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    Thermoelectric efficiency of nanoscale devices in the linear regime

    G. Bevilacqua1, G. Grosso2,3, G. Menichetti2,3, and G. Pastori Parravicini2,4

    • 1DIISM, Università di Siena, Via Roma 56, I-53100 Siena, Italy
    • 2Dipartimento di Fisica “E. Fermi,” Università di Pisa, Largo Pontecorvo 3, I-56127 Pisa, Italy
    • 3NEST, Istituto Nanoscienze-CNR, Piazza San Silvestro 12, I-56127 Pisa, Italy
    • 4Dipartimento di Fisica “A. Volta,” Università di Pavia, Via A. Bassi, I-27100 Pisa, Italy

    Phys. Rev. B 94, 245419 – Published 19 December, 2016

    DOI: https://doi.org/10.1103/PhysRevB.94.245419

    Abstract

    We study quantum transport through two-terminal nanoscale devices in contact with two particle reservoirs at different temperatures and chemical potentials. We discuss the general expressions controlling the electric charge current, heat currents, and the efficiency of energy transmutation in steady conditions in the linear regime. With focus in the parameter domain where the electron system acts as a power generator, we elaborate workable expressions for optimal efficiency and thermoelectric parameters of nanoscale devices. The general concepts are set at work in the paradigmatic cases of Lorentzian resonances and antiresonances, and the encompassing Fano transmission function: the treatments are fully analytic, in terms of the trigamma functions and Bernoulli numbers. From the general curves here reported describing transport through the above model transmission functions, useful guidelines for optimal efficiency and thermopower can be inferred for engineering nanoscale devices in energy regions where they show similar transmission functions.

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