Amorphous chalcogenide layers and nanocomposites for direct surface patterning

被引:4
|
作者
Molnar, Sandor [1 ]
Bohdan, Roland [1 ]
Csarnovics, Istvan [1 ]
Burunkova, Iuliia [2 ]
Kokenyesi, Sandor [1 ]
机构
[1] Univ Debrecen, Inst Phys, H-4026 Debrecen, Hungary
[2] Univ ITMO, St Petersburg 197101, Russia
来源
关键词
chalcogenide glasses; optical-; electron-; ion-beam recording; optical relief; surface patterning; RELIEF;
D O I
10.1117/12.2076470
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Homogeneous, 200 - 3000 nm thick layers of chalcogenide glasses, 1 - 2 mm thick plane-parallel plates as well as nanocomposite structures, containing gold nanoparticles have been produced and used for in situ surface optical and geometrical relief fabrication by optical- or electron-, ion-beam recording. Investigations were focused on the formation of giant (height modulation from nanometers up to micrometers) geometrical reliefs and elements (dots, lines and diffractive elements) applicable in the 0.5 - 10 micrometer spectral range. Recording parameters were compared with available data on acrylic polymer nanocomposites. The mechanism of the recording processes, which include thermal, electron and mass-transport components were explained and the selection of the materials from As(Ge)-S(Se) binary systems with best recording parameters was done.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Plastic flow and fracture of amorphous intercrystalline layers in ceramic nanocomposites
    Gutkin, M. Yu.
    Ovid'ko, I. A.
    PHYSICS OF THE SOLID STATE, 2010, 52 (04) : 718 - 727
  • [32] Surface relief grating recording in amorphous chalcogenide and azobenzene compounds
    Teteris, J.
    JOURNAL OF OPTOELECTRONICS AND ADVANCED MATERIALS, 2018, 20 (5-6): : 229 - 235
  • [33] SPACE-CHARGE REGION AT SURFACE OF AMORPHOUS CHALCOGENIDE SEMICONDUCTORS
    WEY, HY
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1973, 18 (03): : 391 - 391
  • [34] Plasmon assisted photoinduced surface changes in amorphous chalcogenide layer
    Charnovych, S.
    Szabo, I. A.
    Toth, A. L.
    Volk, J.
    Trunov, M. L.
    Koekenyesi, S.
    JOURNAL OF NON-CRYSTALLINE SOLIDS, 2013, 377 : 200 - 204
  • [35] Direct electron-beam patterning of surface coatings and sacrificial layers for micro-total analysis systems
    Harnett, CK
    Satyalakshmi, KM
    Coates, GW
    Craighead, HG
    JOURNAL OF PHOTOPOLYMER SCIENCE AND TECHNOLOGY, 2002, 15 (03) : 493 - 496
  • [36] Nanocomposites of Chalcogenide and their Applications
    Rana, Dolly
    Soni, Ashish
    Sharma, Anita
    Katoch, Akash
    Jamwal, Deepika
    NANO HYBRIDS AND COMPOSITES, 2018, 20 : 46 - 64
  • [37] Nanotechnology in Covalent Adaptable Networks: from Nanocomposites to Surface Patterning
    Wang, Sheng
    Li, Bofan
    Zheng, Jie
    Surat'man, Nayli Erdeanna Binte
    Wu, Jing
    Wang, Nannan
    Xu, Xiwei
    Zhu, Jin
    Loh, Xian Jun
    Li, Zibiao
    ACS MATERIALS LETTERS, 2023, 5 (02): : 608 - 628
  • [38] Nanotechnology in Covalent Adaptable Networks: from Nanocomposites to Surface Patterning
    Wang, Sheng
    Li, Bofan
    Zheng, Jie
    Surat'man, Nayli Erdeanna Binte
    Wu, Jing
    Wang, Nannan
    Xu, Xiwei
    Zhu, Jin
    Loh, Xian Jun
    Li, Zibiao
    ACS MATERIALS LETTERS, 2023,
  • [39] Bacterial surface layers (S-layers) as building blocks for nanocomposites
    Pollmann, K.
    Raff, J.
    Fahmy, K.
    Borany, J. V.
    Grenzer, J.
    Herrmannsdorfer, T.
    NANOFAIR 2008: NEW IDEAS FOR INDUSTRY, 2008, 2027 : 213 - 219
  • [40] AMORPHOUS SURFACE LAYERS IN POLYETHYLENE SINGLE CRYSTALS
    PETERLIN, A
    ZACHMANN, HG
    JOURNAL OF POLYMER SCIENCE PART C-POLYMER SYMPOSIUM, 1971, (34): : 11 - &