Artículo
Optically pumped spin polarization as a probe of many-body thermalization
Pagliero, Daniela; Zangara, Pablo René
; Henshaw, Jacob; Ajoy, Ashok; Acosta, Rodolfo Héctor
; Reimer, Jeffrey A.; Pines, Alexander; Meriles, Carlos A.
Fecha de publicación:
04/2020
Editorial:
Science Advances is the American Association for the Advancement of Science
Revista:
Science Advances
ISSN:
2375-2548
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
Disorder and many body interactions are known to impact transport and thermalization in competing ways, with the dominance of one or the other giving rise to fundamentally different dynamical phases. Here we investigate the spin diffusion dynamics of 13C in diamond, which we dynamically polarize at room temperature via optical spin pumping of engineered color centers. We focus on low-abundance, strongly hyperfine-coupled nuclei, whose role in the polarization transport we expose through the integrated impact of variable radio-frequency excitation on the observable bulk 13C magnetic resonance signal. Unexpectedly, we find good thermal contact throughout the nuclear spin bath, virtually independent of the hyperfine coupling strength, which we attribute to effective carbon-carbon interactions mediated by the electronic spin ensemble. In particular, observations across the full range of hyperfine couplings indicate the nuclear spin diffusion constant takes values up to two orders of magnitude greater than that expected from homo-nuclear spin couplings.
Palabras clave:
NV CENTERS
,
THERMALIZATION
,
MANY-BODY PHYSICS
,
HYPERPOLARIZATION
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Articulos(IFEG)
Articulos de INST.DE FISICA ENRIQUE GAVIOLA
Articulos de INST.DE FISICA ENRIQUE GAVIOLA
Citación
Pagliero, Daniela; Zangara, Pablo René; Henshaw, Jacob; Ajoy, Ashok; Acosta, Rodolfo Héctor; et al.; Optically pumped spin polarization as a probe of many-body thermalization; Science Advances is the American Association for the Advancement of Science; Science Advances; 6; 18; 4-2020; 1-8
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