• 대한전기학회
Mobile QR Code QR CODE : The Transactions of the Korean Institute of Electrical Engineers
  • COPE
  • kcse
  • 한국과학기술단체총연합회
  • 한국학술지인용색인
  • Scopus
  • crossref
  • orcid

References

1 
M. Aziz-Kerrzo et al, “Electrochemical studies on the stability and corrosion resistance of titanium-based implant materials,” Biomaterials, vol. 22, pp. 1531-1539, 2001.DOI
2 
M. Koike, and F. Hiroyuki, “The corrosion resistance of pure titanium in organic acids,” Biomaterials, vol. 22, pp. 2931-2936, 2001.DOI
3 
M. J. Choi et al, “Influence of oxidative etching solution temperatures on the surface roughness and wettability of a titanium alloy,” Journal of Nanoscience and Nanotechnology, vol. 19, pp. 1044-1047, 2019.DOI
4 
T. Albrektsson et al, “Osseointegrated titanium implants: requirements for ensuring a long-lasting, direct bone-to-implant anchorage in man,” Acta Orthopaedica Scandinavica, vol. 52, pp. 155-170, 1981.DOI
5 
M. Esposito et al, “Biological factors contributing to failures of osseointegrated oral implants.(II),” Etiopathogenesis. European journal of oral sciences, vol. 106, pp. 721-764, 1998.DOI
6 
P. G. Coelho et al, “Osseointegration: Hierarchical designing encompassing the macrometer, micrometer, and nanometer length scales,” Dental Materials, vol. 31, pp. 37–52, 2015.DOI
7 
C. Makary et al, “Nanostructured Calcium-Incorporated Surface Compared to Machined and SLA Dental Implants—A Split-Mouth Randomized Case/Double-Control Histological Human Study,” Nanomaterials, vol. 13, pp. 357, 2023.DOI
8 
J.W. Park, J. Y. Suh, and H. J. Chung, “Effects of calcium ion incorporation on osteoblast gene expression in MC3T3-E1 cells cultured on microstructured titanium surfaces,” Journal of Biomedical Materials Research Part A: An Official Journal of The Society for Biomaterials, The Japanese Society for Biomaterials, and The Australian Society for Biomaterials and the Korean Society for Biomaterials, vol. 86, pp. 117-126, 2008.DOI
9 
S. Verardi et al, “Osteointegration of Tissue-Level Implants with Very Low Insertion Torque in Soft Bone: A Clinical Study on SLA Surface Treatment,” IImplant Dentistry, vol. 27, pp. 5-9, 2018.DOI
10 
E. D. de Avila et al, “Effect of UV-photofunctionalization on oral bacterial attachment and biofilm formation to titanium implant material,” Biomaterials, vol. 67, pp. 84-92, 2015.DOI
11 
W. Att et al, “The effect of UV-photofunctionalization on the time-related bioactivity of titanium and chromium–cobalt alloys,” Biomaterials, vol. 30, pp. 4268-4276, 2009.DOI
12 
M. Taborelli et al, “Influence of surface treatments developed for oral implants on the physical and biological properties of titanium.(I) Surface characterization,” Clinical oral implants research, vol. 8, pp. 208-216, 1997.DOI
13 
A. Henningsen et al, “Changes in surface characteristics of titanium and zirconia after surface treatment with ultraviolet light or non‐thermal plasma,” European Journal of Oral Sciences, vol 126, pp. 126-134, 2018.DOI
14 
X. Gong et al, “Decomposition of volatile organic compounds using gliding arc discharge plasma,” Journal of the Air & Waste Management Association, vol 70, pp. 138-157, 2020.DOI
15 
A. Cunha et al, “Osseointegration of atmospheric plasma‐sprayed titanium implants: Influence of the native oxide layer,” Journal of Biomedical Materials Research Part A: An Official Journal of The Society for Biomaterials, The Japanese Society for Biomaterials, and The Australian Society for Biomaterials and the Korean Society for Biomaterials, vol 102, pp. 30-36, 2014.DOI
16 
A. Henningsen el al, “Changes in surface characteristics of titanium and zirconia after surface treatment with ultraviolet light or non-thermal plasma,” European Journal of Oral Sciences, vol 126, pp. 126-134, 2018.DOI
17 
J.S. Choi et al, “Effects of surface treatment method forming new nano/micro hierarchical structures on attachment and proliferation of osteoblast-like cells,” Materials, vol 16, pp, 5171, 2023DOI
18 
S. Szmukler-Moncler et al., “Etched Implants: A Comparative surface analysis of four implant systems,” Journal of Biomedical Materials Research Part B: Applied Biomaterials: An Official Journal of The Society for Biomaterials, The Japanese Society for Biomaterials, and The Australian Society for Biomaterials and the Korean Society for Biomaterials, vol. 69, pp. 46-57, 2004.DOI
19 
Standard, B., & ISO, B., “Biological evaluation of medical devices—. Biol,” Eval. Med. devices, 10993-1, 2003.URL
20 
C. Shuxiang et al, “Recent advance in surface modification for regulating cell adhesion and behaviors,” Nanotechnology Reviews, vol. 9, pp. 971-989, 2020.DOI
21 
Y. Wenguang et al, “Facile modulation of cell adhesion to a poly(ethylene glycol) diacrylate film with incorporation of polystyrene nano-spheres,” Biomedical microdevices, vol. 18, pp. 971-989, 2016.DOI
22 
H. Lee et al, “Improvement of osseointegration efficacy of titanium implant through plasma surface treatment,” Biomedical Engineering Letters, vol. 12, pp. 421-432, 2022.DOI
23 
C. J. Wilson et al, “Mediation of biomaterial–cell interactions by adsorbed proteins: a review,” Tissue engineering, vol 11, pp. 1-18, 2005.DOI