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Electrically tunable dynamic nuclear spin polarization in GaAs quantum dots at zero magnetic field. / Manca, M.; Wang, G.; Kuroda, T.; Shree, S.; Balocchi, A.; Renucci, P.; Marie, X.; Durnev, M. V.; Glazov, M. M.; Sakoda, K.; Mano, T.; Amand, T.; Urbaszek, B.

In: Applied Physics Letters, Vol. 112, No. 14, 142103, 02.04.2018.

Research output: Contribution to journalArticlepeer-review

Harvard

Manca, M, Wang, G, Kuroda, T, Shree, S, Balocchi, A, Renucci, P, Marie, X, Durnev, MV, Glazov, MM, Sakoda, K, Mano, T, Amand, T & Urbaszek, B 2018, 'Electrically tunable dynamic nuclear spin polarization in GaAs quantum dots at zero magnetic field', Applied Physics Letters, vol. 112, no. 14, 142103. https://doi.org/10.1063/1.5024619

APA

Manca, M., Wang, G., Kuroda, T., Shree, S., Balocchi, A., Renucci, P., Marie, X., Durnev, M. V., Glazov, M. M., Sakoda, K., Mano, T., Amand, T., & Urbaszek, B. (2018). Electrically tunable dynamic nuclear spin polarization in GaAs quantum dots at zero magnetic field. Applied Physics Letters, 112(14), [142103]. https://doi.org/10.1063/1.5024619

Vancouver

Manca M, Wang G, Kuroda T, Shree S, Balocchi A, Renucci P et al. Electrically tunable dynamic nuclear spin polarization in GaAs quantum dots at zero magnetic field. Applied Physics Letters. 2018 Apr 2;112(14). 142103. https://doi.org/10.1063/1.5024619

Author

Manca, M. ; Wang, G. ; Kuroda, T. ; Shree, S. ; Balocchi, A. ; Renucci, P. ; Marie, X. ; Durnev, M. V. ; Glazov, M. M. ; Sakoda, K. ; Mano, T. ; Amand, T. ; Urbaszek, B. / Electrically tunable dynamic nuclear spin polarization in GaAs quantum dots at zero magnetic field. In: Applied Physics Letters. 2018 ; Vol. 112, No. 14.

BibTeX

@article{873a93c2c2aa4943b5e8e2f845bbcf71,
title = "Electrically tunable dynamic nuclear spin polarization in GaAs quantum dots at zero magnetic field",
abstract = "In III-V semiconductor nano-structures, the electron and nuclear spin dynamics are strongly coupled. Both spin systems can be controlled optically. The nuclear spin dynamics are widely studied, but little is known about the initialization mechanisms. Here, we investigate optical pumping of carrier and nuclear spins in charge tunable GaAs dots grown on 111A substrates. We demonstrate dynamic nuclear polarization (DNP) at zero magnetic field in a single quantum dot for the positively charged exciton X+ state transition. We tune the DNP in both amplitude and sign by variation of an applied bias voltage Vg. Variation of ΔVg on the order of 100 mV changes the Overhauser splitting (nuclear spin polarization) from -30 μeV (-22%) to +10 μeV (+7%) although the X+ photoluminescence polarization does not change sign over this voltage range. This indicates that absorption in the structure and energy relaxation towards the X+ ground state might provide favourable scenarios for efficient electron-nuclear spin flip-flops, generating DNP during the first tens of ps of the X+ lifetime which is on the order of hundreds of ps. Voltage control of DNP is further confirmed in Hanle experiments.",
keywords = "SPECTROSCOPY, EXCITATION, RESONANCE, DIAMOND",
author = "M. Manca and G. Wang and T. Kuroda and S. Shree and A. Balocchi and P. Renucci and X. Marie and Durnev, {M. V.} and Glazov, {M. M.} and K. Sakoda and T. Mano and T. Amand and B. Urbaszek",
year = "2018",
month = apr,
day = "2",
doi = "10.1063/1.5024619",
language = "English",
volume = "112",
journal = "Applied Physics Letters",
issn = "0003-6951",
publisher = "American Institute of Physics",
number = "14",

}

RIS

TY - JOUR

T1 - Electrically tunable dynamic nuclear spin polarization in GaAs quantum dots at zero magnetic field

AU - Manca, M.

AU - Wang, G.

AU - Kuroda, T.

AU - Shree, S.

AU - Balocchi, A.

AU - Renucci, P.

AU - Marie, X.

AU - Durnev, M. V.

AU - Glazov, M. M.

AU - Sakoda, K.

AU - Mano, T.

AU - Amand, T.

AU - Urbaszek, B.

PY - 2018/4/2

Y1 - 2018/4/2

N2 - In III-V semiconductor nano-structures, the electron and nuclear spin dynamics are strongly coupled. Both spin systems can be controlled optically. The nuclear spin dynamics are widely studied, but little is known about the initialization mechanisms. Here, we investigate optical pumping of carrier and nuclear spins in charge tunable GaAs dots grown on 111A substrates. We demonstrate dynamic nuclear polarization (DNP) at zero magnetic field in a single quantum dot for the positively charged exciton X+ state transition. We tune the DNP in both amplitude and sign by variation of an applied bias voltage Vg. Variation of ΔVg on the order of 100 mV changes the Overhauser splitting (nuclear spin polarization) from -30 μeV (-22%) to +10 μeV (+7%) although the X+ photoluminescence polarization does not change sign over this voltage range. This indicates that absorption in the structure and energy relaxation towards the X+ ground state might provide favourable scenarios for efficient electron-nuclear spin flip-flops, generating DNP during the first tens of ps of the X+ lifetime which is on the order of hundreds of ps. Voltage control of DNP is further confirmed in Hanle experiments.

AB - In III-V semiconductor nano-structures, the electron and nuclear spin dynamics are strongly coupled. Both spin systems can be controlled optically. The nuclear spin dynamics are widely studied, but little is known about the initialization mechanisms. Here, we investigate optical pumping of carrier and nuclear spins in charge tunable GaAs dots grown on 111A substrates. We demonstrate dynamic nuclear polarization (DNP) at zero magnetic field in a single quantum dot for the positively charged exciton X+ state transition. We tune the DNP in both amplitude and sign by variation of an applied bias voltage Vg. Variation of ΔVg on the order of 100 mV changes the Overhauser splitting (nuclear spin polarization) from -30 μeV (-22%) to +10 μeV (+7%) although the X+ photoluminescence polarization does not change sign over this voltage range. This indicates that absorption in the structure and energy relaxation towards the X+ ground state might provide favourable scenarios for efficient electron-nuclear spin flip-flops, generating DNP during the first tens of ps of the X+ lifetime which is on the order of hundreds of ps. Voltage control of DNP is further confirmed in Hanle experiments.

KW - SPECTROSCOPY

KW - EXCITATION

KW - RESONANCE

KW - DIAMOND

UR - http://www.scopus.com/inward/record.url?scp=85045103252&partnerID=8YFLogxK

UR - http://www.mendeley.com/research/electrically-tunable-dynamic-nuclear-spin-polarization-gaas-quantum-dots-zero-magnetic-field

U2 - 10.1063/1.5024619

DO - 10.1063/1.5024619

M3 - Article

AN - SCOPUS:85045103252

VL - 112

JO - Applied Physics Letters

JF - Applied Physics Letters

SN - 0003-6951

IS - 14

M1 - 142103

ER -

ID: 36286529