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Manipulation of optical coherence of quantum-well excitons by transverse magnetic field. / Solovev, I. A.; Yanibekov, I. I.; Babenko, I. A.; Stroganov, B. V.; Eliseev, S. A.; Lovcjus, V. A.; Efimov, Yu. P.; Poltavtsev, S. V.; Kapitonov, Yu. V.; Yugova, I. A.

In: Physical Review B-Condensed Matter, Vol. 106, No. 11, 115401, 15.09.2022.

Research output: Contribution to journalArticlepeer-review

Harvard

Solovev, IA, Yanibekov, II, Babenko, IA, Stroganov, BV, Eliseev, SA, Lovcjus, VA, Efimov, YP, Poltavtsev, SV, Kapitonov, YV & Yugova, IA 2022, 'Manipulation of optical coherence of quantum-well excitons by transverse magnetic field', Physical Review B-Condensed Matter, vol. 106, no. 11, 115401. https://doi.org/10.1103/physrevb.106.115401

APA

Solovev, I. A., Yanibekov, I. I., Babenko, I. A., Stroganov, B. V., Eliseev, S. A., Lovcjus, V. A., Efimov, Y. P., Poltavtsev, S. V., Kapitonov, Y. V., & Yugova, I. A. (2022). Manipulation of optical coherence of quantum-well excitons by transverse magnetic field. Physical Review B-Condensed Matter, 106(11), [115401]. https://doi.org/10.1103/physrevb.106.115401

Vancouver

Solovev IA, Yanibekov II, Babenko IA, Stroganov BV, Eliseev SA, Lovcjus VA et al. Manipulation of optical coherence of quantum-well excitons by transverse magnetic field. Physical Review B-Condensed Matter. 2022 Sep 15;106(11). 115401. https://doi.org/10.1103/physrevb.106.115401

Author

Solovev, I. A. ; Yanibekov, I. I. ; Babenko, I. A. ; Stroganov, B. V. ; Eliseev, S. A. ; Lovcjus, V. A. ; Efimov, Yu. P. ; Poltavtsev, S. V. ; Kapitonov, Yu. V. ; Yugova, I. A. / Manipulation of optical coherence of quantum-well excitons by transverse magnetic field. In: Physical Review B-Condensed Matter. 2022 ; Vol. 106, No. 11.

BibTeX

@article{409663ed06284739abb8f3b74f3d7238,
title = "Manipulation of optical coherence of quantum-well excitons by transverse magnetic field",
abstract = "We have studied experimentally spin-dependent photon echoes from excitons in an InGaAs/GaAs quantum well subject to a transverse magnetic field (Voigt geometry). Larmor precession of the spins of the electron and heavy hole in an exciton leads to a periodic transfer of coherence between bright and dark exciton states. The increase in dephasing time due to the transition to the dark states could be useful for coherent control development. A comprehensive analysis shows a good agreement between a four-wave mixing experiment and the predictions of a theoretical treatment based on a five-level exciton model comprising a ground state and two pairs of bright and dark states. The extracted optical dephasing time of bright and dark excitons is equal to 30 and 130 ps, respectively. Exploiting the photon echo reveals evidence of electron Larmor precession with in-plane g factor |ge,⊥|=0.44±0.05 and heavy hole precession as well. The precession frequency of the latter depends nonlinearly on the applied magnetic field, and the corresponding g factor reaches a value of |gh,⊥|≈0.3 at B=6 T. Estimates for the heavy hole g-factor spreading as well as the isotropic exchange interaction constant are provided.",
author = "Solovev, {I. A.} and Yanibekov, {I. I.} and Babenko, {I. A.} and Stroganov, {B. V.} and Eliseev, {S. A.} and Lovcjus, {V. A.} and Efimov, {Yu. P.} and Poltavtsev, {S. V.} and Kapitonov, {Yu. V.} and Yugova, {I. A.}",
note = "Publisher Copyright: {\textcopyright} 2022 American Physical Society.",
year = "2022",
month = sep,
day = "15",
doi = "10.1103/physrevb.106.115401",
language = "English",
volume = "106",
journal = "Physical Review B-Condensed Matter",
issn = "1098-0121",
publisher = "American Physical Society",
number = "11",

}

RIS

TY - JOUR

T1 - Manipulation of optical coherence of quantum-well excitons by transverse magnetic field

AU - Solovev, I. A.

AU - Yanibekov, I. I.

AU - Babenko, I. A.

AU - Stroganov, B. V.

AU - Eliseev, S. A.

AU - Lovcjus, V. A.

AU - Efimov, Yu. P.

AU - Poltavtsev, S. V.

AU - Kapitonov, Yu. V.

AU - Yugova, I. A.

N1 - Publisher Copyright: © 2022 American Physical Society.

PY - 2022/9/15

Y1 - 2022/9/15

N2 - We have studied experimentally spin-dependent photon echoes from excitons in an InGaAs/GaAs quantum well subject to a transverse magnetic field (Voigt geometry). Larmor precession of the spins of the electron and heavy hole in an exciton leads to a periodic transfer of coherence between bright and dark exciton states. The increase in dephasing time due to the transition to the dark states could be useful for coherent control development. A comprehensive analysis shows a good agreement between a four-wave mixing experiment and the predictions of a theoretical treatment based on a five-level exciton model comprising a ground state and two pairs of bright and dark states. The extracted optical dephasing time of bright and dark excitons is equal to 30 and 130 ps, respectively. Exploiting the photon echo reveals evidence of electron Larmor precession with in-plane g factor |ge,⊥|=0.44±0.05 and heavy hole precession as well. The precession frequency of the latter depends nonlinearly on the applied magnetic field, and the corresponding g factor reaches a value of |gh,⊥|≈0.3 at B=6 T. Estimates for the heavy hole g-factor spreading as well as the isotropic exchange interaction constant are provided.

AB - We have studied experimentally spin-dependent photon echoes from excitons in an InGaAs/GaAs quantum well subject to a transverse magnetic field (Voigt geometry). Larmor precession of the spins of the electron and heavy hole in an exciton leads to a periodic transfer of coherence between bright and dark exciton states. The increase in dephasing time due to the transition to the dark states could be useful for coherent control development. A comprehensive analysis shows a good agreement between a four-wave mixing experiment and the predictions of a theoretical treatment based on a five-level exciton model comprising a ground state and two pairs of bright and dark states. The extracted optical dephasing time of bright and dark excitons is equal to 30 and 130 ps, respectively. Exploiting the photon echo reveals evidence of electron Larmor precession with in-plane g factor |ge,⊥|=0.44±0.05 and heavy hole precession as well. The precession frequency of the latter depends nonlinearly on the applied magnetic field, and the corresponding g factor reaches a value of |gh,⊥|≈0.3 at B=6 T. Estimates for the heavy hole g-factor spreading as well as the isotropic exchange interaction constant are provided.

UR - http://www.scopus.com/inward/record.url?scp=85138146415&partnerID=8YFLogxK

U2 - 10.1103/physrevb.106.115401

DO - 10.1103/physrevb.106.115401

M3 - Article

VL - 106

JO - Physical Review B-Condensed Matter

JF - Physical Review B-Condensed Matter

SN - 1098-0121

IS - 11

M1 - 115401

ER -

ID: 98430772