Room Temperature Optically and Magnetically Active Edges in Phosphorene Nanoribbons

Fuente: arXiv
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Main Authors: Ashoka, Arjun, Clancy, Adam J., Panjwani, Naitik A., Cronin, Adam, Picco, Loren, Aw, Eva S. Y., Popiel, Nicholas J. M., Eaton, Alex, Parton, Thomas G., Shutt, Rebecca R. C., Feldmann, Sascha, Carey, Remington, Macdonald, Thomas J., Severijnen, Marion E., Kleuskens, Sandra, Muscarella, Loreta A., Fischer, Felix R., de Aguiar, Hilton Barbosa, Friend, Richard H., Behrends, Jan, Christianen, Peter C. M., Howard, Christopher A., Pandya, Raj
Format: Preprint
Published: 2022
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author Ashoka, Arjun
Clancy, Adam J.
Panjwani, Naitik A.
Cronin, Adam
Picco, Loren
Aw, Eva S. Y.
Popiel, Nicholas J. M.
Eaton, Alex
Parton, Thomas G.
Shutt, Rebecca R. C.
Feldmann, Sascha
Carey, Remington
Macdonald, Thomas J.
Severijnen, Marion E.
Kleuskens, Sandra
Muscarella, Loreta A.
Fischer, Felix R.
de Aguiar, Hilton Barbosa
Friend, Richard H.
Behrends, Jan
Christianen, Peter C. M.
Howard, Christopher A.
Pandya, Raj
author_facet Ashoka, Arjun
Clancy, Adam J.
Panjwani, Naitik A.
Cronin, Adam
Picco, Loren
Aw, Eva S. Y.
Popiel, Nicholas J. M.
Eaton, Alex
Parton, Thomas G.
Shutt, Rebecca R. C.
Feldmann, Sascha
Carey, Remington
Macdonald, Thomas J.
Severijnen, Marion E.
Kleuskens, Sandra
Muscarella, Loreta A.
Fischer, Felix R.
de Aguiar, Hilton Barbosa
Friend, Richard H.
Behrends, Jan
Christianen, Peter C. M.
Howard, Christopher A.
Pandya, Raj
contents Nanoribbons - nanometer wide strips of a two-dimensional material - are a unique system in condensed matter physics. They combine the exotic electronic structures of low-dimensional materials with an enhanced number of exposed edges, where phenomena including ultralong spin coherence times, quantum confinement and topologically protected states can emerge. An exciting prospect for this new material concept is the potential for both a tunable semiconducting electronic structure and magnetism along the nanoribbon edge. This combination of magnetism and semiconducting properties is the first step in unlocking spin-based electronics such as non-volatile transistors, a route to low-energy computing, and has thus far typically only been observed in doped semiconductor systems and/or at low temperatures. Here, we report the magnetic and semiconducting properties of phosphorene nanoribbons (PNRs). Static (SQUID) and dynamic (EPR) magnetization probes demonstrate that at room temperature, films of PNRs exhibit macroscopic magnetic properties, arising from their edge, with internal fields of ~ 250 to 800 mT. In solution, a giant magnetic anisotropy enables the alignment of PNRs at modest sub-1T fields. By leveraging this alignment effect, we discover that upon photoexcitation, energy is rapidly funneled to a dark-exciton state that is localized to the magnetic edge and coupled to a symmetry-forbidden edge phonon mode. Our results establish PNRs as a unique candidate system for studying the interplay of magnetism and semiconducting ground states at room temperature and provide a stepping-stone towards using low-dimensional nanomaterials in quantum electronics.
format Preprint
id arxiv_https___arxiv_org_abs_2211_11374
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Room Temperature Optically and Magnetically Active Edges in Phosphorene Nanoribbons
Ashoka, Arjun
Clancy, Adam J.
Panjwani, Naitik A.
Cronin, Adam
Picco, Loren
Aw, Eva S. Y.
Popiel, Nicholas J. M.
Eaton, Alex
Parton, Thomas G.
Shutt, Rebecca R. C.
Feldmann, Sascha
Carey, Remington
Macdonald, Thomas J.
Severijnen, Marion E.
Kleuskens, Sandra
Muscarella, Loreta A.
Fischer, Felix R.
de Aguiar, Hilton Barbosa
Friend, Richard H.
Behrends, Jan
Christianen, Peter C. M.
Howard, Christopher A.
Pandya, Raj
Mesoscale and Nanoscale Physics
Materials Science
Nanoribbons - nanometer wide strips of a two-dimensional material - are a unique system in condensed matter physics. They combine the exotic electronic structures of low-dimensional materials with an enhanced number of exposed edges, where phenomena including ultralong spin coherence times, quantum confinement and topologically protected states can emerge. An exciting prospect for this new material concept is the potential for both a tunable semiconducting electronic structure and magnetism along the nanoribbon edge. This combination of magnetism and semiconducting properties is the first step in unlocking spin-based electronics such as non-volatile transistors, a route to low-energy computing, and has thus far typically only been observed in doped semiconductor systems and/or at low temperatures. Here, we report the magnetic and semiconducting properties of phosphorene nanoribbons (PNRs). Static (SQUID) and dynamic (EPR) magnetization probes demonstrate that at room temperature, films of PNRs exhibit macroscopic magnetic properties, arising from their edge, with internal fields of ~ 250 to 800 mT. In solution, a giant magnetic anisotropy enables the alignment of PNRs at modest sub-1T fields. By leveraging this alignment effect, we discover that upon photoexcitation, energy is rapidly funneled to a dark-exciton state that is localized to the magnetic edge and coupled to a symmetry-forbidden edge phonon mode. Our results establish PNRs as a unique candidate system for studying the interplay of magnetism and semiconducting ground states at room temperature and provide a stepping-stone towards using low-dimensional nanomaterials in quantum electronics.
title Room Temperature Optically and Magnetically Active Edges in Phosphorene Nanoribbons
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2211.11374