Issue 60, 2018, Issue in Progress

Electronic and thermal spin effect of molecular nanowires between graphene electrodes

Abstract

Based on the first-principles method, the electronic spin transport properties of terphenyl molecule bridging in zigzag graphene nanoribbon (ZGNR) electrodes with three connecting linkages were investigated, including dangling, heptagon, and pentagon-linkages. For the pentagon-linkage system, we observed a perfect spin filtering effect in the parallel (P) configuration (at almost 100% spin polarization), with the heptagon-linkages system following next (85–95% spin polarization), however, the spin filtering effect is almost negligible for the dangling-linkages system. In the antiparallel (AP) configuration, the pentagon- and heptagon-linkage systems also showed a high spin filtering effect. The terphenyl molecule was then replaced by carbon chains based on the pentagon-linkages, and these devices also show a perfect spin filtering effect (100% spin polarization). Finally, the thermally induced spin transport for the carbon chains model with pentagon-linkages was explored, and this system exhibits almost 100% thermal spin polarization.

Graphical abstract: Electronic and thermal spin effect of molecular nanowires between graphene electrodes

Article information

Article type
Paper
Submitted
16 Aug 2018
Accepted
09 Sep 2018
First published
04 Oct 2018
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2018,8, 34182-34191

Electronic and thermal spin effect of molecular nanowires between graphene electrodes

X. Q. Deng and R. Q. Sheng, RSC Adv., 2018, 8, 34182 DOI: 10.1039/C8RA06852F

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