• Acta Optica Sinica
  • Vol. 40, Issue 12, 1219001 (2020)
Jianshuai Zhang1, Hongjun Zhang1、*, and Hui Sun1
Author Affiliations
  • 1School of Physics and Information Technology, Shaanxi Normal University, Xi′an, Shaanxi 710119, China
  • 1School of Physics and Information Technology, Shaanxi Normal University, Xian, Shaanxi 710119, China
  • show less
    DOI: 10.3788/AOS202040.1219001 Cite this Article Set citation alerts
    Jianshuai Zhang, Hongjun Zhang, Hui Sun. Controlling Optical Bistability Through Quantum Coherence in Tin-Vacancy Color Centers in Diamond[J]. Acta Optica Sinica, 2020, 40(12): 1219001 Copy Citation Text show less
    References

    [1] Arimondo E V. Coherent population trapping in laser spectroscopy[J]. Progress in Optics, 35, 257-354(1996).

    [2] Harris S E. Electromagnetically induced transparency[J]. Physics Today, 50, 36-42(1997).

    [3] Dawes A M C, Illing L, Clark S M et al. All-optical switching in rubidium vapor[J]. Science, 308, 672-674(2005).

    [4] Gibbs H M. McCall S L, Venkatesan T N C. Differential gain and bistability using a sodium-filledfabry-perot interferometer[J]. Physical Review Letters, 36, 1135-1138(1976).

    [5] Orozco L A, Kimble H J, Rosenberger A T et al. Single-mode instability in optical bistability[J]. Physical Review A, 39, 1235-1252(1989).

    [6] Rosenberger A T, Orozco L A, Kimble H J. Observation of absorptive bistability with two-level atoms in a ring cavity[J]. Physical Review A, 28, 2569-2572(1983).

    [7] Harshawardhan W, Agarwal G S. Controlling optical bistability using electromagnetic-field-induced transparency and quantum interferences[J]. Physical Review A, 53, 1812-1817(1996).

    [8] Joshi A, Xiao M. Optical multistability in three-level atoms inside an optical ring cavity[J]. Physical Review Letters, 91, 143904(2003).

    [9] Cheng D C, Liu C P, Gong S Q. Optical bistability and multistability via the effect of spontaneously generated coherence in a three-level ladder-type atomic system[J]. Physics Letters A, 332, 244-249(2004).

    [10] Guo H J, Wang L C, Niu Y P et al. Optical bistability and multistability via multi-Raman-channel interference[J]. Chinese Optics Letters, 7, 659-662(2009). http://www.opticsjournal.net/Articles/Abstract?aid=OJ090817000064lRoUrX

    [11] Wang Z P. Controlling optical bistability and multistability in a three-level ∧-type atomic system under the nonresonant condition[J]. Acta Sinica Quantum Optica, 15, 133-138(2009).

    [12] Li J H, Lü X Y, Luo J M et al. Optical bistability and multistability via atomic coherence inan N-type atomic medium[J]. Physical Review A, 74, 035801(2006).

    [13] Li J H. Controllable optical bistability in a four-subband semiconductor quantum well system[J]. Physical Review B, 75, 155329(2007).

    [14] Li J B, Liang S, He M D et al. A tunablebistable device based on a coupled quantum dot: metallic nanoparticle nanosystem[J]. Applied Physics B, 120, 161-166(2015).

    [15] Bao C J, Qi Y H, Niu Y P et al. Surface plasmon-assisted optical bistability in the quantum dot-metal nanoparticle hybrid system[J]. Journal of Modern Optics, 63, 1280-1285(2016).

    [16] Fuchs G D, Falk A L, Dobrovitski V V et al. Spin coherence during optical excitation of a single nitrogen-vacancy center in diamond[J]. Physical Review Letters, 108, 157602(2012).

    [17] Santori C, Tamarat P, Neumann P et al. Coherent population trapping of single spins in diamond under optical excitation[J]. Physical Review Letters, 97, 247401(2006).

    [18] Feng S, Wang T A, Zhang Y. Converting W-state into GHz-state based on cross-Kerr nonlinearity and coupling systems of nitrogen-vacancy color center in diamond and microtoroidal resonator[J]. Laser & Optoelectronics Progress, 56, 212701(2019).

    [19] Liao Q H, Jin P, Ye Y. Entanglement dynamic properties of nitrogen-vacancy centers coupled to mechanical resonators in nanodiamond[J]. Chinese Journal of Lasers, 45, 1212001(2018).

    [20] Zhang D, Yu R, Li J H et al. Laser-polarization-dependent and magnetically controlled optical bistability in diamond nitrogen-vacancy centers[J]. Physics Letters A, 377, 2621-2627(2013).

    [21] Neu E, Agio M, Becher C. Photophysics of single silicon vacancy centers in diamond: implications for single photon emission[J]. Optics Express, 20, 19956-19971(2012).

    [22] Sipahigil A, Evans R E, Sukachev D D et al. An integrated diamond nanophotonics platform forquantum-optical networks[J]. Science, 354, 847-850(2016).

    [23] Hepp C, Müller T, Waselowski V et al. Electronic structure of the silicon vacancy color center in diamond[J]. Physical Review Letters, 112, 036405(2014).

    [24] Iwasaki T, Ishibashi F, Miyamoto Y et al. Germanium-vacancy single color centers in diamond[J]. Scientific Reports, 5, 12882(2015).

    [25] Palyanov Y N, Kupriyanov I N, Borzdov Y M et al. Germanium: a new catalyst for diamond synthesis and a new optically active impurity in diamond[J]. Scientific Reports, 5, 14789(2015).

    [26] Ekimov E A, Lyapin S G, Boldyrev K N et al. Germanium-vacancy color center in isotopically enriched diamonds synthesized at high pressures[J]. JETP Letters, 102, 701-706(2015).

    [27] Siyushev P, Metsch M H, Ijaz A et al. Optical and microwave control of germanium-vacancy center spins in diamond[J]. Physical Review B, 96, 081201(2017).

    [28] Bhaskar M, Sukachev D, Sipahigil A et al. Quantum nonlinear optics with a germanium-vacancy color center in a nanoscale diamond waveguide[J]. Physical Review Letters, 118, 223603(2017).

    [29] Boldyrev K N, Mavrin B N, Sherin P S et al. Bright luminescence of diamonds with Ge-V centers[J]. Journal of Luminescence, 193, 119-124(2018).

    [30] Bray K, Regan B, Trycz A et al. Single crystal diamond membranes and photonic resonators containing germanium vacancy color centers[J]. ACS Photonics, 5, 4817-4822(2018).

    [31] Iwasaki T, Miyamoto Y, Taniguchi T et al. Tin-vacancy quantum emitters in diamond[J]. Physical Review Letters, 119, 253601(2017).

    [32] Thiering G, Gali A. Ab initio magneto-optical spectrum of group-IV vacancy color centers in diamond[J]. Physical Review X, 8, 021063(2018).

    [33] Meystre P. On the use of the mean-field theory in optical bistability[J]. Optics Communications, 26, 277-280(1978).

    Jianshuai Zhang, Hongjun Zhang, Hui Sun. Controlling Optical Bistability Through Quantum Coherence in Tin-Vacancy Color Centers in Diamond[J]. Acta Optica Sinica, 2020, 40(12): 1219001
    Download Citation