Enhanced thermoelectric performances in graphene nanoribbons via BN dimers doping: Theoretical study

被引:5
作者
Ajeel, Fouad N. [1 ,2 ]
Ben Ahmed, Ali [1 ]
机构
[1] Univ Sfax, Coll Sci, Dept Phys, Sfax, Tunisia
[2] Univ Sumer, Coll Sci, Dept Phys, Rifai, Dhi Qar Governo, Iraq
来源
CHEMICAL PHYSICS IMPACT | 2024年 / 8卷
关键词
Graphene nanoribbon; DFT; NEGF; Thermoelectric; Figure of merit; ELECTRONIC-PROPERTIES; BORON-NITRIDE; N-TYPE; P-TYPE; STABILITY; FIGURE;
D O I
10.1016/j.chphi.2023.100413
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Improving the thermoelectric performance of designed graphene nanoribbons is a key stage in the production of thermoelectric nanodevices with many applications. The chemical doping allows armchair graphene nanoribbons (AGNRs) to exhibit controllable thermoelectric characteristics. Here, we use density functional theorybased tight-binding (DFTB) coupled with the non-equilibrium Green's function (NEGF) to study the electronic and thermoelectric properties of AGNR with boron nitride (BN) dimers at room temperature. Changing the concentrations (from 4.17 % (BN)1-structure to 12.5 % (BN)3-structure) and geometrical pattern (ortho, meta, and para form) of BN dimers in the graphene nanoribbons may have a significant effect on the thermoelectric (TE) properties. Our results show that the TE properties of AGNR depend not only on the amount of BN dimers but also on the arrangement of the BN dimers in the AGNR. The thermoelectric figure of merit (ZT) of nanoribbons at room temperature has improved from less than 0.7 to more than 2. These results could be used as an indicator to design nanodevices that have good TE applications.
引用
收藏
页数:16
相关论文
共 57 条
[41]   Impurity Substitution Enhances Thermoelectric Figure of Merit in Zigzag Graphene Nanoribbons [J].
Ramezani Akbarabadi, Saeideh ;
Madadi Asl, Mojtaba .
ADVANCES IN CONDENSED MATTER PHYSICS, 2021, 2021
[42]   Stability and electronic properties of isomers of B/N co-doped graphene [J].
Rani, Pooja ;
Jindal, V. K. .
APPLIED NANOSCIENCE, 2014, 4 (08) :989-996
[43]   Designing band gap of graphene by B and N dopant atoms [J].
Rani, Pooja ;
Jindal, V. K. .
RSC ADVANCES, 2013, 3 (03) :802-812
[44]   Enhancing the thermoelectric figure of merit in engineered graphene nanoribbons [J].
Sadeghi, Hatef ;
Sangtarash, Sara ;
Lambert, Colin J. .
BEILSTEIN JOURNAL OF NANOTECHNOLOGY, 2015, 6 :1176-1182
[45]   Multiterminal single-molecule-graphene-nanoribbon junctions with the thermoelectric figure of merit optimized via evanescent mode transport and gate voltage [J].
Saha, Kamal K. ;
Markussen, Troels ;
Thygesen, Kristian S. ;
Nikolic, Branislav K. .
PHYSICAL REVIEW B, 2011, 84 (04)
[46]   Pt-doped armchair graphene nanoribbon as a promising gas sensor for CO and CO2: DFT study [J].
Salih, Ehab ;
Ayesh, Ahmad, I .
PHYSICA E-LOW-DIMENSIONAL SYSTEMS & NANOSTRUCTURES, 2021, 125
[47]   Spin-thermoelectric properties and giant tunneling magnetoresistance of boron-substituted graphene nanoribbon: a first principle study [J].
Sarkar, Sudip ;
Misra, Anirban .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2022, 34 (34)
[48]   Electronic structure and band-gap modulation of graphene via substrate surface chemistry [J].
Shemella, Philip ;
Nayak, Saroj K. .
APPLIED PHYSICS LETTERS, 2009, 94 (03)
[49]   Towards large-scale in free-standing graphene and N-graphene sheets [J].
Tatarova, E. ;
Dias, A. ;
Henriques, J. ;
Abrashev, M. ;
Bundaleska, N. ;
Kovacevic, E. ;
Bundaleski, N. ;
Cvelbar, U. ;
Valcheva, E. ;
Arnaudov, B. ;
Botelho do Rego, A. M. ;
Ferraria, A. M. ;
Berndt, J. ;
Felizardo, E. ;
Teodoro, O. M. N. D. ;
Strunskus, Th. ;
Alves, L. L. ;
Goncalves, B. .
SCIENTIFIC REPORTS, 2017, 7
[50]   Optimizing the thermoelectric performance of graphene nano-ribbons without degrading the electronic properties [J].
Van-Truong Tran ;
Saint-Martin, Jerome ;
Dollfus, Philippe ;
Volz, Sebastian .
SCIENTIFIC REPORTS, 2017, 7