Direct high resolution resonant Raman scattering measurements of InAs quantum dot dynamic nuclear spin polarization states
Aaron M. Ross, Allan S. Bracker, Michael K. Yakes, Daniel Gammon, L.J., Sham, Duncan G. Steel

TL;DR
This paper presents high-resolution resonant Raman scattering measurements of nuclear spin polarization in a single InAs quantum dot, revealing nonlinear behaviors, state switching, and the influence of strain-induced interactions on nuclear spin dynamics.
Contribution
It provides the first direct measurement of electron spin splitting and nuclear Overhauser fields with unprecedented spectral resolution, uncovering nonlinear NSP responses and state switching mechanisms.
Findings
Nuclear Overhauser field as large as 400 mT measured with sub-100 nuclear spin sensitivity.
Identification of two distinct NSP responses: stabilized and switching behavior.
Observation of nuclear spin polarization state switching at least every 25 ms.
Abstract
We report on the direct measurement of the electron spin splitting and the accompanying nuclear Overhauser (OH) field, and thus the underlying nuclear spin polarization (NSP) and fluctuation bandwidth, in a single InAs quantum dot under resonant excitation conditions with unprecedented spectral resolution. The electron spin splitting is measured directly via resonant spin-flip single photon Raman scattering detected by superconducting nanowires to generate excitation-emission energy maps. The observed two-dimensional maps reveal an OH field that has a non-linear dependence on excitation frequency. This study provides new insight into earlier reports of so-called avoidance and tracking, showing two distinct NSP responses directly by the addition of a emission energy axis. The data show that the polarization processes depend on which electron spin state is optically driven, with…
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