搜索

x

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

多铁异质结构中逆磁电耦合效应的研究进展

陈爱天 赵永刚

引用本文:
Citation:

多铁异质结构中逆磁电耦合效应的研究进展

陈爱天, 赵永刚

Progress of converse magnetoelectric coupling effect in multiferroic heterostructures

Chen Ai-Tian, Zhao Yong-Gang
PDF
导出引用
  • 电场调控磁性能够有效降低功耗,在未来低功耗多功能器件等方面具有巨大的潜在应用前景.铁磁/铁电多铁异质结构是实现电场调控磁性的有效途径,其中室温、磁电耦合效应大的应变媒介磁电耦合是最为活跃的研究领域之一.本文简要介绍在以Pb(Mg1/3Nb2/3)0.7Ti0.3O3为铁电材料的多铁异质结构中通过应变媒介磁电耦合效应对磁性、磁化翻转及磁性隧道结调控的研究进展.首先讨论了多铁异质结构中电场对磁性的调控;之后介绍了电场调控磁化翻转的研究进展及理论上实现的途径;然后简述了电场对磁性隧道结调控的相关结果;最后在此基础上,对多铁异质结构中电场调控磁性及磁性器件进行了总结和展望.
    Electric-field control of magnetism has recently received much attention because of low-power consumption, which has potential applications in low-power multifunction devices. Ferromagnetic/ferroelectric multiferroic heterostructure is a useful way to realize the electric-field control of magnetism. Strain-mediated magnetoelectric coupling with large magnetoelectric coupling coefficient at room temperature is one of the current research hotspot. In this paper, we give an overview of recent progress of strain-mediated magnetoelectric coupling in multiferroic heterostructures.This review paper consists of five parts:introduction of multiferroics, electric-field control of magnetism in multiferroic heterostructures, electrical control of magnetization reversal, electric-field control of magnetic tunnel junctions, and the future prospects of multiferroic heterostructures. The basic concepts of multiferroics and background of magnetoelectric coupling effect are introduced in the first part.In the second part, a brief review of the recent work on the Pb(Mg1/3Nb2/3)0.7Ti0.3O3 (PMN-PT) based multiferroic heterostructures is given. The PMN-PT has a FE domain structure, which plays a vital role in electric-field control of magnetism, especially the 109 domain switching. For PMN-PT (001), the importance of 109 domain switching on the nonvolatile electrical control of magnetism is discussed. For PMN-PT (011), it is shown how to obtain nonvolatile strain which induces magnetic easy axis to be rotated by 90. The work on electric-field modulation of ferromagnetic material with perpendicular magnetic anisotropy is also mentioned.Electric-field control of magnetization reversal is still a challenge and remains elusive. Combination of strain-mediated magnetoelectric coupling and exchanging bias is a promising method to reverse magnetization by electric field, and the exchange-biased system/ferroelectric structures are given in the third part. There are also some theoretical attempts and proposals to realize the electrical control of 180 magnetization reversal. Then the method to manipulate magnetic tunnel junctions by electric field is given through integrating multiferroics and spintronics. Further outlook of the multiferroic heterostructures is also presented finally.
      通信作者: 陈爱天, aitian.chen@kaust.edu.sa;ygzhao@tsinghua.edu.cn ; 赵永刚, aitian.chen@kaust.edu.sa;ygzhao@tsinghua.edu.cn
    • 基金项目: 国家重点基础研究发展计划(批准号:2015CB921402)和国家自然科学基金(批准号:51788104,51572150)资助的课题.
      Corresponding author: Chen Ai-Tian, aitian.chen@kaust.edu.sa;ygzhao@tsinghua.edu.cn ; Zhao Yong-Gang, aitian.chen@kaust.edu.sa;ygzhao@tsinghua.edu.cn
    • Funds: Project supported by the National Basic Research Program of China (Grant No. 2015CB921402) and the National Natural Science Foundation of China (Grant Nos. 51788104, 51572150).
    [1]

    Stamps R L, Breitkreutz S, Akerman J, Chumak A V, Otani Y, Bauer G E W, Thiele J, Bowen M, Majetich S A, Klaeui M, Prejbeanu I L, Dieny B, Dempsey N M, Hillebrands B 2014 J. Phys. D: Appl. Phys. 47 333001

    [2]

    Brataas A, Kent A D, Ohno H 2012 Nat. Mater. 11 372

    [3]

    Chappert C, Fert A, van Dau F N 2007 Nat. Mater. 6 813

    [4]

    Spaldin N A, Fiebig M 2005 Science 309 391

    [5]

    Fiebig M 2005 J. Phys. D: Appl. Phys. 38 R123

    [6]

    Fiebig M, Lottermoser T, Meier D, Trassin M 2016 Nat. Rev. Mater. 1 16046

    [7]

    Dong S, Liu J, Cheong S, Ren Z 2015 Adv. Phys. 64 519

    [8]

    Eerenstein W, Mathur N D, Scott J F 2006 Nature 442 759

    [9]

    Schmid H 2008 J. Phys.: Condens. Matter 20 434201

    [10]

    Bibes M 2012 Nat. Mater. 11 354

    [11]

    Tokura Y 2007 J. Magn. Magn. Mater. 310 1145

    [12]

    Matsukura F, Tokura Y, Ohno H 2015 Nat. Nanotechnol. 10 209

    [13]

    Vaz C A F 2012 J. Phys.: Condens. Matter 24 333201

    [14]

    Sun N X, Srinivasan G 2012 SPIN 2 1240004

    [15]

    Song C, Cui B, Li F, Zhou X, Pan F 2017 Prog. Mater. Sci. 87 33

    [16]

    Hill N A 2000 J. Phys. Chem. B 104 6694

    [17]

    Ma J, Hu J, Li Z, Nan C 2011 Adv. Mater. 23 1062

    [18]

    Nan C, Bichurin M I, Dong S, Viehland D, Srinivasan G 2008 J. Appl. Phys. 103 031101

    [19]

    Chen A T, Zhao Y G 2016 APL Mater. 4 032303

    [20]

    Hu J, Chen L, Nan C 2016 Adv. Mater. 28 15

    [21]

    Fusil S, Garcia V, Barthlmy A, Bibes M 2014 Annu. Rev. Mater. Res. 44 91

    [22]

    Park S E, Shrout T R 1997 J. Appl. Phys. 82 1804

    [23]

    Wu T, Bur A, Zhao P, Mohanchandra K P, Wong K, Wang K L, Lynch C S, Carman G P 2011 Appl. Phys. Lett. 98 012504

    [24]

    Yang S, Peng R, Jiang T, Liu Y, Feng L, Wang J, Chen L, Li X, Nan C 2014 Adv. Mater. 26 7091

    [25]

    Zhang S, Zhao Y, Xiao X, Wu Y, Rizwan S, Yang L, Li P, Wang J, Zhu M, Zhang H, Jin X, Han X 2014 Sci. Rep. 4 3727

    [26]

    Zhang S, Zhao Y G, Li P S, Yang J J, Rizwan S, Zhang J X, Seidel J, Qu T L, Yang Y J, Luo Z L, He Q, Zou T, Chen Q P, Wang J W, Yang L F, Sun Y, Wu Y Z, Xiao X, Jin X F, Huang J, Gao C, Han X F, Ramesh R 2012 Phys. Rev. Lett. 108 137203

    [27]

    Yang J J, Zhao Y G, Tian H F, Luo L B, Zhang H Y, He Y J, Luo H S 2009 Appl. Phys. Lett. 94 212504

    [28]

    Thiele C, Doerr K, Bilani O, Roedel J, Schultz L 2007 Phys. Rev. B 75 054408

    [29]

    Nan T, Zhou Z, Liu M, Yang X, Gao Y, Assaf B A, Lin H, Velu S, Wang X, Luo H, Chen J, Akhtar S, Hu E, Rajiv R, Krishnan K, Sreedhar S, Heiman D, Howe B M, Brown G J, Sun N X 2014 Sci. Rep. 4 3688

    [30]

    Fu H X, Cohen R E 2000 Nature 403 281

    [31]

    Yang L, Zhao Y, Zhang S, Li P, Gao Y, Yang Y, Huang H, Miao P, Liu Y, Chen A, Nan C W, Gao C 2014 Sci. Rep. 4 4591

    [32]

    Zhang S, Chen Q, Liu Y, Chen A, Yang L, Li P, Ming Z S, Yu Y, Sun W, Zhang X, Zhao Y, Sun Y, Zhao Y 2017 ACS Appl. Mater. Inter. 9 20637

    [33]

    Liu Y, Zhao Y, Li P, Zhang S, Li D, Wu H, Chen A, Xu Y, Han X F, Li S, Ling D, Luo H 2016 ACS Appl. Mater. Inter. 8 3784

    [34]

    Li P, Zhao Y, Zhang S, Chen A, Li D, Ma J, Liu Y, Pierce D T, Unguris J, Piao H, Zhang H, Zhu M, Zhang X, Han X, Pan M, Nan C 2017 ACS Appl. Mater. Inter. 9 2642

    [35]

    Ba Y, Liu Y, Li P, Wu L, Unguris J, Pierce D T, Yang D, Feng C, Zhang Y, Wu H, Li D, Chang Y, Zhang J, Han X, Cai J, Nan C, Zhao Y 2018 Adv. Funct. Mater. 28 1706448

    [36]

    Liu M, Howe B M, Grazulis L, Mahalingam K, Nan T, Sun N X, Brown G J 2013 Adv. Mater. 25 4886

    [37]

    Liu M, Hoffman J, Wang J, Zhang J, Nelson-Cheeseman B, Bhattacharya A 2013 Sci. Rep. 3 1876

    [38]

    Nan T, Liu M, Ren W, Ye Z, Sun N X 2014 Sci. Rep. 4 5931

    [39]

    Liu M, Obi O, Cai Z, Lou J, Yang G, Ziemer K S, Sun N X 2010 J. Appl. Phys. 107 073916

    [40]

    Ikeda S, Miura K, Yamamoto H, Mizunuma K, Gan H D, Endo M, Kanai S, Hayakawa J, Matsukura F, Ohno H 2010 Nat. Mater. 9 721

    [41]

    Kim J, Ryu K, Jeong J, Shin S 2010 Appl. Phys. Lett. 97 252508

    [42]

    Yu G, Wang Z, Abolfath-Beygi M, He C, Li X, Wong K L, Nordeen P, Wu H, Carman G P, Han X, Alhomoudi I A, Amiri P K, Wang K L 2015 Appl. Phys. Lett. 106 072402

    [43]

    Shirahata Y, Shiina R, Gonzalez D L, Franke K J A, Wada E, Itoh M, Pertsev N A, van Dijken S, Taniyama T 2015 Npg Asia Mater. 7 e198

    [44]

    Xiao X, Sun L, Luo Y M, Zhang D, Liang J H, Wu Y Z 2018 J. Phys. D: Appl. Phys. 51 115001

    [45]

    Sun Y, Ba Y, Chen A, He W, Wang W, Zheng X, Zou L, Zhang Y, Yang Q, Yan L, Feng C, Zhang Q, Ca J, Wu W, Liu M, Gu L, Cheng Z, Nan C, Qiu Z, Wu Y, Li J, Zhao Y 2017 ACS Appl. Mater. Inter. 9 10855

    [46]

    Yang Q, Nan T, Zhang Y, Zhou Z, Peng B, Ren W, Ye Z, Sun N X, Liu M 2017 Phys. Rev. Appl. 8 044006

    [47]

    Peng B, Zhou Z, Nan T, Dong G, Feng M, Yang Q, Wang X, Zhao S, Xian D, Jiang Z D, Ren W, Ye Z, Sung N X, Liu M 2017 ACS Nano 11 4337

    [48]

    Tokunaga Y, Taguchi Y, Arima T, Tokura Y 2012 Nat. Phys. 8 838

    [49]

    Chai Y S, Kwon S, Chun S H, Kim I, Jeon B, Kim K H, Lee S 2014 Nat. Commun. 5 4208

    [50]

    Heron J T, Bosse J L, He Q, Gao Y, Trassin M, Ye L, Clarkson J D, Wang C, Liu J, Salahuddin S, Ralph D C, Schlom D G, Iniguez J, Huey B D, Ramesh R 2014 Nature 516 370

    [51]

    Doerr K, Herklotz A 2014 Nature 516 337

    [52]

    Zhou Z, Trassin M, Gao Y, Gao Y, Qiu D, Ashraf K, Nan T, Yang X, Bowden S R, Pierce D T, Stiles M D, Unguris J, Liu M, Howe B M, Brown G J, Salahuddin S, Ramesh R, Sun N X 2015 Nat. Commun. 6 6082

    [53]

    Chen A, Zhao Y, Li P, Zhang X, Peng R, Huang H, Zou L, Zheng X, Zhang S, Miao P, Lu Y, Cai J, Nan C 2016 Adv. Mater. 28 363

    [54]

    Liu M, Lou J, Li S, Sun N X 2011 Adv. Funct. Mater. 21 2593

    [55]

    Lebedev G A, Viala B, Lafont T, Zakharov D I, Cugat O, Delamare J 2011 Appl. Phys. Lett. 99 232502

    [56]

    Xue X, Zhou Z, Peng B, Zhu M, Zhang Y, Ren W, Ren T, Yang X, Nan T, Sun N X, Liu M 2015 Sci. Rep. 5 16480

    [57]

    Huong Giang D T, Duc N H, Agnus G, Maroutian T, Lecoeur P 2013 Adv. Nat. Sci.: Nanosci. Nanotechnol. 4 025017

    [58]

    Cui J, Hockel J L, Nordeen P K, Pisani D M, Liang C, Carman G P, Lynch C S 2013 Appl. Phys. Lett. 103 232905

    [59]

    Cui J, Hockel J L, Nordeen P K, Pisani D M, Carman G P, Lynch C S 2014 J. Appl. Phys. 115 17C711

    [60]

    Biswas A K, Bandyopadhyay S, Atulasimha J 2014 Appl. Phys. Lett. 105 072408

    [61]

    Biswas A K, Bandyopadhyay S, Atulasimha J 2014 Appl. Phys. Lett. 104 232403

    [62]

    Biswas A K, Ahmad H, Atulasimha J, Bandyopadhyay S 2017 Nano Lett. 17 3478

    [63]

    Wang J J, Hu J M, Ma J, Zhang J X, Chen L Q, Nan C W 2014 Sci. Rep. 4 7507

    [64]

    Peng R, Wang J J, Hu J, Chen L, Nan C 2015 Appl. Phys. Lett. 106 142901

    [65]

    Buzzi M, Chopdekar R V, Hockel J L, Bur A, Wu T, Pilet N, Warnicke P, Carman G P, Heyderman L J, Nolting F 2013 Phys. Rev. Lett. 111 027204

    [66]

    Manipatruni S, Nikonov D E, Young I A 2018 Nat. Phys. 14 338

    [67]

    Gajek M, Bibes M, Fusil S, Bouzehouane K, Fontcuberta J, Barthelemy A, Fert A 2007 Nat. Mater. 6 296

    [68]

    Garcia V, Bibes M, Bocher L, Valencia S, Kronast F, Crassous A, Moya X, Enouz-Vedrenne S, Gloter A, Imhoff D, Deranlot C, Mathur N D, Fusil S, Bouzehouane K, Barthelemy A 2010 Science 327 1106

    [69]

    Pantel D, Goetze S, Hesse D, Alexe M 2012 Nat. Mater. 11 289

    [70]

    Pertsev N A, Kohlstedt H 2009 Appl. Phys. Lett. 95 163503

    [71]

    Hu J, Li Z, Chen L, Nan C 2011 Nat. Commun. 2 553

    [72]

    Li P, Chen A, Li D, Zhao Y, Zhang S, Yang L, Liu Y, Zhu M, Zhang H, Han X 2014 Adv. Mater. 26 4320

    [73]

    Zhao Z, Jamali M, D'Souza N, Zhang D, Bandyopadhyay S, Atulasimha J, Wang J 2016 Appl. Phys. Lett. 109 92403

    [74]

    Guo X, Zuo Y, Li D, Cui B, Wu K, Yun J, Wang T, Xi L 2016 Appl. Phys. Lett. 108 042403

    [75]

    Guo X, Han X, Zuo Y, Zhang J, Li D, Cui B, Wu K, Yun J, Wang T, Peng Y, Xi L 2016 Appl. Phys. Lett. 108 152401

    [76]

    Miao P, Zhao Y, Luo N, Zhao D, Chen A, Sun Z, Guo M, Zhu M, Zhang H, Li Q 2016 Sci. Rep. 6 19965

    [77]

    Baek S H, Park J, Kim D M, Aksyuk V A, Das R R, Bu S D, Felker D A, Lettieri J, Vaithyanathan V, Bharadwaja S S N, Bassiri-Gharb N, Chen Y B, Sun H P, Folkman C M, Jang H W, Kreft D J, Streiffer S K, Ramesh R, Pan X Q, Trolier-Mckinstry S, Schlom D G, Rzchowski M S, Blick R H, Eom C B 2011 Science 334 958

    [78]

    Soumyanarayanan A, Reyren N, Fert A, Panagopoulos C 2016 Nature 539 509

    [79]

    Manchon A, Koo H C, Nitta J, Frolov S M, Duine R A 2015 Nat. Mater. 14 871

    [80]

    Sinova J, Valenzuela S O, Wunderlich J, Back C H, Jungwirth T 2015 Rev. Mod. Phys. 87 1213

    [81]

    Yu X Z, Onose Y, Kanazawa N, Park J H, Han J H, Matsui Y, Nagaosa N, Tokura Y 2010 Nature 465 901

    [82]

    Yu X Z, Kanazawa N, Onose Y, Kimoto K, Zhang W Z, Ishiwata S, Matsui Y, Tokura Y 2011 Nat. Mater. 10 106

    [83]

    Jiang W, Upadhyaya P, Zhang W, Yu G, Jungfleisch M B, Fradin F Y, Pearson J E, Tserkovnyak Y, Wang K L, Heinonen O, te Velthuis S G E, Hoffmann A 2015 Science 349 283

    [84]

    Cai K, Yang M, Ju H, Wang S, Ji Y, Li B, Edmonds K W, Sheng Y, Zhang B, Zhang N, Liu S, Zheng H, Wang K 2017 Nat. Mater. 16 712

    [85]

    Liu Y, Lei N, Zhao W, Liu W, Ruotolo A, Braun H, Zhou Y 2017 Appl. Phys. Lett. 111 022406

    [86]

    Li Z, Zhang Y, Huang Y, Wang C, Zhang X, Liu Y, Zhou Y, Kang W, Koli S C, Lei N 2018 J. Magn. Magn. Mater. 455 19

  • [1]

    Stamps R L, Breitkreutz S, Akerman J, Chumak A V, Otani Y, Bauer G E W, Thiele J, Bowen M, Majetich S A, Klaeui M, Prejbeanu I L, Dieny B, Dempsey N M, Hillebrands B 2014 J. Phys. D: Appl. Phys. 47 333001

    [2]

    Brataas A, Kent A D, Ohno H 2012 Nat. Mater. 11 372

    [3]

    Chappert C, Fert A, van Dau F N 2007 Nat. Mater. 6 813

    [4]

    Spaldin N A, Fiebig M 2005 Science 309 391

    [5]

    Fiebig M 2005 J. Phys. D: Appl. Phys. 38 R123

    [6]

    Fiebig M, Lottermoser T, Meier D, Trassin M 2016 Nat. Rev. Mater. 1 16046

    [7]

    Dong S, Liu J, Cheong S, Ren Z 2015 Adv. Phys. 64 519

    [8]

    Eerenstein W, Mathur N D, Scott J F 2006 Nature 442 759

    [9]

    Schmid H 2008 J. Phys.: Condens. Matter 20 434201

    [10]

    Bibes M 2012 Nat. Mater. 11 354

    [11]

    Tokura Y 2007 J. Magn. Magn. Mater. 310 1145

    [12]

    Matsukura F, Tokura Y, Ohno H 2015 Nat. Nanotechnol. 10 209

    [13]

    Vaz C A F 2012 J. Phys.: Condens. Matter 24 333201

    [14]

    Sun N X, Srinivasan G 2012 SPIN 2 1240004

    [15]

    Song C, Cui B, Li F, Zhou X, Pan F 2017 Prog. Mater. Sci. 87 33

    [16]

    Hill N A 2000 J. Phys. Chem. B 104 6694

    [17]

    Ma J, Hu J, Li Z, Nan C 2011 Adv. Mater. 23 1062

    [18]

    Nan C, Bichurin M I, Dong S, Viehland D, Srinivasan G 2008 J. Appl. Phys. 103 031101

    [19]

    Chen A T, Zhao Y G 2016 APL Mater. 4 032303

    [20]

    Hu J, Chen L, Nan C 2016 Adv. Mater. 28 15

    [21]

    Fusil S, Garcia V, Barthlmy A, Bibes M 2014 Annu. Rev. Mater. Res. 44 91

    [22]

    Park S E, Shrout T R 1997 J. Appl. Phys. 82 1804

    [23]

    Wu T, Bur A, Zhao P, Mohanchandra K P, Wong K, Wang K L, Lynch C S, Carman G P 2011 Appl. Phys. Lett. 98 012504

    [24]

    Yang S, Peng R, Jiang T, Liu Y, Feng L, Wang J, Chen L, Li X, Nan C 2014 Adv. Mater. 26 7091

    [25]

    Zhang S, Zhao Y, Xiao X, Wu Y, Rizwan S, Yang L, Li P, Wang J, Zhu M, Zhang H, Jin X, Han X 2014 Sci. Rep. 4 3727

    [26]

    Zhang S, Zhao Y G, Li P S, Yang J J, Rizwan S, Zhang J X, Seidel J, Qu T L, Yang Y J, Luo Z L, He Q, Zou T, Chen Q P, Wang J W, Yang L F, Sun Y, Wu Y Z, Xiao X, Jin X F, Huang J, Gao C, Han X F, Ramesh R 2012 Phys. Rev. Lett. 108 137203

    [27]

    Yang J J, Zhao Y G, Tian H F, Luo L B, Zhang H Y, He Y J, Luo H S 2009 Appl. Phys. Lett. 94 212504

    [28]

    Thiele C, Doerr K, Bilani O, Roedel J, Schultz L 2007 Phys. Rev. B 75 054408

    [29]

    Nan T, Zhou Z, Liu M, Yang X, Gao Y, Assaf B A, Lin H, Velu S, Wang X, Luo H, Chen J, Akhtar S, Hu E, Rajiv R, Krishnan K, Sreedhar S, Heiman D, Howe B M, Brown G J, Sun N X 2014 Sci. Rep. 4 3688

    [30]

    Fu H X, Cohen R E 2000 Nature 403 281

    [31]

    Yang L, Zhao Y, Zhang S, Li P, Gao Y, Yang Y, Huang H, Miao P, Liu Y, Chen A, Nan C W, Gao C 2014 Sci. Rep. 4 4591

    [32]

    Zhang S, Chen Q, Liu Y, Chen A, Yang L, Li P, Ming Z S, Yu Y, Sun W, Zhang X, Zhao Y, Sun Y, Zhao Y 2017 ACS Appl. Mater. Inter. 9 20637

    [33]

    Liu Y, Zhao Y, Li P, Zhang S, Li D, Wu H, Chen A, Xu Y, Han X F, Li S, Ling D, Luo H 2016 ACS Appl. Mater. Inter. 8 3784

    [34]

    Li P, Zhao Y, Zhang S, Chen A, Li D, Ma J, Liu Y, Pierce D T, Unguris J, Piao H, Zhang H, Zhu M, Zhang X, Han X, Pan M, Nan C 2017 ACS Appl. Mater. Inter. 9 2642

    [35]

    Ba Y, Liu Y, Li P, Wu L, Unguris J, Pierce D T, Yang D, Feng C, Zhang Y, Wu H, Li D, Chang Y, Zhang J, Han X, Cai J, Nan C, Zhao Y 2018 Adv. Funct. Mater. 28 1706448

    [36]

    Liu M, Howe B M, Grazulis L, Mahalingam K, Nan T, Sun N X, Brown G J 2013 Adv. Mater. 25 4886

    [37]

    Liu M, Hoffman J, Wang J, Zhang J, Nelson-Cheeseman B, Bhattacharya A 2013 Sci. Rep. 3 1876

    [38]

    Nan T, Liu M, Ren W, Ye Z, Sun N X 2014 Sci. Rep. 4 5931

    [39]

    Liu M, Obi O, Cai Z, Lou J, Yang G, Ziemer K S, Sun N X 2010 J. Appl. Phys. 107 073916

    [40]

    Ikeda S, Miura K, Yamamoto H, Mizunuma K, Gan H D, Endo M, Kanai S, Hayakawa J, Matsukura F, Ohno H 2010 Nat. Mater. 9 721

    [41]

    Kim J, Ryu K, Jeong J, Shin S 2010 Appl. Phys. Lett. 97 252508

    [42]

    Yu G, Wang Z, Abolfath-Beygi M, He C, Li X, Wong K L, Nordeen P, Wu H, Carman G P, Han X, Alhomoudi I A, Amiri P K, Wang K L 2015 Appl. Phys. Lett. 106 072402

    [43]

    Shirahata Y, Shiina R, Gonzalez D L, Franke K J A, Wada E, Itoh M, Pertsev N A, van Dijken S, Taniyama T 2015 Npg Asia Mater. 7 e198

    [44]

    Xiao X, Sun L, Luo Y M, Zhang D, Liang J H, Wu Y Z 2018 J. Phys. D: Appl. Phys. 51 115001

    [45]

    Sun Y, Ba Y, Chen A, He W, Wang W, Zheng X, Zou L, Zhang Y, Yang Q, Yan L, Feng C, Zhang Q, Ca J, Wu W, Liu M, Gu L, Cheng Z, Nan C, Qiu Z, Wu Y, Li J, Zhao Y 2017 ACS Appl. Mater. Inter. 9 10855

    [46]

    Yang Q, Nan T, Zhang Y, Zhou Z, Peng B, Ren W, Ye Z, Sun N X, Liu M 2017 Phys. Rev. Appl. 8 044006

    [47]

    Peng B, Zhou Z, Nan T, Dong G, Feng M, Yang Q, Wang X, Zhao S, Xian D, Jiang Z D, Ren W, Ye Z, Sung N X, Liu M 2017 ACS Nano 11 4337

    [48]

    Tokunaga Y, Taguchi Y, Arima T, Tokura Y 2012 Nat. Phys. 8 838

    [49]

    Chai Y S, Kwon S, Chun S H, Kim I, Jeon B, Kim K H, Lee S 2014 Nat. Commun. 5 4208

    [50]

    Heron J T, Bosse J L, He Q, Gao Y, Trassin M, Ye L, Clarkson J D, Wang C, Liu J, Salahuddin S, Ralph D C, Schlom D G, Iniguez J, Huey B D, Ramesh R 2014 Nature 516 370

    [51]

    Doerr K, Herklotz A 2014 Nature 516 337

    [52]

    Zhou Z, Trassin M, Gao Y, Gao Y, Qiu D, Ashraf K, Nan T, Yang X, Bowden S R, Pierce D T, Stiles M D, Unguris J, Liu M, Howe B M, Brown G J, Salahuddin S, Ramesh R, Sun N X 2015 Nat. Commun. 6 6082

    [53]

    Chen A, Zhao Y, Li P, Zhang X, Peng R, Huang H, Zou L, Zheng X, Zhang S, Miao P, Lu Y, Cai J, Nan C 2016 Adv. Mater. 28 363

    [54]

    Liu M, Lou J, Li S, Sun N X 2011 Adv. Funct. Mater. 21 2593

    [55]

    Lebedev G A, Viala B, Lafont T, Zakharov D I, Cugat O, Delamare J 2011 Appl. Phys. Lett. 99 232502

    [56]

    Xue X, Zhou Z, Peng B, Zhu M, Zhang Y, Ren W, Ren T, Yang X, Nan T, Sun N X, Liu M 2015 Sci. Rep. 5 16480

    [57]

    Huong Giang D T, Duc N H, Agnus G, Maroutian T, Lecoeur P 2013 Adv. Nat. Sci.: Nanosci. Nanotechnol. 4 025017

    [58]

    Cui J, Hockel J L, Nordeen P K, Pisani D M, Liang C, Carman G P, Lynch C S 2013 Appl. Phys. Lett. 103 232905

    [59]

    Cui J, Hockel J L, Nordeen P K, Pisani D M, Carman G P, Lynch C S 2014 J. Appl. Phys. 115 17C711

    [60]

    Biswas A K, Bandyopadhyay S, Atulasimha J 2014 Appl. Phys. Lett. 105 072408

    [61]

    Biswas A K, Bandyopadhyay S, Atulasimha J 2014 Appl. Phys. Lett. 104 232403

    [62]

    Biswas A K, Ahmad H, Atulasimha J, Bandyopadhyay S 2017 Nano Lett. 17 3478

    [63]

    Wang J J, Hu J M, Ma J, Zhang J X, Chen L Q, Nan C W 2014 Sci. Rep. 4 7507

    [64]

    Peng R, Wang J J, Hu J, Chen L, Nan C 2015 Appl. Phys. Lett. 106 142901

    [65]

    Buzzi M, Chopdekar R V, Hockel J L, Bur A, Wu T, Pilet N, Warnicke P, Carman G P, Heyderman L J, Nolting F 2013 Phys. Rev. Lett. 111 027204

    [66]

    Manipatruni S, Nikonov D E, Young I A 2018 Nat. Phys. 14 338

    [67]

    Gajek M, Bibes M, Fusil S, Bouzehouane K, Fontcuberta J, Barthelemy A, Fert A 2007 Nat. Mater. 6 296

    [68]

    Garcia V, Bibes M, Bocher L, Valencia S, Kronast F, Crassous A, Moya X, Enouz-Vedrenne S, Gloter A, Imhoff D, Deranlot C, Mathur N D, Fusil S, Bouzehouane K, Barthelemy A 2010 Science 327 1106

    [69]

    Pantel D, Goetze S, Hesse D, Alexe M 2012 Nat. Mater. 11 289

    [70]

    Pertsev N A, Kohlstedt H 2009 Appl. Phys. Lett. 95 163503

    [71]

    Hu J, Li Z, Chen L, Nan C 2011 Nat. Commun. 2 553

    [72]

    Li P, Chen A, Li D, Zhao Y, Zhang S, Yang L, Liu Y, Zhu M, Zhang H, Han X 2014 Adv. Mater. 26 4320

    [73]

    Zhao Z, Jamali M, D'Souza N, Zhang D, Bandyopadhyay S, Atulasimha J, Wang J 2016 Appl. Phys. Lett. 109 92403

    [74]

    Guo X, Zuo Y, Li D, Cui B, Wu K, Yun J, Wang T, Xi L 2016 Appl. Phys. Lett. 108 042403

    [75]

    Guo X, Han X, Zuo Y, Zhang J, Li D, Cui B, Wu K, Yun J, Wang T, Peng Y, Xi L 2016 Appl. Phys. Lett. 108 152401

    [76]

    Miao P, Zhao Y, Luo N, Zhao D, Chen A, Sun Z, Guo M, Zhu M, Zhang H, Li Q 2016 Sci. Rep. 6 19965

    [77]

    Baek S H, Park J, Kim D M, Aksyuk V A, Das R R, Bu S D, Felker D A, Lettieri J, Vaithyanathan V, Bharadwaja S S N, Bassiri-Gharb N, Chen Y B, Sun H P, Folkman C M, Jang H W, Kreft D J, Streiffer S K, Ramesh R, Pan X Q, Trolier-Mckinstry S, Schlom D G, Rzchowski M S, Blick R H, Eom C B 2011 Science 334 958

    [78]

    Soumyanarayanan A, Reyren N, Fert A, Panagopoulos C 2016 Nature 539 509

    [79]

    Manchon A, Koo H C, Nitta J, Frolov S M, Duine R A 2015 Nat. Mater. 14 871

    [80]

    Sinova J, Valenzuela S O, Wunderlich J, Back C H, Jungwirth T 2015 Rev. Mod. Phys. 87 1213

    [81]

    Yu X Z, Onose Y, Kanazawa N, Park J H, Han J H, Matsui Y, Nagaosa N, Tokura Y 2010 Nature 465 901

    [82]

    Yu X Z, Kanazawa N, Onose Y, Kimoto K, Zhang W Z, Ishiwata S, Matsui Y, Tokura Y 2011 Nat. Mater. 10 106

    [83]

    Jiang W, Upadhyaya P, Zhang W, Yu G, Jungfleisch M B, Fradin F Y, Pearson J E, Tserkovnyak Y, Wang K L, Heinonen O, te Velthuis S G E, Hoffmann A 2015 Science 349 283

    [84]

    Cai K, Yang M, Ju H, Wang S, Ji Y, Li B, Edmonds K W, Sheng Y, Zhang B, Zhang N, Liu S, Zheng H, Wang K 2017 Nat. Mater. 16 712

    [85]

    Liu Y, Lei N, Zhao W, Liu W, Ruotolo A, Braun H, Zhou Y 2017 Appl. Phys. Lett. 111 022406

    [86]

    Li Z, Zhang Y, Huang Y, Wang C, Zhang X, Liu Y, Zhou Y, Kang W, Koli S C, Lei N 2018 J. Magn. Magn. Mater. 455 19

  • [1] 王日兴, 曾逸涵, 赵婧莉, 李连, 肖运昌. 自旋轨道矩协助自旋转移矩驱动磁化强度翻转.  , 2023, 72(8): 087202. doi: 10.7498/aps.72.20222433
    [2] 汤家鑫, 范志强, 邓小清, 张振华. 非金属原子掺杂的GaN纳米管: 电子结构、输运特性及电场调控效应.  , 2022, 71(11): 116101. doi: 10.7498/aps.71.20212342
    [3] 丁俊, 文黎巍, 李瑞雪, 张英. 铁电极化翻转对硅烯异质结中电子性质的调控.  , 2022, 71(17): 177303. doi: 10.7498/aps.71.20220815
    [4] 孟婧, 冯心薇, 邵倾蓉, 赵佳鹏, 谢亚丽, 何为, 詹清峰. 具有不同交换偏置方向的外延FeGa/IrMn双层膜的磁各向异性与磁化翻转.  , 2022, 71(12): 127501. doi: 10.7498/aps.71.20220166
    [5] 袁佳卉, 杨晓阔, 张斌, 陈亚博, 钟军, 危波, 宋明旭, 崔焕卿. 混合时钟驱动的自旋神经元器件激活特性和计算性能.  , 2021, 70(20): 207502. doi: 10.7498/aps.70.20210611
    [6] 黎华梅, 侯鹏飞, 王金斌, 宋宏甲, 钟向丽. HfO2基铁电场效应晶体管读写电路的单粒子翻转效应模拟.  , 2020, 69(9): 098502. doi: 10.7498/aps.69.20200123
    [7] 安明, 董帅. 电荷媒介的磁电耦合: 从铁电场效应到电荷序铁电体.  , 2020, 69(21): 217502. doi: 10.7498/aps.69.20201193
    [8] 王日兴, 李雪, 李连, 肖运昌, 许思维. 三端磁隧道结的稳定性分析.  , 2019, 68(20): 207201. doi: 10.7498/aps.68.20190927
    [9] 黄颖妆, 齐岩, 杜安, 刘佳宏, 艾传韡, 戴海燕, 张小丽, 黄雨嫣. 复合多铁链的磁电耦合行为与外场调控.  , 2018, 67(24): 247501. doi: 10.7498/aps.67.20181561
    [10] 张楠, 张保, 杨美音, 蔡凯明, 盛宇, 李予才, 邓永城, 王开友. 电学方法调控磁化翻转和磁畴壁运动的研究进展.  , 2017, 66(2): 027501. doi: 10.7498/aps.66.027501
    [11] 杨晓阔, 张斌, 崔焕卿, 李伟伟, 王森. 基于多铁逻辑的铁磁耦合互连线磁化动态模拟.  , 2016, 65(23): 237502. doi: 10.7498/aps.65.237502
    [12] 李永超, 周航, 潘丹峰, 张浩, 万建国. Co/Co3O4/PZT多铁复合薄膜的交换偏置效应及其磁电耦合特性.  , 2015, 64(9): 097701. doi: 10.7498/aps.64.097701
    [13] 郝建红, 高辉. 磁存储器环形带切口结构自由层磁化反转的微磁模拟.  , 2013, 62(5): 057502. doi: 10.7498/aps.62.057502
    [14] 仲崇贵, 蒋青, 方靖淮, 江学范, 罗礼进. 1-3型纳米多铁复合薄膜中电场诱导的磁化研究.  , 2009, 58(10): 7227-7234. doi: 10.7498/aps.58.7227
    [15] 张磊, 胡九宁, 任敏, 董浩, 邓宁, 陈培毅. 电流感应磁化翻转效应的改进的系综模型.  , 2009, 58(1): 488-493. doi: 10.7498/aps.58.488
    [16] 董浩, 任敏, 张磊, 邓宁, 陈培毅. 电流驱动磁化翻转中的热效应.  , 2009, 58(10): 7176-7182. doi: 10.7498/aps.58.7176
    [17] 高瑞鑫, 徐振, 陈达鑫, 徐初东, 陈志峰, 刘晓东, 周仕明, 赖天树. GdFeCo磁光薄膜中RE-TM反铁磁耦合与激光感应超快磁化翻转动力学研究.  , 2009, 58(1): 580-584. doi: 10.7498/aps.58.580
    [18] 张 磊, 任 敏, 胡九宁, 邓 宁, 陈培毅. 用外磁场控制电流感应磁化翻转效应中的临界电流方法.  , 2008, 57(4): 2427-2431. doi: 10.7498/aps.57.2427
    [19] 任 敏, 张 磊, 胡九宁, 邓 宁, 陈培毅. 基于磁动力学方程的电流感应磁化翻转效应的宏观模型.  , 2007, 56(5): 2863-2867. doi: 10.7498/aps.56.2863
    [20] 彭子龙, 韩秀峰, 赵素芬, 魏红祥, 杜关祥, 詹文山. 磁随机存储器中垂直电流驱动的磁性隧道结自由层的磁化翻转.  , 2006, 55(2): 860-864. doi: 10.7498/aps.55.860
计量
  • 文章访问数:  8526
  • PDF下载量:  538
  • 被引次数: 0
出版历程
  • 收稿日期:  2018-07-02
  • 修回日期:  2018-07-15
  • 刊出日期:  2018-08-05

/

返回文章
返回
Baidu
map