the National Basic Research Program of China(Grant No.2014CB920902);the National Natural Science Foundation of China(Grant Nos.61306105 and 51572278);the Information Science and Technology(TNList)Cross-discipline Foundation from Tsinghua National Laboratory,China;the Fund from the State Key Laboratory of Electronic Thin Films and Integrated Devices,University of Electronic Science and Technology of China,Chengdu 610054,China
中文摘要:

Due to the upcoming demands of next-generation electronic/magnetoelectronic devices with low-energy consumption,emerging correlated materials(such as superconductors,topological insulators and manganites) are one of the highly promising candidates for the applications.For the past decades,manganites have attracted great interest due to the colossal magnetoresistance effect,charge-spin-orbital ordering,and electronic phase separation.However,the incapable of deterministic control of those emerging low-dimensional spin structures at ambient condition restrict their possible applications.Therefore,the understanding and control of the dynamic behaviors of spin order parameters at nanoscale in manganites under external stimuli with low energy consumption,especially at room temperature is highly desired.In this review,we collected recent major progresses of nanoscale control of spin structures in manganites at low dimension,especially focusing on the control of their phase boundaries,domain walls as well as the topological spin structures(e.g.,skyrmions).In addition,capacitor-based prototype spintronic devices are proposed by taking advantage of the above control methods in manganites.This capacitor-based structure may provide a new platform for the design of future spintronic devices with low-energy consumption.

英文摘要:

Due to the upcoming demands of next-generation electronic/magnetoelectronic devices with low-energy consumption,emerging correlated materials(such as superconductors,topological insulators and manganites) are one of the highly promising candidates for the applications.For the past decades,manganites have attracted great interest due to the colossal magnetoresistance effect,charge-spin-orbital ordering,and electronic phase separation.However,the incapable of deterministic control of those emerging low-dimensional spin structures at ambient condition restrict their possible applications.Therefore,the understanding and control of the dynamic behaviors of spin order parameters at nanoscale in manganites under external stimuli with low energy consumption,especially at room temperature is highly desired.In this review,we collected recent major progresses of nanoscale control of spin structures in manganites at low dimension,especially focusing on the control of their phase boundaries,domain walls as well as the topological spin structures(e.g.,skyrmions).In addition,capacitor-based prototype spintronic devices are proposed by taking advantage of the above control methods in manganites.This capacitor-based structure may provide a new platform for the design of future spintronic devices with low-energy consumption.

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期刊信息
  • 《半导体技术》
  • 中国科技核心期刊
  • 主管单位:中国电子科技集团公司
  • 主办单位:中国电子科技集团公司第十三研究所
  • 主编:赵小玲
  • 地址:石家庄179信箱46分箱
  • 邮编:050051
  • 邮箱:informax@heinfo.net
  • 电话:0311-87091339
  • 国际标准刊号:ISSN:1003-353X
  • 国内统一刊号:ISSN:13-1109/TN
  • 邮发代号:18-65
  • 获奖情况:
  • 中文核心期刊,中国科技论文统计用刊
  • 国内外数据库收录:
  • 俄罗斯文摘杂志,美国化学文摘(网络版),美国剑桥科学文摘,英国科学文摘数据库,日本日本科学技术振兴机构数据库,中国中国科技核心期刊,中国北大核心期刊(2004版),中国北大核心期刊(2008版),中国北大核心期刊(2011版),中国北大核心期刊(2014版),中国北大核心期刊(2000版)
  • 被引量:6070