Optical cooling of nuclear spins in GaAs/(Al,Ga)As quantum wells at subkelvin temperatures: Evidence of the dynamic self-polarization of nuclear spins
M. Kotur, D. Kudlacik, N. E. Kopteva, E. Kirstein, D. R. Yakovlev, K. V. Kavokin, and M. Bayer

TL;DR
This study demonstrates optical cooling and dynamic self-polarization of nuclear spins in GaAs/(Al,Ga)As quantum wells at subkelvin temperatures, revealing large Overhauser fields and extremely low nuclear spin temperatures.
Contribution
It provides experimental evidence of nuclear spin cooling and self-polarization at millikelvin temperatures using optical techniques in quantum wells.
Findings
Large Overhauser field of 3.1 T at 1.6 K
Nuclear spin temperature as low as 200 nK during self-polarization
Observation of nuclear polarization buildup at 500 mK and below
Abstract
We investigate the dynamic polarization of nuclear spins in a nominally undoped GaAs/AlGaAs quantum well using two complementary experimental approaches: time-resolved Kerr rotation and optical orientation measurements of photoluminescence. Using the first technique, we measure a remarkably large Overhauser field of 3.1 T in a geometry close to the Faraday configuration for a 19.7 nm wide quantum well at a temperature of 1.6 K. A nuclear spin temperature of 6.4 K is measured at an external magnetic field of 0.006 T following an adiabatic sweep from 0.6 T. Despite the quadrupole-induced nuclear spin splitting inherent to nanostructures, the nuclear spin system is found to follow the predictions of spin temperature theory. Using the optical orientation of the photoluminescence, we investigated nuclear spin dynamics at millikelvin temperatures down to 300 mK. At a…
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Taxonomy
TopicsQuantum and electron transport phenomena · Advanced Physical and Chemical Molecular Interactions · Semiconductor Quantum Structures and Devices
