[1] Kimble H J. The quantum internet[J]. Nature, 2008, 453(7198): 1023-1030.
[2] Giovannetti V, Lloyd S, Maccone L. Quantumenhanced measurements: Beating the standard quantum limit[J]. Science, 2004, 306(5700): 1330-1336.
[3] Maurya A K, Mishra M K, Prakash H. Twoway quantum communication: Generalization of secure quantum information exchange to quantum network[J]. Pramana, 2016, 86(3): 515-526.
[4] Hammerer K, Srensen A S, Polzik E S. Quantum interface between light and atomic ensembles[J]. Review of Modern Physics, 2008, 82(2): 1041-1093.
[5] Fujiwara M, Neitzke O, Schrder T, et al. Fibercoupled diamond microwaveguides toward an efficient quantum interface for spin defect centers[J]. ACS Omega, 2017, 2(10): 7194-7202.
[6] Yao W, Liu R B, Sham L J. Theory of control of the spinphoton interface for quantum networks[J]. Physical Review Letters, 2005, 95(3): 030504.
[7] Cirac J I, Zoller P, Kimble H J, et al. Quantum state transfer and entanglement distribution among distant nodes in a quantum network[J]. Physical Review Letters, 1997, 78(16): 3221-3224.
[8] Yao W, Liu R B, Sham L J. Theory of control of the dynamics of the interface between stationary and flying qubits[J]. Journal of Optics B: Quantum and Semiclassical Optics, 2005, 7(10): S318-S325.
[9] Palomaki T A, Harlow J W, Teufel J D, et al. Coherent state transfer between itinerant microwave fields and a mechanical oscillator[J]. Nature, 2013, 495(7440): 210-214.
[10] Mateen F, Brown B, Erramilli S, et al. Wireless actuation of bulk acoustic modes in micromechanical resonators[J]. Applied Physics Letters, 2016, 109(7): 073502.