Issue 24, 2018

Armchair graphene nanoribbons with giant spin thermoelectric efficiency

Abstract

Spin-caloritronic effects in armchair graphene nanoribbons (AGNRs) with various ribbon widths and periodic structural defects in the form of triangular antidots were systematically studied. Our results showed that by engineering defects in AGNRs, one could not only reduce the phononic thermal conductance for enhancing the thermoelectric efficiency, but also induce a ferromagnetic ground state. Interestingly, AGNRs with triangular antidots exhibit spin-semiconducting behavior with a tunable spin gap and a narrow spin-polarized band around the Fermi level. Therefore, AGNRs with antidots exhibit spin-up and spin-down currents with opposite flow directions under a temperature gradient, and they also exhibit a giant spin Seebeck coefficient (Image ID:c8cp02264j-t1.gif) and spin figure of merit (Image ID:c8cp02264j-t2.gif) that are much larger than those of zigzag GNRs. Finally, these results pave the way towards the application of defective AGNRs in spin-caloritronic devices operating at room temperature with a giant spin thermoelectric efficiency.

Graphical abstract: Armchair graphene nanoribbons with giant spin thermoelectric efficiency

Article information

Article type
Paper
Submitted
10 Apr 2018
Accepted
31 May 2018
First published
31 May 2018

Phys. Chem. Chem. Phys., 2018,20, 16853-16860

Armchair graphene nanoribbons with giant spin thermoelectric efficiency

M. Shirdel-Havar and R. Farghadan, Phys. Chem. Chem. Phys., 2018, 20, 16853 DOI: 10.1039/C8CP02264J

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