• Photonics Research
  • Vol. 7, Issue 7, 742 (2019)
Dohyun Kim1, Nam Hun Park2, Hyunju Lee2, Jaegoan Lee1, Dong-Il Yeom2、3, and Jungwon Kim1、*
Author Affiliations
  • 1School of Mechanical and Aerospace Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, South Korea
  • 2Department of Energy Systems Research & Department of Physics, Ajou University, Suwon 16499, South Korea
  • 3e-mail: diyeom@ajou.ac.kr
  • show less
    DOI: 10.1364/PRJ.7.000742 Cite this Article Set citation alerts
    Dohyun Kim, Nam Hun Park, Hyunju Lee, Jaegoan Lee, Dong-Il Yeom, Jungwon Kim. Graphene-based saturable absorber and mode-locked laser behaviors under gamma-ray radiation[J]. Photonics Research, 2019, 7(7): 742 Copy Citation Text show less
    References

    [1] A. Derevianko, M. Pospelov. Hunting for topological dark matter with atomic clocks. Nat. Phys., 10, 933-936(2014).

    [2] S. Kolkowitz, I. Pikovski, N. Langellier, M. D. Lukin, R. L. Walsworth, J. Ye. Gravitational wave detection with optical lattice atomic clocks. Phys. Rev. D, 94, 124043(2016).

    [3] T. Udem, R. Holzwarth, T. W. Hänsch. Optical frequency metrology. Nature, 416, 233-237(2002).

    [4] T. Steinmetz, T. Wilken, C. Araujo-Hauck, R. Holzwarth, T. W. Hänsch, L. Pasquini, A. Manescau, S. D’Odorico, M. T. Murphy, T. Kentischer, W. Schmidt, T. Udem. Laser frequency combs for astronomical observations. Science, 321, 1335-1337(2008).

    [5] J. A. Stone, P. Egan. An optical frequency comb tied to GPS for laser frequency/wavelength calibration. J. Res. Natl. Inst. Stand. Technol., 115, 413-431(2010).

    [6] J. Lee, K. Lee, Y.-S. Jang, H. Jang, S. Han, S.-H. Lee, K.-I. Kang, C.-W. Lim, Y.-J. Kim, S.-W. Kim. Testing of a femtosecond pulse laser in outer space. Sci. Rep., 4, 5134(2014).

    [7] M. Lezius, T. Wilken, C. Deutsch, M. Giunta, O. Mandel, A. Thaller, V. Schkolnik, M. Schiemangk, A. Dinkelaker, A. Kohfeldt, A. Wicht, M. Krutzik, A. Peters, O. Hellmig, H. Duncker, K. Sengstock, P. Windpassinger, K. Lampmann, T. Hülsing, T. W. Hänsch, R. Holzwarth. Space-borne frequency comb metrology. Optica, 3, 1381-1387(2016).

    [8] M. N. Ott. Radiation effects data on commercially available optical fiber: database summary. Proceedings of IEEE Radiation Effects Data Workshop, 24-31(2002).

    [9] M. Lezius, K. Predehl, W. Stöwer, A. Türler, M. Greiter, C. Hoeschen, P. Thirolf, W. Assmann, D. Habs, A. Prokofiev, C. Ekström, T. W. Hänsch, R. Holzwarth. Radiation induced absorption in rare earth doped optical fibers. IEEE Trans. Nucl. Sci., 59, 425-433(2012).

    [10] O. Berné, M. Caussanel, O. Gilard. A model for the prediction of EDFA gain in a space radiation environment. IEEE Photon. Technol. Lett., 16, 2227-2229(2004).

    [11] Y.-S. Jang, J. Lee, S. Kim, K. Lee, S. Han, Y.-J. Kim, S.-W. Kim. Space radiation test of saturable absorber for femtosecond laser. Opt. Lett., 39, 2831-2834(2014).

    [12] G. Buchs, S. Kundermann, E. Portuondo-Campa, S. Lecomte. Radiation hard mode-locked laser suitable as a spaceborne frequency comb. Opt. Express, 23, 9890-9900(2015).

    [13] F. Bonaccorso, Z. Sun, T. Hasan, A. C. Ferrari. Graphene photonics and optoelectronics. Nat. Photonics, 4, 611-622(2010).

    [14] A. K. Geim, K. S. Novoselov. The rise of graphene. Nat. Mater., 6, 183-191(2007).

    [15] A. N. Grigorenko, M. Polini, K. S. Novoselov. Graphene plasmonics. Nat. Photonics, 6, 749-758(2012).

    [16] Z. Sun, T. Hasan, F. Torrisi, D. Popa, G. Privitera, F. Wang, F. Bonaccorso, D. M. Basko, A. C. Ferrari. Graphene mode-locked ultrafast laser. ACS Nano, 4, 803-810(2010).

    [17] G. Sobon, J. Sotor, K. M. Abramski. All-polarization maintaining femtosecond Er-doped fiber laser mode-locked by graphene saturable absorber. Laser Phys. Lett., 9, 581-586(2012).

    [18] N. H. Park, H. Jeong, S. Y. Choi, M. H. Kim, F. Rotermund, D.-I. Yeom. Monolayer graphene saturable absorbers with strongly enhanced evanescent-field interaction for ultrafast fiber laser mode-locking. Opt. Express, 23, 19806-19812(2015).

    [19] E. J. Lee, S. Y. Choi, H. Jeong, N. H. Park, W. Yim, M. H. Kim, J.-K. Park, S. Son, S. Bae, S. J. Kim, K. Lee, Y. H. Ahn, K. J. Ahn, B. H. Hong, J.-Y. Park, F. Rotermund, D.-I. Yeom. Active control of all-fibre graphene devices with electrical gating. Nat. Commun., 6, 6851(2015).

    [20] E. H. Åhlgren, J. Kotakoski, O. Lehtinen, A. V. Krasheninnikov. Ion irradiation tolerance of graphene as studied by atomistic simulations. Appl. Phys. Lett., 100, 233108(2012).

    [21] E. J. Siochi. Graphene in the sky and beyond. Nat. Nanotechnol., 9, 745-747(2014).

    [22] Y. Wang, Y. Feng, F. Mo, G. Qian, Y. Chen, D. Yu, Y. Wang, X. Zhang. Influence of irradiation upon few-layered graphene using electron-beams and gamma-rays. Appl. Phys. Lett., 105, 023102(2014).

    [23] A. Ansón-Casaos, J. A. Puértolas, F. J. Pascual, J. Hernández-Ferrer, P. Castell, A. M. Benito, W. K. Maser, M. T. Martínez. The effect of gamma-irradiation on few-layered graphene materials. Appl. Surf. Sci., 301, 264-272(2014).

    [24] D. N. Kleut, Z. M. Marković, I. D. H. Antunović, M. D. Dramićanin, D. P. Kepić, B. M. T. Marković. Gamma ray-assisted irradiation of few-layer graphene films: a Raman spectroscopy study. Phys. Scr., T162, 014025(2014).

    [25] K. Alexandrou. Improving the radiation hardness of graphene field effect transistors. Appl. Phys. Lett., 109, 153108(2016).

    [26] Graphene field effect transistor as radiation sensor. IEEE Nuclear Science Symposium Conference Record, 455-459(2011).

    [27] Recent advances in radiation-hardened fiber-based technologies for space applications. J. Opt., 20, 093001(2018).

    [28] Large-scale pattern growth of graphene films for stretchable transparent electrodes. Nature, 457, 706-710(2009).

    [29] Doping-induced changes in the saturable absorption of monolayer graphene. Appl. Phys. B, 108, 129-135(2012).

    [30] Extreme space weather impact: an emergency management perspective. Space Weather, 12, 530-537(2014).

    [31] The space radiation environment for electronics. Proc. IEEE, 76, 1423-1442(1988).

    [32] Total radiation dose at geostationary orbit. IEEE Trans. Nucl. Sci., 52, 530-534(2005).

    [33] . Spacecraft Systems Engineering, 399(2011).

    [34] Effective doses in radiology and diagnostic nuclear medicine: a catalog. Radiology, 248, 254-263(2008).

    Dohyun Kim, Nam Hun Park, Hyunju Lee, Jaegoan Lee, Dong-Il Yeom, Jungwon Kim. Graphene-based saturable absorber and mode-locked laser behaviors under gamma-ray radiation[J]. Photonics Research, 2019, 7(7): 742
    Download Citation