Fe-Doped Armchair Graphene Nanoribbons for Spintronic/Interconnect Applications

被引:58
作者
Jaiswal, Neeraj K. [1 ]
Srivastava, Pankaj [1 ]
机构
[1] ABV IIITM, Dept Appl Sci, Gwalior 474015, India
关键词
I-V characteristics; magnetic moment; nanoribbon; spintronic; ELECTRONIC-PROPERTIES; ZIGZAG; TRANSPORT; MAGNETISM; ATOMS; GAS;
D O I
10.1109/TNANO.2013.2268899
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this study, we investigate structural stability, and electronic and transport properties of Fe terminated/doped armchair graphene nanoribbons (AGNR) through first-principles calculations based on density functional theory. Results show that substitutional Fe impurities have a stable bonding with AGNR and center of the ribbon is regarded as the most preferred doping site. The observed magnetic moment of an Fe atom varies from 1.95 mu(B) to 2.93 mu(B) depending upon the doping site. The electronic structure calculations reveal breaking of degeneracy for the opposite spin states which is further supported by the density of states and the projected density of state analysis. Spin polarization of 60% was obtained which can be tuned by varying the position of Fe atoms. Moreover, there exist a number of conduction channels crossing the Fermi level and thereby causing high metallicity for all the ribbons irrespective of ribbon widths or the position of Fe impurity. The observed high metallic behavior is further confirmed by the transmission spectrum and current versus voltage (I-V) calculations. The present results show the potential of considered nanoribbons for the spintronic/interconnect applications.
引用
收藏
页码:685 / 691
页数:7
相关论文
共 45 条
[1]   Quantized transport in graphene p-n junctions in a magnetic field [J].
Abanin, D. A. ;
Levitov, L. S. .
SCIENCE, 2007, 317 (5838) :641-643
[2]   Dynamic behavior of nickel atoms in graphitic networks [J].
Banhart, F ;
Charlier, JC ;
Ajayan, PM .
PHYSICAL REVIEW LETTERS, 2000, 84 (04) :686-689
[3]   Graphene as a Reversible Spin Manipulator of Molecular Magnets [J].
Bhandary, Sumanta ;
Ghosh, Saurabh ;
Herper, Heike ;
Wende, Heiko ;
Eriksson, Olle ;
Sanyal, Biplab .
PHYSICAL REVIEW LETTERS, 2011, 107 (25)
[4]   Enhanced Electrochemical Lithium Storage by Graphene Nanoribbons [J].
Bhardwaj, Tarun ;
Antic, Aleks ;
Pavan, Barbara ;
Barone, Veronica ;
Fahlman, Bradley D. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2010, 132 (36) :12556-12558
[5]   Ultrahigh electron mobility in suspended graphene [J].
Bolotin, K. I. ;
Sikes, K. J. ;
Jiang, Z. ;
Klima, M. ;
Fudenberg, G. ;
Hone, J. ;
Kim, P. ;
Stormer, H. L. .
SOLID STATE COMMUNICATIONS, 2008, 146 (9-10) :351-355
[6]   Hydrogen on graphene: Electronic structure, total energy, structural distortions and magnetism from first-principles calculations [J].
Boukhvalov, D. W. ;
Katsnelson, M. I. ;
Lichtenstein, A. I. .
PHYSICAL REVIEW B, 2008, 77 (03)
[7]   Density-functional method for nonequilibrium electron transport -: art. no. 165401 [J].
Brandbyge, M ;
Mozos, JL ;
Ordejón, P ;
Taylor, J ;
Stokbro, K .
PHYSICAL REVIEW B, 2002, 65 (16) :1654011-16540117
[8]   First-principles study of metal adatom adsorption on graphene [J].
Chan, Kevin T. ;
Neaton, J. B. ;
Cohen, Marvin L. .
PHYSICAL REVIEW B, 2008, 77 (23)
[9]   Graphene-based biosensor using transport properties [J].
Chowdhury, R. ;
Adhikari, S. ;
Rees, P. ;
Wilks, S. P. ;
Scarpa, F. .
PHYSICAL REVIEW B, 2011, 83 (04)
[10]  
Ci L., 2009, ADV MATER, V21, P1