Molecular Functionalization and Emergence of Long-Range Spin-Dependent Phenomena in Two-Dimensional Carbon Nanotube Networks
Author(s) -
Md. Wazedur Rahman,
Mari C. MañasTorres,
Seyedamin Firouzeh,
Juan M. Cuerva,
Luı́s Álvarez de Cienfuegos,
Sandipan Pramanik
Publication year - 2021
Publication title -
acs nano
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.554
H-Index - 382
eISSN - 1936-086X
pISSN - 1936-0851
DOI - 10.1021/acsnano.1c07739
Subject(s) - spintronics , carbon nanotube , chirality (physics) , spin polarization , chemical physics , polarization (electrochemistry) , spin (aerodynamics) , nanoelectronics , materials science , nanotechnology , molecule , condensed matter physics , chemistry , physics , electron , ferromagnetism , quantum mechanics , chiral symmetry breaking , quark , nambu–jona lasinio model , thermodynamics
Molecular functionalization of CNTs is a routine procedure in the field of nanotechnology. However, whether and how these molecules affect the spin polarization of the charge carriers in CNTs are largely unknown. In this work we demonstrate that spin polarization can indeed be induced in two-dimensional (2D) CNT networks by "certain" molecules and the spin signal routinely survives length scales significantly exceeding 1 μm. This result effectively connects the area of molecular spintronics with that of carbon-based 2D nanoelectronics. By using the versatility of peptide chemistry, we further demonstrate how spin polarization depends on molecular structural features such as chirality as well as molecule-nanotube interactions. A chirality-independen effect was detected in addition to the more common chirality-dependent effect, and the overall spin signal was found to be a combination of both. Finally, the magnetic field dependence of the spin signals has been explored, and the "chirality-dependent" signal has been found to exist only in certain field angles.
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