Spin-thermoelectric properties and giant tunneling magnetoresistance of boron-substituted graphene nanoribbon: a first principle study

被引:2
作者
Sarkar, Sudip [1 ]
Misra, Anirban [1 ]
机构
[1] Univ North Bengal, Dept Chem, Siliguri 734013, India
关键词
boron doped graphene nanoribbons; spin thermoelectric figure of merit; magnetoresistance; spin-polarization; ELECTRONIC-PROPERTIES;
D O I
10.1088/1361-648X/ac77cd
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
In this study we have designed a spin caloritronic device based on boron doped armchair graphene nanoribbons (B2-7AGNR). In presence of ferromagnetic (FM) graphitic-carbon nitride (g-C4N3) electrodes the spin-thermoelectric features of the device, both for FM and antiferromagnetic (AFM) states, are studied using first principle calculations. The spin polarized transmission peaks and the presence of density of states near the Fermi level indicate that the system have large spin-thermoelectric figure of merit. In addition, it is observed that the system has a large tunneling magnetoresistance due to the difference in total current between FM and AFM configurations. Further studies reveal that the spin component of the Seebeck coefficient of the device is much higher than the other zigzag and armchair nanoribbons. When the spin magnetic moments of the electrodes are aligned in parallel manner, spin-thermoelectric figure of merit of the system becomes significantly high. It has also been found that on decreasing temperature the efficiency of the device increases. As a whole, the numerical results show that g-C4N3-B2-7AGNR-g-C4N3 system in FM configuration is an efficient low temperature thermoelectric device.
引用
收藏
页数:9
相关论文
共 75 条
[1]   Theory of the spin Seebeck effect [J].
Adachi, Hiroto ;
Uchida, Ken-ichi ;
Saitoh, Eiji ;
Maekawa, Sadamichi .
REPORTS ON PROGRESS IN PHYSICS, 2013, 76 (03)
[2]   Spintronics [J].
Bader, S. D. ;
Parkin, S. S. P. .
ANNUAL REVIEW OF CONDENSED MATTER PHYSICS, VOL 1, 2010, 1 :71-88
[3]  
Bauer GEW, 2012, NAT MATER, V11, P391, DOI [10.1038/NMAT3301, 10.1038/nmat3301]
[4]   Cooling, heating, generating power, and recovering waste heat with thermoelectric systems [J].
Bell, Lon E. .
SCIENCE, 2008, 321 (5895) :1457-1461
[5]   G-C4N3-graphene-g-C4N3: A useful spin thermoelectric material [J].
Bhowmick, Rinki ;
Koley, Sayantanu ;
Chattopadhyaya, Mausumi ;
Sen, Sabyasachi .
JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2021, 156
[6]   Anomalous Doping Effects on Charge Transport in Graphene Nanoribbons [J].
Biel, Blanca ;
Blase, X. ;
Triozon, Francois ;
Roche, Stephan .
PHYSICAL REVIEW LETTERS, 2009, 102 (09)
[7]   Spin caloritronics [J].
Boona, Stephen R. ;
Myers, Roberto C. ;
Heremans, Joseph P. .
ENERGY & ENVIRONMENTAL SCIENCE, 2014, 7 (03) :885-910
[8]   A second-generation reactive empirical bond order (REBO) potential energy expression for hydrocarbons [J].
Brenner, DW ;
Shenderova, OA ;
Harrison, JA ;
Stuart, SJ ;
Ni, B ;
Sinnott, SB .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2002, 14 (04) :783-802
[9]   One-step rapid synthesis of Cu2Se with enhanced thermoelectric properties [J].
Butt, Sajid ;
Farooq, Muhammad U. ;
Mahmood, Waqar ;
Salam, Shahzad ;
Sultan, Muhammad ;
Basit, Muhammad A. ;
Ma, Jing ;
Lin, Yuanhua ;
Nan, Ce-Wen .
JOURNAL OF ALLOYS AND COMPOUNDS, 2019, 786 :557-564
[10]   Electronic Properties of Substitutionally Boron-Doped Graphene Nanoribbons on a Au(111) Surface [J].
Carbonell-Sanroma, Eduard ;
Garcia-Lekue, Aran ;
Corso, Martina ;
Vasseur, Guillaume ;
Brandimarte, Pedro ;
Lobo-Checa, Jorge ;
de Oteyza, Dimas G. ;
Li, Jingcheng ;
Kawai, Shigeki ;
Saito, Shohei ;
Yamaguchi, Shigehiro ;
Enrique Ortega, J. ;
Sanchez-Portal, Daniel ;
Ignacio Pascual, Jose .
JOURNAL OF PHYSICAL CHEMISTRY C, 2018, 122 (28) :16092-16099