Self-organized nanograting: a plasmonic dichroic polarizer

被引:0
|
作者
Nahal, Arashmid [1 ,2 ]
Kiasatfar, Ozra [1 ]
机构
[1] Univ Tehran, Coll Sci, Dept Phys, Photon Mat Res Lab, Tehran 1439955961, Iran
[2] Univ Tehran, Coll Sci, Dept Phys, Opt Metrol Res Lab, Tehran 1439955961, Iran
来源
关键词
Spontaneous nano-gratings; Silver nanoparticles; Photosensitive thin films; Linear polarizer; Dichroism; Plasmonic nanostructure; SPONTANEOUS-GRATING FORMATION; PHOTOSENSITIVE FILMS; PECULIARITIES;
D O I
10.1007/s00339-025-08479-x
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Self-organized periodic nanostructures (SPNs) have attracted significant interest due to their unique optical properties. This article examines SPNs as dichroic polarizers that selectively transmit or absorb light based on polarization. We explore the underlying mechanisms, fabrication techniques, and potential applications of SPNs. The SPNs are generated in a photosensitive AgCl-Ag thin film, by irradiating it with a linearly polarized He-Ne laser beam. The relocation of Ag nanoparticles into the minima of the interference pattern results in the formation of SPNs.The chain-like arrangement of metallic granular lines of silver clusters displays dichroism, polarizing the probe beam. The quality of the produced plasmonic dichroic polarizer depends on the exposure time. Thus, one can consider the exposure time as a control parameter for the quality of the product. Our research indicates dichroic polarizers, created using elliptically or circularly polarized laser beams, are less effective than those produced by a linearly polarized laser beam. The plasmonic dichroic polarizer, made using a linearly polarized laser beam with a 30-min exposure time, exhibited the highest polarization percentage (approximately 70%) for the probe beam at a wavelength of 525 nm, which is very close to the surface plasmon resonance peak of silver nanoparticles placed on AgCl substrate.
引用
收藏
页数:11
相关论文
共 50 条
  • [41] Self-organized polymeric microstructures
    Suh, KY
    Lee, HH
    ADVANCED MATERIALS, 2002, 14 (05) : 346 - 351
  • [42] Apparent self-organized criticality
    Tainaka, K
    Itoh, Y
    PHYSICS LETTERS A, 1996, 220 (1-3) : 58 - 62
  • [43] CONDITIONS FOR SELF-ORGANIZED MODULATION
    Olemskoi, O. I.
    Shuda, I. O.
    Borisov, S. S.
    UKRAINIAN JOURNAL OF PHYSICS, 2008, 53 (11): : 1119 - 1127
  • [44] SANDPILES AND SELF-ORGANIZED CRITICALITY
    DHAR, D
    PHYSICA A, 1992, 186 (1-2): : 82 - 87
  • [45] SEISMICITY AND SELF-ORGANIZED CRITICALITY
    BARRIERE, B
    TURCOTTE, DL
    PHYSICAL REVIEW E, 1994, 49 (02) : 1151 - 1160
  • [46] Self-organized network flows
    Helbing, Dirk
    Siegmeier, Jan
    Lammer, Stefan
    NETWORKS AND HETEROGENEOUS MEDIA, 2007, 2 (02) : 193 - 210
  • [47] Self-organized superlattices of nanoparticles
    Weller, H
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION IN ENGLISH, 1996, 35 (10): : 1079 - 1081
  • [48] Self-organized quantum dots
    Lagally, MG
    JOURNAL OF CHEMICAL EDUCATION, 1998, 75 (03) : 277 - 279
  • [49] Self-organized quantum dots
    Bhattacharya, P
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2005, 38 (13)
  • [50] The self-organized critical multiverse
    Kartvelishvili, Guram
    Khoury, Justin
    Sharma, Anushrut
    JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2021, (02):