• Acta Optica Sinica
  • Vol. 41, Issue 8, 0823017 (2021)
Zhanghua Han1、2、3, Kaili Sun1、2、3, and Yangjian Cai1、2、3、*
Author Affiliations
  • 1Center of Light Manipulation and Applications, Shandong Normal University, Jinan, Shandong 250358, China
  • 2Shandong Provincial Key Laboratory of Optics and Photonic Devices, Jinan, Shandong 250358, China
  • 3Shandong Provincial Engineering and Technical Center of Light Manipulations, Jinan, Shandong 250358, China
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    DOI: 10.3788/AOS202141.0823017 Cite this Article Set citation alerts
    Zhanghua Han, Kaili Sun, Yangjian Cai. Research Progress of Micro-Nano Optical Structure and Terahertz Radiation Generation Technology[J]. Acta Optica Sinica, 2021, 41(8): 0823017 Copy Citation Text show less
    Principle of the generating THz radiation. (a) THz radiation based on the photoconductive effect; (b) THz radiation based on the nonlinear difference frequency effect
    Fig. 1. Principle of the generating THz radiation. (a) THz radiation based on the photoconductive effect; (b) THz radiation based on the nonlinear difference frequency effect
    Structure of the PCA. (a) Structure of the conventional PCA; (b) PCA with integrated metal nanostructure array[17]
    Fig. 2. Structure of the PCA. (a) Structure of the conventional PCA; (b) PCA with integrated metal nanostructure array[17]
    One-dimensional metal grating made on the DC bias electrode of PCA[20]
    Fig. 3. One-dimensional metal grating made on the DC bias electrode of PCA[20]
    THz radiation formed when there is no bias voltage[23]
    Fig. 4. THz radiation formed when there is no bias voltage[23]
    Performance comparison of different THz mixers. (a) Schematic diagram of the structure; (b) THz output power variation curve with frequency[27]
    Fig. 5. Performance comparison of different THz mixers. (a) Schematic diagram of the structure; (b) THz output power variation curve with frequency[27]
    Schematic of the THz radiation generated when femtosecond laser irradiates a silver nanoparticle array[33]
    Fig. 6. Schematic of the THz radiation generated when femtosecond laser irradiates a silver nanoparticle array[33]
    Granular film formed when the metal thickness does not exceed the critical percolation threshold[37]
    Fig. 7. Granular film formed when the metal thickness does not exceed the critical percolation threshold[37]
    THz radiation generation when a gold split resonator ring is used. (a) Schematic diagram of the experimental device; (b) THz radiation generation under different conditions[39]
    Fig. 8. THz radiation generation when a gold split resonator ring is used. (a) Schematic diagram of the experimental device; (b) THz radiation generation under different conditions[39]
    Schematic diagram of the multi-spectral resonance structure[43]
    Fig. 9. Schematic diagram of the multi-spectral resonance structure[43]
    Mie resonance supported by an all-dielectric structure and its nonlinear applications. (a) Magnetic dipole supported by all-dielectric microspheres[45]; (b) scattering efficiency under different relative permittivity when q=0.5[45]; (c) when the pump light is incident on a single InGaAs microdisk generate enhanced double frequency signal[48]
    Fig. 10. Mie resonance supported by an all-dielectric structure and its nonlinear applications. (a) Magnetic dipole supported by all-dielectric microspheres[45]; (b) scattering efficiency under different relative permittivity when q=0.5[45]; (c) when the pump light is incident on a single InGaAs microdisk generate enhanced double frequency signal[48]
    Enhanced THz detection based on magnetic dipole resonance of all-media GaAs structure. (a) Cube-strip structure and two magnetic dipole modes; (b) schematic diagram of the enhanced THz detector; (c) cube-strip structure and electric field amplitude distribution at resonance wavelength[50]
    Fig. 11. Enhanced THz detection based on magnetic dipole resonance of all-media GaAs structure. (a) Cube-strip structure and two magnetic dipole modes; (b) schematic diagram of the enhanced THz detector; (c) cube-strip structure and electric field amplitude distribution at resonance wavelength[50]
    Non-radiation mode formed by ED and TD[46]
    Fig. 12. Non-radiation mode formed by ED and TD[46]
    Zhanghua Han, Kaili Sun, Yangjian Cai. Research Progress of Micro-Nano Optical Structure and Terahertz Radiation Generation Technology[J]. Acta Optica Sinica, 2021, 41(8): 0823017
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