Coupling an electron spin in a semiconductor quantum dot to an optical nano-cavity
arXiv:1211.5571 · doi:10.1103/PhysRevLett.111.027402
Abstract
We propose a scheme to efficiently couple a single quantum dot electron spin to an optical nano-cavity, which enables us to simultaneously benefit from a cavity as an efficient photonic interface, as well as to perform high fidelity (nearly 100%) spin initialization and manipulation achievable in bulk semiconductors. Moreover, the presence of the cavity speeds up the spin initialization process beyond GHz.
6 figures
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Cited by in corpus (4)
- Quantum Interference Induced Photon Blockade in a Coupled Single Quantum Dot-Cavity System
- Deterministically Charged Quantum Dots in Photonic Crystal Nanoresonators for Efficient Spin-Photon Interfaces
- Detecting nonlocal Cooper pair entanglement by optical Bell inequality violation
- Nonclassical Light Generation from III-V and Group-IV Solid-State Cavity Quantum Systems