Research on key problems of quantum state transformation based on cavity electro-opto-mechanical system
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[1] J. R. Petta,et al. Circuit quantum electrodynamics architecture for gate-defined quantum dots in silicon , 2016, 1610.05571.
[2] Wenjun Zhou,et al. Bistability and Entanglement of a Two-Mode Cavity Optomechanical System , 2016 .
[3] Alexandre Blais,et al. Antibunching of microwave-frequency photons observed in correlation measurements using linear detectors , 2011 .
[4] Eyob A. Sete,et al. Strong squeezing and robust entanglement in cavity electromechanics , 2013, 1312.3606.
[5] S. E. de Graaf,et al. Tuneable on-demand single-photon source in the microwave range , 2015, Nature Communications.
[6] C. Regal,et al. From cavity electromechanics to cavity optomechanics , 2010, 1010.4056.
[7] Thomas M. Stace,et al. Detecting itinerant single microwave photons , 2015, 1504.04979.
[8] Erik Lucero,et al. Catch and release of microwave photon states. , 2012, Physical review letters.
[9] Yong Li,et al. Detecting macroscopic quantum coherence with a cavity optomechanical system , 2016, 1610.06260.
[10] S. Filipp,et al. Observation of entanglement between itinerant microwave photons and a superconducting qubit. , 2012, Physical review letters.
[11] B. Varcoe,et al. Single microwave photon detection in the micromaser , 2009, 0905.0166.