Spin-caloritronic transport in hexagonal graphene nanoflakes

被引:12
作者
Thi Thu Phung [1 ,2 ]
Peters, Robert [3 ]
Honecker, Andreas [1 ]
de Laissardiere, Guy Trambly [1 ]
Vahedi, Javad [1 ,4 ,5 ]
机构
[1] CY Cergy Paris Univ, CNRS UMR 8089, Lab Phys Theor & Modelisat, F-95302 Cergy Pontoise, France
[2] Univ Sci & Technol Hanoi, Dept Adv Mat Sci & Nanotechnol, 18 Hoang Quoc Viet, Hanoi 100000, Vietnam
[3] Kyoto Univ, Dept Phys, Kyoto 6068502, Japan
[4] Jacobs Univ, Sch Engn & Sci, Campus Ring 1, D-28759 Bremen, Germany
[5] Islamic Azad Univ, Dept Phys, Sari Branch, Sari 48164194, Iran
关键词
RENORMALIZATION-GROUP; ELECTRONIC TRANSPORT; MODEL; SOLITONS; STATE;
D O I
10.1103/PhysRevB.102.035160
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We investigate the spin-dependent thermoelectric effect of graphene flakes with magnetic edges in the ballistic regime. Employing static, respectively, dynamic mean-field theory we first show that magnetism appears at the zigzag edges for a window of Coulomb interactions that increases significantly with increasing flake size. We then use the Landauer formalism in the framework of the nonequilibrium Green's function method to calculate the spin and charge currents in magnetic hexagonal graphene flakes by varying the temperature of the junction for different flake sizes. While in nonmagnetic gated graphene the temperature gradient drives a charge current, we observe a significant spin current for hexagonal graphene flakes with magnetic zigzag edges. Specifically, we show that in the "meta" configuration of a hexagonal flake subject to weak Coulomb interactions, a pure spin current can be driven just by a temperature gradient in a temperature range that is promising for device applications. Bigger flakes are found to yield a bigger window of Coulomb interactions where such spin currents are induced by the magnetic zigzag edges, and larger values of the current.
引用
收藏
页数:11
相关论文
共 50 条
[41]   Synthesis and characterization of graphene nanoribbons on hexagonal boron nitride [J].
Chen Ling-Xiu ;
Wang Hui-Shan ;
Jiang Cheng-Xin ;
Chen Chen ;
Wang Hao-Min .
ACTA PHYSICA SINICA, 2019, 68 (16)
[43]   Spin-Dependent Transport Properties of a Phenylene Rotor Bridging Carbon Chains Between Graphene Electrodes [J].
Wan, Haiqing ;
Chen, Xiongwen ;
Jia, Chunxia ;
Zhou, Guanghui .
COMMUNICATIONS IN COMPUTATIONAL PHYSICS, 2018, 23 (03) :781-794
[44]   First-principles study on transport properties of zigzag graphene nanoribbon with different spin-configurations [J].
An Liping ;
Liu Nianhua .
JOURNAL OF SEMICONDUCTORS, 2011, 32 (05)
[45]   Kondo effect in graphene with Rashba spin-orbit coupling [J].
Mastrogiuseppe, D. ;
Wong, A. ;
Ingersent, K. ;
Ulloa, S. E. ;
Sandler, N. .
PHYSICAL REVIEW B, 2014, 90 (03)
[46]   Electronic Properties of Triangle-Shaped Graphene Nanoflakes from TAO-DFT [J].
Deng, Qing ;
Chai, Jeng-Da .
ACS OMEGA, 2019, 4 (10) :14202-14210
[47]   Hydrogenated Graphene Nanoflakes: Semiconductor to Half-Metal Transition and Remarkable Large Magnetism [J].
Zhou, Yungang ;
Wang, Zhiguo ;
Yang, Ping ;
Sun, Xin ;
Zu, Xiaotao ;
Gao, Fei .
JOURNAL OF PHYSICAL CHEMISTRY C, 2012, 116 (09) :5531-5537
[48]   Graphene on graphene antidot lattices: Electronic and transport properties [J].
Gregersen, Soren Schou ;
Pedersen, Jesper Goor ;
Power, Stephen R. ;
Jauho, Antti-Pekka .
PHYSICAL REVIEW B, 2015, 91 (11)
[49]   Bilayered semiconductor graphene nanostructures with periodically arranged hexagonal holes [J].
Kvashnin, Dmitry G. ;
Vancso, Peter ;
Antipina, Liubov Yu. ;
Mark, Geza I. ;
Biro, Laszlo P. ;
Sorokin, Pavel B. ;
Chernozatonskii, Leonid A. .
NANO RESEARCH, 2015, 8 (04) :1250-1258
[50]   Spin-density wave state in simple hexagonal graphite [J].
Mosoyan, K. S. ;
Rozhkov, A. V. ;
Sboychakov, A. O. ;
Rakhmanov, A. L. .
PHYSICAL REVIEW B, 2018, 97 (07)