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Updated: Jun 27, 2026

Resonance Fluorescence of an InGaAs Quantum Dot in a Planar Cavity Using Orthogonal Excitation and Detection
Published on: October 13, 2017
Ultrafast photoreduction driven by interfacial spin exchange in manganese-doped quantum dots
Ho Jin1,2, Valerio Pinchetti1, Connor Orrison1,3
1Nanotechnology and Advanced Spectroscopy Team, C-PCS, Chemistry Division, Los Alamos National Laboratory, Los Alamos, NM, USA.
None:
Spin-active dopants offer a powerful yet largely unexplored route for controlling interfacial redox chemistry in quantum-confined semiconductors. Here we show that manganese doping in cadmium selenide quantum dots enables an ultrafast spin-exchange-mediated electron-transfer pathway that allows methyl viologen reduction even when conventional band-edge energetics are unfavorable for charge transfer. Femtosecond transient absorption spectroscopy reveals that manganese dopants accelerate electron-transfer dynamics by more than an order of magnitude while opening a hot-exciton reduction channel in which a manganese ion captures a photoexcited exciton prior to phonon-assisted cooling. Subsequent spin-flip relaxation of the excited manganese ion drives charge separation and reduction of a molecular acceptor. This mechanism operates efficiently across resonant and off-resonant (energy-uphill and downhill) regimes, identifying spin-exchange coupling-rather than band alignment-as the dominant factor governing electron-transfer rates and efficiencies. These findings establish magnetic doping as a viable strategy for harvesting hot carriers and enabling energetically demanding photocatalytic transformations.
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