Thermoelectric efficiency at maximum power in low-dimensional systems

被引:180
|
作者
Nakpathomkun, Natthapon [1 ,2 ]
Xu, H. Q. [3 ,4 ]
Linke, Heiner [3 ,4 ]
机构
[1] Univ Oregon, Dept Phys, Eugene, OR 97403 USA
[2] Univ Oregon, Inst Mat Sci, Eugene, OR 97403 USA
[3] Lund Univ, Div Solid State Phys, S-22100 Lund, Sweden
[4] Lund Univ, Nanometer Struct Consortium NmC LU, S-22100 Lund, Sweden
基金
瑞典研究理事会;
关键词
QUANTUM; TRANSPORT; FIGURE; SEMICONDUCTOR; NANOWIRES; CHANNEL; MERIT;
D O I
10.1103/PhysRevB.82.235428
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Low-dimensional electronic systems in thermoelectrics have the potential to achieve high thermal-to-electric energy conversion efficiency. A key measure of performance is the efficiency when the device is operated under maximum power conditions. Here we study the efficiency at maximum power, in the absence of phonon-mediated heat flow, of three low-dimensional, thermoelectric systems: a zero-dimensional quantum dot with a Lorentzian transmission resonance of finite width, a one-dimensional (1D) ballistic conductor, and a thermionic (TI) power generator formed by a two-dimensional energy barrier. In all three systems, the efficiency at maximum power is independent of temperature, and in each case a careful tuning of relevant energies is required to achieve maximal performance. We find that quantum dots perform relatively poorly under maximum power conditions, with relatively low efficiency and small power throughput. Ideal one-dimensional conductors offer the highest efficiency at maximum power (36% of the Carnot efficiency). Whether 1D or TI systems achieve the larger maximum power output depends on temperature and area filling factor. These results are also discussed in the context of the traditional figure of merit ZT.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Quantum Sensing of Thermoelectric Power in Low-Dimensional Materials
    Zhao, Mali
    Kim, Dohyun
    Lee, Young Hee
    Yang, Heejun
    Cho, Suyeon
    ADVANCED MATERIALS, 2023, 35 (27)
  • [2] THERMAL AND THERMOELECTRIC TRANSPORT IN NANOSTRUCTURES AND LOW-DIMENSIONAL SYSTEMS
    Shi, Li
    NANOSCALE AND MICROSCALE THERMOPHYSICAL ENGINEERING, 2012, 16 (02) : 79 - 116
  • [3] Low-dimensional thermoelectric materials
    M. S. Dresselhaus
    G. Dresselhaus
    X. Sun
    Z. Zhang
    S. B. Cronin
    T. Koga
    Physics of the Solid State, 1999, 41 : 679 - 682
  • [4] Low-dimensional thermoelectric materials
    Dresselhaus, MS
    Dresselhaus, G
    Sun, X
    Zhang, Z
    Cronin, SB
    Koga, T
    PHYSICS OF THE SOLID STATE, 1999, 41 (05) : 679 - 682
  • [5] Quantum Effects in the Thermoelectric Power Factor of Low-Dimensional Semiconductors
    Hung, Nguyen T.
    Hasdeo, Eddwi H.
    Nugraha, Ahmad R. T.
    Dresselhaus, Mildred S.
    Saito, Riichiro
    PHYSICAL REVIEW LETTERS, 2016, 117 (03)
  • [6] The promise of low-dimensional thermoelectric materials
    Dresselhaus, MS
    Dresselhaus, G
    Sun, X
    Zhang, Z
    Cronin, SB
    Koga, T
    Ying, JY
    Chen, G
    MICROSCALE THERMOPHYSICAL ENGINEERING, 1999, 3 (02): : 89 - 100
  • [7] Low-dimensional materials for thermoelectric applications
    Boulet, Pascal
    Record, Marie-Christine
    INTERNATIONAL JOURNAL OF NANOTECHNOLOGY, 2012, 9 (3-7) : 368 - 376
  • [8] The promise of low-dimensional thermoelectric materials
    Dresselhaus, Mildred S.
    Dresselhaus, G.
    Sun, X.
    Zhang, Z.
    Cronin, S.B.
    Koga, T.
    Ying, J.Y.
    Chen, G.
    Microscale Thermophysical Engineering, 3 (02): : 89 - 100
  • [9] Low-dimensional systems on the base of PbSnAgTe (LATT) compounds for thermoelectric application
    Nykyruy, Lyubomyr
    Ruvinskiy, Mark
    Ivakin, Eugeny
    Kostyuk, Oksana
    Horichok, Ihor
    Kisialiou, Ivan
    Yavorskyy, Yaroslav
    Hrubyak, Andriy
    PHYSICA E-LOW-DIMENSIONAL SYSTEMS & NANOSTRUCTURES, 2019, 106 (10-18): : 10 - 18
  • [10] Low-dimensional systems
    Borovitskaya, Elena
    Shur, Michael S.
    International Journal of High Speed Electronics and Systems, 2002, 12 (01) : 1 - 14