Acta Optica Sinica, Volume. 42, Issue 20, 2024002(2022)
Preparation and Optical Properties of Polarization-Dependent Nano-Gap Array
[1] Prabowo B A, Purwidyantri A, Liu K C. Surface plasmon resonance optical sensor: a review on light source technology[J]. Biosensors, 8, 80(2018).
[2] Wang L, Zhang L. Narrow-spectrum enhanced sensor based on surface plasmon resonator[J]. Acta Optica Sinica, 41, 0724001(2021).
[3] Cao A C, Ni H B, Ni B et al. Preparation and optical properties of self-assembled plasmonic biosensor based on silver nanoring[J]. Chinese Journal of Lasers, 49, 0313001(2022).
[4] Bozhevolnyi S I, Jung J. Scaling for gap plasmon based waveguides[J]. Optics Express, 16, 2676-2684(2008).
[5] Habib M, Issah I, Briukhanova D et al. Wavefront control with nanohole array-based out-of-plane metasurfaces[J]. ACS Applied Nano Materials, 4, 8699-8705(2021).
[6] Park S M, Lee K S, Kim J H et al. Direct visualization of gap-plasmon propagation on a near-touching nanowire dimer[J]. The Journal of Physical Chemistry Letters, 11, 9313-9320(2020).
[7] Søndergaard T, Bozhevolnyi S I. Theoretical analysis of plasmonic black gold: periodic arrays of ultra-sharp grooves[J]. New Journal of Physics, 15, 013034(2013).
[8] Areed N F F, El Malt S M, Obayya S S A. Broadband omnidirectional nearly perfect plasmonic absorber for solar energy harvesting[J]. IEEE Photonics Journal, 8, 4802718(2016).
[9] Jiang Z H, Yun S, Lin L et al. Tailoring dispersion for broadband low-loss optical metamaterials using deep-subwavelength inclusions[J]. Scientific Reports, 3, 1571(2013).
[10] Teng D, Wang K, Li Z et al. Graphene gap plasmonic waveguide for deep-subwavelength transmission of mid-infrared waves[J]. Acta Optica Sinica, 40, 0623002(2020).
[11] Wong Y L, Jia H P, Jian A Q et al. Enhancing plasmonic hot-carrier generation by strong coupling of multiple resonant modes[J]. Nanoscale, 13, 2792-2800(2021).
[12] Fan P Y, Huang K C Y, Cao L Y et al. Redesigning photodetector electrodes as an optical antenna[J]. Nano Letters, 13, 392-396(2013).
[13] Zhang X M, Xiao J J, Zhang Q et al. Plasmonic TM-like cavity modes and the hybridization in multilayer metal-dielectric nanoantenna[J]. Optics Express, 23, 16122-16132(2015).
[14] Lin J, Mueller J P B, Wang Q et al. Polarization-controlled tunable directional coupling of surface plasmon polaritons[J]. Science, 340, 331-334(2013).
[15] Chen J, Li T, Wang S M et al. Multiplexed holograms by surface plasmon propagation and polarized scattering[J]. Nano Letters, 17, 5051-5055(2017).
[16] Yin X, Chen L, Li X. Polarization-controlled generation of Airy plasmons[J]. Optics Express, 26, 23251-23264(2018).
[17] Li Z B, Clark A W, Cooper J M. Dual color plasmonic pixels create a polarization controlled nano color palette[J]. ACS Nano, 10, 492-498(2016).
[18] Tuong P V, Park J W, Rhee J Y et al. Polarization-insensitive and polarization-controlled dual-band absorption in metamaterials[J]. Applied Physics Letters, 102, 081122(2013).
[19] El Sherif M H, Ahmed O S, Bakr M H et al. Polarization-controlled excitation of multilevel plasmonic nano-circuits using single silicon nanowire[J]. Optics Express, 20, 12473-12486(2012).
[20] Dai Z F, Li Y, Duan G T et al. Phase diagram, design of monolayer binary colloidal crystals, and their fabrication based on ethanol-assisted self-assembly at the air/water interface[J]. ACS Nano, 6, 6706-6716(2012).
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An Ping, Haibin Ni, Jianxin Cheng, Jianhua Chang. Preparation and Optical Properties of Polarization-Dependent Nano-Gap Array[J]. Acta Optica Sinica, 2022, 42(20): 2024002
Category: Optics at Surfaces
Received: Mar. 15, 2022
Accepted: May. 4, 2022
Published Online: Oct. 18, 2022
The Author Email: Ni Haibin (nihaibin@nuist.edu.cn)