1. a Centro de Nanociencias y Nanotecnología (CNYN) Universidad Nacional Autónoma de México Ensenada BCN México
2. c Original Biomedical Implants-México Hermosillo
3. b Centro de Investigación en Alimentos y Desarrollo Hermosillo
4. d Centro de Ingeniería y Desarrollo Industrial
5. e Facultad de Ciencia y Tecnología Universidad Tecnológica de Panamá
6. f Departamento de Investigación en Física Universidad de Sonora Hermosillo
7. a Centro de Nanociencias y Nanotecnología (CNYN) Universidad Nacional Autónoma de México Ensenada
8. c Original Biomedical Implants-México Hermosillo Sonora México
9. g Materials Science and Engineering and Bioengineering Departments University of Texas at Dallas Dallas
网络首发:2022-10-03,
纸质出版:2022
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Jorge A. Montes-Gutiérrez, Armida. A. Gil-Salido, Jesus J. Alcantar-Peña, 等. Viability and proliferation of A549 cell line on the surface of micro-, nano- and ultrananocrystalline diamond films grown by HFCVD with tailored gases[J]. Functional Diamond, 2022,2(1):112-118.
Jorge A. Montes-Gutiérrez, Armida. A. Gil-Salido, Jesus J. Alcantar-Peña, et al. Viability and proliferation of A549 cell line on the surface of micro-, nano- and ultrananocrystalline diamond films grown by HFCVD with tailored gases[J]. Functional Diamond2022, 2(1): 112-118.
Jorge A. Montes-Gutiérrez, Armida. A. Gil-Salido, Jesus J. Alcantar-Peña, 等. Viability and proliferation of A549 cell line on the surface of micro-, nano- and ultrananocrystalline diamond films grown by HFCVD with tailored gases[J]. Functional Diamond, 2022,2(1):112-118. DOI: 10.1080/26941112.2022.2126950.
Jorge A. Montes-Gutiérrez, Armida. A. Gil-Salido, Jesus J. Alcantar-Peña, et al. Viability and proliferation of A549 cell line on the surface of micro-, nano- and ultrananocrystalline diamond films grown by HFCVD with tailored gases[J]. Functional Diamond2022, 2(1): 112-118. DOI: 10.1080/26941112.2022.2126950.
This article describes key material science/technology issues to implement polycrystalline diamond scaffolds to enable processes for biological cells growth relevant for using cells grown in the laboratory for the treatment of human biological conditions. Issues investigated include 1. Synthesis/characterization of microcrystalline diamond (MCD)
nanocrystalline diamond (NCD) and transformational ultrananocrystalline diamond (UNCD) coating-based scaffolds. Diamond films were grown on silicon substrates using the hot filament chemical vapor deposition (HFCVD) technique
by which filaments heated to ∼2
300 °C induce cracking of CH
4
molecules into C atoms/CHx (x = 1
2
3) radicals
growing diamond films via chemical reaction on the substrates’ surface. MCD and NCD + films were grown flowing the H
2
/CH
4
gas mixture. NCD- and UNCD films were grown using the Ar/CH
4
gas mixture plus H
2
flux (73.5%
49%
and 9.8%)
which for high fluxes
induced increased the concentration of H-containing
trans
-polyacetylene (T-PA) molecules in UNCD films’ grai
n boundaries
impacting biological performance.2. Studies of viability and proliferation of human lung carcinoma cell line (A549) grown on surfaces of MCD
NCD
and UNCD films
using 3-[4
5-dimethylthiazol-2-yl
]
-2
5-diphenyl tetrazolium bromide (MTT) assay
which showed no significant difference in cell proliferation among the MCD
NCD
and UNCD films.
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