4.5 Article

Enhanced thermoelectric efficiency in armchair silicene nanoribbons decorated Mn

Journal

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.jpcs.2022.111167

Keywords

Spin seebeck effect; Thermoelectric figure of merit; Armchair silicene nanoribbon; Edge passivation; DFT

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In this study, the structural stability, magnetic properties, and thermoelectric properties of Mn-passivated armchair silicene nanoribbons (Mn-ASiNRs) were investigated using density functional theory. It was found that all structures studied were thermodynamically stable and exhibited ferromagnetic ground states with a Curie temperature above 400 K. The electronic properties of Mn-ASiNRs were found to be dependent on their width (N), with 4-, 5-, and 7-Mn-ASiNRs being semiconducting, 6-Mn-ASiNR being half-metallic, and 8-Mn-ASiNR being metallic. Furthermore, simulations of Mn-ASiNR-based devices showed enhanced thermoelectric properties, including high spin Seebeck coefficient (Ss) and charge Seebeck coefficient (Sc), as well as improved charge and spin thermoelectric figures of merit (ZcT and ZsT) compared to pristine nanoribbons (H-ASiNRs).
In this study, we use density functional theory to investigate the structural stability as well as the magnetic and thermoelectric properties of Mn-passivated armchair silicene nanoribbons (Mn-ASiNRs). All structures considered in this study were thermodynamically stable, and existed in ferromagnetic ground states with a Curie temperature greater than 400 K. The Mn-ASiNRs showed spin-polarized electronic properties that were tunable with respect to their width (N). Mn-ASiNRs with N = 4, 5, and 7 (4-, 5-and 7-Mn-ASiNRs) were semiconducting, while 6-Mn-ASiNR was half-metallic and 8-Mn-ASiNR was metallic. We simulated N-Mn-ASiNR-based devices to evaluate their thermoelectric properties, and observed a high-spin Seebeck coefficient (Ss) of 1800 mu V/K at mu = 0 and a charge Seebeck coefficient (Sc) of 1350 mu V/K at mu = -0.17 eV for 4-Mn-ASiNRs. We obtained significantly enhanced charge and spin thermoelectric figures of merit (ZcT and ZsT) compared with those of pristine nanoribbons (H-ASiNRs) that had maximum values of 25 and 18 at room temperature for 4-and 7-Mn-ASiNRs, respectively. ZcT and ZsT further improved to values of 150 and 190, respectively, at temperatures lower than 100 K owing to a rapid increase in Sc and Ss, and exhibited decreased thermal conductance (K,). Moreover, we showed that a thermally driven spin current with a negligibly small charge current can be generated by our devices. The results of this theoretical study indicate that Mn-ASiNR can be used to develop effective thermoelectric energy conversion devices.

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