scholarly journals Thickness dependence of the triplet spin-valve effect in superconductor–ferromagnet–ferromagnet heterostructures

2016 ◽  
Vol 7 ◽  
pp. 957-969 ◽  
Author(s):  
Daniel Lenk ◽  
Vladimir I Zdravkov ◽  
Jan-Michael Kehrle ◽  
Günter Obermeier ◽  
Aladin Ullrich ◽  
...  

Background: In nanoscale layered S/F1/N/F2/AF heterostructures, the generation of a long-range, odd-in-frequency spin-projection one triplet component of superconductivity, arising at non-collinear alignment of the magnetizations of F1 and F2, exhausts the singlet state. This yields the possibility of a global minimum of the superconducting transition temperature T c, i.e., a superconducting triplet spin-valve effect, around mutually perpendicular alignment. Results: The superconducting triplet spin valve is realized with S = Nb a singlet superconductor, F1 = Cu41Ni59 and F2 = Co ferromagnetic metals, AF = CoO x an antiferromagnetic oxide, and N = nc-Nb a normal conducting (nc) non-magnetic metal, which serves to decouple F1 and F2. The non-collinear alignment of the magnetizations is obtained by applying an external magnetic field parallel to the layers of the heterostructure and exploiting the intrinsic perpendicular easy-axis of the magnetization of the Cu41Ni59 thin film in conjunction with the exchange bias between CoO x and Co. The magnetic configurations are confirmed by superconducting quantum interference device (SQUID) magnetic moment measurements. The triplet spin-valve effect has been investigated for different layer thicknesses, d F1, of F1 and was found to decay with increasing d F1. The data is described by an empirical model and, moreover, by calculations using the microscopic theory. Conclusion: The long-range triplet component of superconducting pairing is generated from the singlet component mainly at the N/F2 interface, where the amplitude of the singlet component is suppressed exponentially with increasing distance d F1. The decay length of the empirical model is found to be comparable to twice the electron mean free path of F1 and, thus, to the decay length of the singlet component in F1. Moreover, the obtained data is in qualitative agreement with the microscopic theory, which, however, predicts a (not investigated) breakdown of the triplet spin-valve effect for d F1 smaller than 0.3 to 0.4 times the magnetic coherence length, ξF1.

2015 ◽  
Vol 233-234 ◽  
pp. 745-749 ◽  
Author(s):  
Rafael G. Deminov ◽  
Lenar R. Tagirov ◽  
Rashid R. Gaifullin ◽  
Yakov V. Fominov ◽  
Tatyana Yu. Karminskaya ◽  
...  

We study the superconducting transition temperature Tc of F2/F1/S trilayers (Fi is a metallic ferromagnet, S is a s-superconductor), where the long-range triplet superconducting component is generated at canted magnetizations of the F layers. In this paper we show that it is possible to realize different spin-valve effect modes - the standard switching effect, the triplet spin-valve effect, reentrant Tc(α) dependence or reentrant Tc(α) dependence with the inverse switching effect - by variation of the F2/F1 interface transparency or the exchange splitting energy. In addition, we show that positionof the Tc minimum can be changed by joint variation of the F2/F1 interface transparency and the layerthicknesses.


2016 ◽  
Vol 4 (37) ◽  
pp. 8711-8715 ◽  
Author(s):  
Muhammad Zahir Iqbal ◽  
Salma Siddique ◽  
Ghulam Hussain ◽  
Muhammad Waqas Iqbal

Graphene and hexagonal boron nitride (hBN) have shown fascinating features in spintronics due to their metallic and tunneling behaviors, respectively. In this work, we report for the first time room temperature spin valve effect in NiFe/Gr–hBN/Co configuration.


2020 ◽  
Vol 56 (5) ◽  
pp. 553-557
Author(s):  
A. S. Tarasov ◽  
V. A. Golyashov ◽  
D. V. Ishchenko ◽  
I. O. Akhundov ◽  
A. E. Klimov ◽  
...  

2008 ◽  
Vol 100 (11) ◽  
Author(s):  
Rui-Qiang Wang ◽  
Baigeng Wang ◽  
D. Y. Xing
Keyword(s):  

Author(s):  
Torben Winzer ◽  
Dong Sun ◽  
Julien Rioux ◽  
John E. Sipe ◽  
Theodore Norris ◽  
...  

2014 ◽  
Vol 104 (15) ◽  
pp. 153114 ◽  
Author(s):  
Mingsheng Long ◽  
Youpin Gong ◽  
Xiangfei Wei ◽  
Chao Zhu ◽  
Jianbao Xu ◽  
...  

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