• Journal of Infrared and Millimeter Waves
  • Vol. 42, Issue 1, 72 (2023)
Zhen-Qing ZHANG1、2, Li-Juan DONG2、*, Fu-Sheng DENG2, Yun-Hui LI3、**, Jing-Ping XU3, Yong SUN3, and Hong CHEN3
Author Affiliations
  • 1Department of Criminal Science and technology Railway Police College,Zhengzhou 450053,China
  • 2Shanxi Provincial Key Laboratory of Electromagnetic Functional Materials for Microstructure,Shanxi Datong University,Datong 037009,China
  • 3School of Physics Science and Engineering,Tongji University,Shanghai 200092,China
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    DOI: 10.11972/j.issn.1001-9014.2023.01.010 Cite this Article
    Zhen-Qing ZHANG, Li-Juan DONG, Fu-Sheng DENG, Yun-Hui LI, Jing-Ping XU, Yong SUN, Hong CHEN. High-efficiency nano laser based on multipath positive feedback mechanism of matching zero-index metamaterials[J]. Journal of Infrared and Millimeter Waves, 2023, 42(1): 72 Copy Citation Text show less
    (a)Traditional Fabry-Perot cavity laser,(b)scheme of a Fabry-Perot cavity constituted of LHMs and ZIMs slabs,(c)and(d)the geometric optical-path of the radiation field emitted by the atoms,(c)atom is located in the center of the cavity,(d)atom is placed at(0,0,λ0),the black short arrow refers to atom
    Fig. 1. (a)Traditional Fabry-Perot cavity laser,(b)scheme of a Fabry-Perot cavity constituted of LHMs and ZIMs slabs,(c)and(d)the geometric optical-path of the radiation field emitted by the atoms,(c)atom is located in the center of the cavity,(d)atom is placed at(0,0,λ0),the black short arrow refers to atom
    (Color online)The radiated electric field distribution by atomic when the electric point dipole is located in the center of the cavity(a)or located at(0,0,λ0)in the cavity(c). Far-field distribution of various radiation angles in the x-z plane is shown in(b)and(d),respectively. The white dotted lines in(a)and(c)refer to the interfaces between different materials
    Fig. 2. (Color online)The radiated electric field distribution by atomic when the electric point dipole is located in the center of the cavity(a)or located at(0,0,λ0)in the cavity(c). Far-field distribution of various radiation angles in the x-z plane is shown in(b)and(d),respectively. The white dotted lines in(a)and(c)refer to the interfaces between different materials
    (Color online)The normalized expect value of atomic radiative electric field in logarithmic function(a)the atom is placed at ra=(0,0,0),(b)the atom is placed at ra=(0,0,λ0),the common parameters are the same to these in Fig. 2
    Fig. 3. (Color online)The normalized expect value of atomic radiative electric field in logarithmic function(a)the atom is placed at ra=(0,0,0),(b)the atom is placed at ra=(0,0,λ0),the common parameters are the same to these in Fig. 2
    (Color online)The radiative field distribution of an electric dipole placed in the middle of the structure constituted by two-dimensional P C. The operating wavelength is λ=1 500nm
    Fig. 4. (Color online)The radiative field distribution of an electric dipole placed in the middle of the structure constituted by two-dimensional P C. The operating wavelength is λ=1 500nm
    (Colour online). Lasing actions in the NIMs-ZIMs structures,(a)emission spectra of the NIMs-ZIMs cavity vary with input pump amplitude and wavelength,(b)emission spectra linewidth varies with pump amplitude
    Fig. 5. (Colour online). Lasing actions in the NIMs-ZIMs structures,(a)emission spectra of the NIMs-ZIMs cavity vary with input pump amplitude and wavelength,(b)emission spectra linewidth varies with pump amplitude
    (Colour online)Maximum emission intensity varies with the input pump amplitude,black dashed and red solid lines represent individual ZIMs and NIM-ZIM structure,respectively
    Fig. 6. (Colour online)Maximum emission intensity varies with the input pump amplitude,black dashed and red solid lines represent individual ZIMs and NIM-ZIM structure,respectively
    Zhen-Qing ZHANG, Li-Juan DONG, Fu-Sheng DENG, Yun-Hui LI, Jing-Ping XU, Yong SUN, Hong CHEN. High-efficiency nano laser based on multipath positive feedback mechanism of matching zero-index metamaterials[J]. Journal of Infrared and Millimeter Waves, 2023, 42(1): 72
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