• Title/Summary/Keyword: Nanopatterned surface

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Evaluation of the periodontal regenerative properties of patterned human periodontal ligament stem cell sheets

  • Kim, Joong-Hyun;Ko, Seok-Yeong;Lee, Justin Ho;Kim, Deok-Ho;Yun, Jeong-Ho
    • Journal of Periodontal and Implant Science
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    • v.47 no.6
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    • pp.402-415
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    • 2017
  • Purpose: The aim of this study was to determine the effects of patterned human periodontal ligament stem cell (hPDLSC) sheets fabricated using a thermoresponsive substratum. Methods: In this study, we fabricated patterned hPDLSC sheets using nanotopographical cues to modulate the alignment of the cell sheet. Results: The hPDLSCs showed rapid monolayer formation on various surface pattern widths. Compared to cell sheets grown on flat surfaces, there were no significant differences in cell attachment and growth on the nanopatterned substratum. However, the patterned hPDLSC sheets showed higher periodontal ligamentogenesis-related gene expression in early stages than the unpatterned cell sheets. Conclusions: This experiment confirmed that patterned cell sheets provide flexibility in designing hPDLSC sheets, and that these stem cell sheets may be candidates for application in periodontal regenerative therapy.

Self- and Artificially-Controlled ZnO Nanostructures by MOCVD (MOCVD을 이용하여 자발적 및 인위적으로 제어된 산화아연 나노구조)

  • Kim, Sang-Woo;Fujita, Shizuo
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2005.11a
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    • pp.9-10
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    • 2005
  • We report on the fabrication and characterization of self- and artificially-controlled ZnO nanostructures have been investigated to establish nanostructure blocks for ZnO-based nanoscale device application. Systematic realization of self- and artificially-controlled ZnO nanostructures on $SiO_2/Si$ substrates was proposed and successfully demonstrated utilizing metalorganic chemical vapor deposition (MOCVD) in addition with a focused ion beam (FIB) technique. Widely well-aligned two-dimensional ZnO nanodot arrays ($4{\sim}10^4$ nanodots of 130-nm diameter and 9-nm height over $150{\sim}150{\mu}m^2$ with a period of 750 nm) have been realized by MOCVD on $SiO_2/Si$ substrates patterned by FIB. A low-magnification FIB nanopatterning mode allowed the periodical nanopatterning of the substrates over a large area in a short processing time. Ga atoms incorporated into the surface areas of FIB-patterned nanoholes during FIB engraving were found to play an important role in the artificial control of ZnO, resulting in the production of ZnO nanodot arrays on the FIB-nanopatterned areas. The nanodots evolved into dot clusters and rods with increasing MOCVD growth time.

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Fabrication of Nanopatterned Oxide Layer on GaAs Substrate by using Block Copolymer and Reactive Ion Etching (블록 공중합체와 반응성 이온식각을 이용한 GaAs 기판상의 나노패터닝된 산화막 형성)

  • Kang, Gil-Bum;Kwon, Soon-Mook;Kim, Seoung-Il;Kim, Yong-Tae;Park, Jung-Ho
    • Journal of the Microelectronics and Packaging Society
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    • v.16 no.4
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    • pp.29-32
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    • 2009
  • Dense and periodic arrays of nano-sized holes were patterned in oxide thin film on GaAs substrate. To obtain the nano-size patterns, self-assembling diblock copolymer was used to produce thin film of uniformly distributed parallel cylinders of polymethylmethacrylate (PMMA) in polystyrene (PS) matrix. The PMMA cylinders were removed with UV expose and acetic acid rinse to produce PS nanotemplate. By reactive ion etching, pattern of the PS template was transferred to under laid silicon oxide layer. Transferred patterns were reached to the GaAs substrate by controlling the dry etching time. We confirmed the achievement of etching through the removing oxide layer and observation of GaAs substrate surface. Optimized etching time was 90 to 100 sec. Pore sizes of the nanopattern in the silicon oxide layer were 20~22 nm.

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