• Journal of Semiconductors
  • Vol. 43, Issue 11, 112501 (2022)
Xueqin Zhao1, Jinou Dong1, Licheng Fu1, Yilun Gu1, Rufei Zhang1, Qiaolin Yang1, Lingfeng Xie1, Yinsong Tang1, and Fanlong Ning1、2、3、*
Author Affiliations
  • 1Zhejiang Province Key Laboratory of Quantum Technology and Device and Department of Physics, Zhejiang University, Hangzhou 310027, China
  • 2Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing 210093, China
  • 3State Key Laboratory of Silicon Materials, Zhejiang University, Hangzhou 310027, China
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    DOI: 10.1088/1674-4926/43/11/112501 Cite this Article
    Xueqin Zhao, Jinou Dong, Licheng Fu, Yilun Gu, Rufei Zhang, Qiaolin Yang, Lingfeng Xie, Yinsong Tang, Fanlong Ning. (Ba1−xNax)F(Zn1−xMnx)Sb: A novel fluoride-antimonide magnetic semiconductor with decoupled charge and spin doping[J]. Journal of Semiconductors, 2022, 43(11): 112501 Copy Citation Text show less
    References

    [1] H Ohno. Making nonmagnetic semiconductors ferromagnetic. Science, 281, 951(1998).

    [2] T Dietl, H Ohno. Dilute ferromagnetic semiconductors: Physics and spintronic structures. Rev Mod Phys, 86, 187(2014).

    [3] T Dietl. A ten-year perspective on dilute magnetic semiconductors and oxides. Nat Mater, 9, 965(2010).

    [4] T Dietl, A Bonanni, H Ohno. Families of magnetic semiconductors — an overview. J Semiconduct, 40, 080301(2019).

    [5] Y L Gu, S L Guo, F L Ning. Progress on microscopic properties of diluted magnetic semiconductors by NMR andμSR. J Semicond, 40, 081506(2019).

    [6] G Q Zhao, Z Deng, C Q Jin. Advances in new generation diluted magnetic semiconductors with independent spin and charge doping. J Semicond, 40, 081505(2019).

    [7] H Munekata, H Ohno, S von Molnar et al. Diluted magnetic III-V semiconductors. Phys Rev Lett, 63, 1849(1989).

    [8] M Wang, R P Campion, A W Rushforth et al. Achieving high curie temperature in (Ga, Mn)As. Appl Phys Lett, 93, 132103(2008).

    [9] L Chen, X Yang, F H Yang et al. Enhancing the Curie temperature of ferromagnetic semiconductor (Ga, Mn)As to 200 K via nanostructure engineering. Nano Lett, 11, 2584(2011).

    [10] D Ferrand, J Cibert, C Bourgognon et al. Carrier-induced ferromagnetic interactions in p-doped Zn1−xMnxTe epilayers. J Cryst Growth, 214/215, 387(2000).

    [11] A Haury, A Wasiela, A Arnoult et al. Observation of a ferromagnetic transition induced by two-dimensional hole gas in modulation-doped CdMnTe quantum wells. Phys Rev Lett, 79, 511(1997).

    [12] T Dietl, H Ohno, F Matsukura et al. Zener model description of ferromagnetism in zinc-blende magnetic semiconductors. Science, 287, 1019(2000).

    [13] T Dietl, H Ohno, F Matsukura. Hole-mediated ferromagnetism in tetrahedrally coordinated semiconductors. Phys Rev B, 63, 195205(2001).

    [14] M L Reed, N A El-Masry, H H Stadelmaier et al. Room temperature ferromagnetic properties of (Ga, Mn)N. Appl Phys Lett, 79, 3473(2001).

    [15] S L Guo, F L Ning. Progress of novel diluted ferromagnetic semiconductors with decoupled spin and charge doping: Counterparts of Fe-based superconductors. Chin Phys B, 27, 097502(2018).

    [16] Z Deng, C Q Jin, Q Q Liu et al. Li(Zn,Mn)As as a new generation ferromagnet based on a 1-2-5 semiconductor. Nat Commun, 2, 1(2011).

    [17] C Ding, H Y Man, C Qin et al. (La1-xBax)(Zn1-xMnx)AsO: A two dimensional “1111” diluted magnetic semiconductor in bulk form. Phys Rev B, 88, 041102(2013).

    [18] J Masek, J Kudrnovský, F MȢca et al. Dilute moment n-type ferromagnetic semiconductor Li(Zn, Mn)As. Phys Rev Lett, 98, 067202(2007).

    [19] X C Wang, Q Q Liu, Y X Lv et al. The superconductivity at 18 K in LiFeAs system. Solid State Commun, 148, 538(2008).

    [20] K Zhao, Z Deng, X C Wang et al. New diluted ferromagnetic semiconductor with Curie temperature up to 180 K and isostructural to the n122o iron-based superconductors. Nat Commun, 4, 1442(2013).

    [21] K Zhao, B J Chen, G Q Zhao et al. Ferromagnetism at 230 K in (Ba0.7K0.3)(Zn0.85Mn0.15)2As2 diluted magnetic semiconductor. Chin Sci Bull, 59, 2524(2014).

    [22] S R Dunsiger, J P Carlo, T Goko et al. Spatially homogeneous ferromagnetism of (Ga, Mn)As. Nat Mater, 9, 299(2010).

    [23] X J Yang, Y K Li, C Y Shen et al. Sr and Mn co-doped LaCuSO: A wide band gap oxide diluted magnetic semiconductor withTC around 200 K. Appl Phys Lett, 103, 022410(2013).

    [24] Agulyansky A. Main principals of the chemistry of tantalum and niobium fluoride compounds. Elsevier, 2004

    [25] B H Toby, R B Von Dreele. GSAS-II: The genesis of a modern open-source all purpose crystallography software package. J Appl Crystallogr, 46, 544(2013).

    [26] V Johnson, W Jeitschko. ZrCuSiAs: A “filled” PbFCl type. J Solid State Chem, 11, 161(1974).

    [27] Y Kamihara, T Watanabe, M Hirano et al. Iron-based layered superconductor La[O1–xFx] FeAs (x = 0.05–0.12) withTc = 26 K. J Am Chem Soc, 130, 3296(2008).

    [28] H Kabbour, L Cario, F Boucher. Rational design of new inorganic compounds with the ZrSiCuAs structure type using 2D building blocks. J Mater Chem, 15, 3525(2005).

    [29] L C Fu, Y L Gu, S L Guo et al. Ferromagnetism in fluoride-antimonide SrF(Zn1–2xMnxCux)Sb with a quasi two dimensional structure. J Magn Magn Mater, 483, 95(2019).

    [30] J Dho, W S Kim, N H Hur. Reentrant spin glass behavior in Cr-doped perovskite manganite. Phys Rev Lett, 89, 027202(2002).

    [31] H J Zhang, R F Zhang, L C Fu et al. (La1−xSrx)(Zn1−xMnx)SbO: A novel 1111-type diluted magnetic semiconductor. Acta Physica Sinica, 70, 107501(2021).

    [32] Y L Gu, H J Zhang, R F Zhang et al. A novel diluted magnetic semiconductor (Ca, Na)(Zn, Mn)2Sb2 with decoupled charge and spin doping. Chin Phys B, 29, 057507(2020).

    [33] L C Fu, Y L Gu, G X Zhi et al. Drastic improvement of Curie temperature by chemical pressure in N-type diluted magnetic semiconductor Ba(Zn, Co)2As2. Sci Rep, 11, 7652(2021).

    [34] B J Chen, Z Deng, W M Li et al. New fluoride-arsenide diluted magnetic semiconductor (Ba, K)F(Zn, Mn)As with independent spin and charge doping. Sci Rep, 6, 36578(2016).

    [35] G X Zhi, S L Guo, R F Zhang et al. Cu2(Zn, Mn)(Sn, Al)Se4: A diluted magnetic semiconductor with decoupled charge and spin doping. J Magn Magn Mater, 536, 168064(2021).

    [36] X F Liu, S Matsuishi, S Fujitsu et al. Spin-glass-like behavior of CaNi1−xMnxGe. Phys Rev B, 84, 214439(2011).

    [37] P N Lekshmi, G R Raji, M Vasundhara. Re-entrant spin glass behaviour and magneto-dielectric effect in insulating Sm2NiMnO6 double perovskite. J Mater Chem C, 1, 6565(2013).

    [38] H Y Man, S L Guo, Y Sui et al. Ba(Zn1−2xMnxCux)2As2: A bulk form diluted ferromagnetic semiconductor with Mn and Cu codoping at Zn sites. Sci Rep, 5, 15507(2015).

    [39] S Yu, G Q Zhao, Y Peng et al. (Ba, K)(Zn, Mn)2Sb2: A new type of diluted magnetic semiconductor. Crystals, 10, 690(2020).

    [40] K Binder, A P Young. Spin glasses: Experimental facts, theoretical concepts, and open questions. Rev Mod Phys, 58, 801(1986).

    [41] W Han, K Zhao, X C Wang et al. Diluted ferromagnetic semiconductor (LaCa)(ZnMn)SbO isostructural to “1111” type iron pnictide superconductors. Sci China Phys Mech Astron, 56, 2026(2013).

    [42] T Jungwirth, J Sinova, J Mašek et al. Theory of ferromagnetic (III, Mn)V semiconductors. Rev Mod Phys, 78, 809(2006).

    Xueqin Zhao, Jinou Dong, Licheng Fu, Yilun Gu, Rufei Zhang, Qiaolin Yang, Lingfeng Xie, Yinsong Tang, Fanlong Ning. (Ba1−xNax)F(Zn1−xMnx)Sb: A novel fluoride-antimonide magnetic semiconductor with decoupled charge and spin doping[J]. Journal of Semiconductors, 2022, 43(11): 112501
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