Enhancement in the Thermoelectric Performance of SnS Monolayer by Strain Engineering

被引:19
|
作者
Gupta, Raveena [1 ]
Kakkar, Sonali [1 ]
Dongre, Bonny [2 ]
Carrete, Jesus [2 ]
Bera, Chandan [1 ,3 ]
机构
[1] Inst Nano Sci & Technol, Sahibzada Ajit Singh Naga 140306, Punjab, India
[2] TU Wien, Inst Mat Chem, A-1060 Vienna, Austria
[3] Panjab Univ, Ctr Nanosci & Nanotechnol, Chandigarh 160036, India
关键词
thermoelectric; strain engineering; SnS monolayer; thermal conductivity; figure of merit; BOLTZMANN TRANSPORT-EQUATION; THERMAL-CONDUCTIVITY; SOLVER;
D O I
10.1021/acsaem.3c00110
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
Nanostructuring is one of the well-known tools for improving the thermoelectric figure of merit, but it has limits when tuning the lattice thermal conductivity. The thermoelectric coefficients, including the lattice thermal conductivity in twodimensional materials, can further be modified using strain engineering, which manipulates the interatomic forces and the energy levels in these systems. With this in mind, we investigate the thermoelectric properties of the SnS monolayer under uniaxial compressive and tensile strains using first-principles calculations and the Boltzmann transport equation. Analysis of the elastic constants and Poisson ratio points toward the applicability of strain only along the armchair or b direction. Systems with uniaxial compressible and tensile strains from -4% to 5% along the armchair direction are found to be dynamically stable. A high power factor of similar to 1.1 W m(-1) K-2, which is similar to 1.8 times higher than the unstrained case, is predicted for the 1% strain case for p-type carriers. A similar to 77% enhancement in the dimensionless figure of merit (ZT) for p-type carriers and similar to 86% enhancement in the figure of merit for n-type carriers with respect to equilibrium is detected upon application of a minimal 1% tensile strain. An almost 3-fold increase in ZT can be achieved for 1% strain at 600 K. This enhancement in ZT renders the strained monolayer a much more promising candidate for thermoelectric applications.
引用
收藏
页码:3944 / 3952
页数:9
相关论文
共 50 条
  • [41] Enhancement of Thermoelectric Performance in CuSbSe2 Nanoplate-Based Pellets by Texture Engineering and Carrier Concentration Optimization
    Luo, Yubo
    Du, Chengfeng
    Liang, Qinghua
    Zheng, Yun
    Zhu, Beibei
    Hu, Huanlong
    Khor, Khiam Aik
    Xu, Jianwei
    Yan, Qingyu
    Kanatzidis, Mercouri G.
    SMALL, 2018, 14 (50)
  • [42] Strain-engineered allotrope-like bismuth nanowires for enhanced thermoelectric performance
    Kim, Jeongmin
    Oh, Min-Wook
    Kim, Gwansik
    Bahk, Je-Hyeong
    Song, Jae Yong
    Jeon, Seong Gi
    Chun, Dong Won
    Bae, Jee-Hwan
    Shim, Wooyoung
    Lee, Wooyoung
    ACTA MATERIALIA, 2018, 144 : 145 - 153
  • [43] Solvothermally synthesized SnS nanorods with high carrier mobility leading to thermoelectric enhancement
    Tan, Qing
    Wu, Chao-Feng
    Sun, Wei
    Li, Jing-Feng
    RSC ADVANCES, 2016, 6 (50): : 43985 - 43988
  • [44] Strain engineering on the thermal conductivity and heat flux of thermoelectric Bi2Te3 nanofilm
    Yu, ChenXi
    Zhang, Gang
    Zhang, Yong-Wei
    Peng, Lian-Mao
    NANO ENERGY, 2015, 17 : 104 - 110
  • [45] Phase Composition Manipulation and Twin Boundary Engineering Lead to Enhanced Thermoelectric Performance of Cu2SnS3
    Wei, Yiqing
    Zhou, Zizhen
    Jiang, Pengfei
    Zheng, Sikang
    Xiong, Qihong
    Zhang, Bin
    Wang, Guoyu
    Lu, Xu
    Han, Guang
    Zhou, Xiaoyuan
    ACS APPLIED ENERGY MATERIALS, 2021, 4 (09) : 9240 - 9247
  • [46] Enhanced thermoelectric performance of defect engineered monolayer graphene
    Kim, Woochang
    Lee, Wonseok
    Lee, Seung-Mo
    Kim, Duckjong
    Park, Jinsung
    NANOTECHNOLOGY, 2022, 33 (17)
  • [47] High symmetry structure and large strain field fluctuation lead enhancement of thermoelectric performance of quaternary alloys by tuning configurational entropy
    Sun, Yuqing
    Wang, Hongxiang
    Yao, Jie
    Mehmood, Fahad
    Tan, Chang
    Wang, Long
    Zhai, Jinze
    Wang, Hongchao
    Wang, Chunlei
    CHEMICAL ENGINEERING JOURNAL, 2023, 462
  • [48] Thermoelectric Properties of SnS with Na-Doping
    Zhou, Binqiang
    Li, Shuai
    Li, Wen
    Li, Juan
    Zhang, Xinyue
    Lin, Siqi
    Chen, Zhiwei
    Pei, Yanzhong
    ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (39) : 34033 - 34041
  • [49] Lattice Strain Leads to High Thermoelectric Performance in Polycrystalline SnSe
    Lou, Xunuo
    Li, Shuang
    Chen, Xiang
    Zhang, Qingtang
    Deng, Houquan
    Zhang, Jian
    Li, Di
    Zhang, Xuemei
    Zhang, Yongsheng
    Zeng, Haibo
    Tang, Guodong
    ACS NANO, 2021, 15 (05) : 8204 - 8215
  • [50] Theoretical advances in predicting the thermoelectric performance of materials
    Jakhar, Mukesh
    Chauhan, Poonam
    Kumar, Ashok
    Pandey, Ravindra
    2D MATERIALS, 2025, 12 (01):