1. Adamson A.W., Alice A.P., and Gast P., Physical Chemistry of Surfaces, Wiley, USA, Chap. 12, 1997.
2. Khoee S. and Bager i Y., Surface Modification of MagnetiteNanoparticles via Click Reaction for Biomedical Application, Polymerization (Persian), 5, 16-26, 2014.
3. Egitto F.D., Plasma Etching and Modification of Organic Polymers, Pure Appl. Chem., 62, 1699–1708, 1990.
4. Sharifi Ferdoey F., Irani S., Zandi M., and Soleimani M., Synthesis and Surface Modification of Polycaprolactone Nanofibers for Tissue Engineering, J. Ardabil Univ. Med. Sci., 14, 217-228, 2014.
5. Chapman B.N., Glow Discharge Processes: Sputtering and Plasma Etching, Wiley, England, Chap. 3, 1980.
6. Chan C.M., Ko T.M., and Hiraoka H., Polymer Surface Modification by Plasmas and Photons, Surf. Sci. Rep., 24, 1–54, 1996.
7. Inagaki N., Plasma Surface Modification and Plasma Polymerization, CRC, USA, Chaps, 1 and 2, 1996.
8. Loh J.H., Plasma Surface Modification in Biomedical Applications, Med. Device Technol., 10, 24-30, 1999.
9. Ali A.M., Hassan M.A.A., and Abdulkarim B.I., Thermal Plasma: A Technology for Efficient Treatment of Industrial
and Wastewater Sludge, Int. Organ. Sci. Res. J. Environ. Sci., 10, 63–75, 2016.
10. Khelifa F., Ershov S., Habibi Y., Snyders R., and Dubois P., Free-Radical-Induced Grafting from Plasma Polymer Surfaces, Chem. Rev., 116, 3975–4005, 2016.
11. Nijdam S., van Veldhuizen E., Bruggeman P., and Ebert U., An Introduction to Nonequilibrium Plasmas at Atmospheric Pressure, in: Plasma Chemistry Catalysis in Gases and Liquids, 1st ed., Wiley-VCH, 1-44, 2012.
12. Shishoo R., Plasma Technologies for Textiles, Elsevier, England, Chaps. 1-3, 2007.
13. Garbassi F., Morra M., and Occhiello E., Polymer Surfaces from Physics to Technology, Wiley, England, Chaps. 6 and 7,
1994.14. Chu P.K., Chen J.Y., Wang L.P., and Huang N., Plasma- Surface Modification of Biomaterials, Mater. Sci. Eng. R, 36, 143–206, 2002.
15. Surmenev R.A., Low-temperature Argon and Ammonia Plasma Treatment of Poly(3-hydroxybutyrate) Films: Surface Topography and Chemistry Changes Affect Fibroblast Cells in Vitro, Eur. Polym. J., 112, 137–145, 2019.
16. Kalia S., Biodegradable Green Composites, John Wiley and Sons, England, Chap. 7, 2016.
17. Yang P., Moloney M.G., Zhang F., and Ji W., Surface Hydrophobic Modification of Polymers with Fluorodiazomethanes, Mater. Lett., 210, 295–297, 2018.
18. Ratner B.D., Hoffman A.S., Schoen F.J., and Lemons J.E., Biomaterials Science: An Introduction to Materials in Medicine, Elsevier Science, USA, 25, 1997.
19. Magliulo M., Pistillo B.R., Mulla M.Y., Cotrone S., Ditaranto N., Cioffi N., Favia P., and Torsi L., PE-CVD of Hydrophilic- COOH Functionalized Coatings on Electrolyte Gated Field- Effect Transistor Electronic Layers, Plasma Proc. Polym., 10, 102–109, 2013.
20. Pistillo B.R., Perrotta A., Gristina R., Ceccone G., Nardulli M., d'Agostino R., and Favia P., Water Resistant Ethylene/ Acrylic Acid Plasma-Deposited Coatings, Surf. Coat. Technol., 205, 534–536, 2011.
21. Chaudhary S., Lu H., Müller A.M., Bardeen C.J., and Ozkan M., Hierarchical Placement and Associated Optoelectronic Impact of Carbon Nanotubes in Polymer-Fullerene Solar Cells, Nano Lett., 7, 1973–1979, 2007.
22. Baierl D., Fabel B., Gabos P., Pancheri L., Lugli P., and Scarpa G., Solution-Processable Inverted Organic Photodetectors Using Oxygen Plasma Treatment, Org. Electron., 11, 1199–1206, 2010.
23. Minko S., Grafting on Solid Surfaces: ‘Grafting to’ and ‘Grafting from’ Methods, Polymer Surfaces and Interfaces, Springer, Berlin, 215–234, 2008.
24. Khelifa F., Ershov S., Habibi Y., Snyders R., and Dubois P., Use of Free Radicals on the Surface of Plasma Polymer for the Initiation of a Polymerization Reaction, ACS Appl. Mater. Interfaces, 5, 11569–11577, 2013.