UJI AKTIFITAS TABIR SURYA NANO-TITANIUM OKSIDA UNTUK MENDUKUNG FORMULA KOSMETIK ANTIAGING KHUSUS MENGHAMBAT PENUAAN AKIBAT SINAR MATAHARI

Authors

  • Titik Taufikurohmah Universitas Negeri Surabaya

DOI:

https://doi.org/10.26740/icaj.v2n2.p19-24

Keywords:

anti-aging, photo-aging, cosmetics, sunscreen, nanomaterial Titanium Oxide.

Abstract

Aging one of problems in social healthy especially in cosmetics community. UV-protection material was important because photo-aging give dominant effect at aging process. The development anti-aging material need exploration sunscreen material too. Utilization of Titanium Oxide in cosmetic formulation have been done. In this research Titanium Oxide was develop to form Nano-Titanium Oxide. It was important to get data that Nano-Titanium Oxide still have sunscreen activity. Spot, wrinkle and decrease of skin moisture were fast condition of aging if face skin get so many sun light especially UV-light with strong energy. In this research used nanomaterial of Titanium Oxide because nanomaterial give so many advantages. The method that used was measure UV absorption this material with UV-visible spectrophotometer instrument. The result of nanomaterial Titanium Oxide that still had sunscreen activity than support anti-aging in cosmetics formulation especially inhibit photo-aging. The impact of this research was the potential using of nanomaterial Titanium Oxide increase as anti-aging material that low level of cost in the future.

References

[1] Anpo, M. (2004). Preparation, characterization, and reactivities of highly functional titanium oxide-based photocatalysts able to operate under UV-visible light irradiation: Approaches in realizing high efficiency in the use of fisible light. Bull Chem Soc Jpn:77, 1427-1442.doi:10.1246/bcsj.77.1427.
[2] Arnall, A. (2003). Future technologies, today's chices. London: Greenpeace Enviromental Trust.
[3] Barker, P., & Branch, A. (2008). The interaction of modern sunscreen formulations with surface coatings. Prog Org Coat (62), 313-320.doi:10.1016/j.porgcoat.2008.01.008.
[4] Bermudez, E., Mangun, J., Wong, B., Asgharian, B., Hext, P., Warheit, D., & Everitt, J. (2004). Pulmonary responses of mice, rats, and hamsters to subchronic inhalation of ultrafine titanium dioxide particles. Toxicol Sci:77, 347-357.doi:10.1093/toxsci/kfh019[pubmed].
[5] Berube, D. (2008). Rhetorical gamesmanship in the nano debates over sunscreen and nanoparticles. Journal Nanopart Res: 10, 23-37. doi: 10.1007/s11051-008-9362-7.

[6] Chen, X., & Mao, S. (2007). Titanium Dioxide Nanomaterials: Synthesis, properties, modifications, and applications. Chem Rev:107, 2891-2959. doi: 10.1021/cr0500535[pubmed].
[7] Breggin, L., Falkner, R., Jarpers, N., Pendergrass, J., & Porter, R. (2009). Securing the promise of nanotechnologies. London: Chatham House(the Royal Institute of International Affairs).
[8] Haddad, Nick M., Bowne, David R., Cunningham, Alan., Danielson, Brent J., Levey, Douglas J., Sargent, Sarah., Spira,Tim. (2003). Corridor Use by Diverse Taxa. Ecology, 84(3),609-615.
[9] Johannes F, J., Ibo, V. d., & Patricia, O. (2010). Sunscreen with Titanium Dioxide (TiO2) Nano-Particles: A Societal Experiment. Nanoethics, 4 (2) Springer , 103-113: doi: 10.1007/s11569-010-0090-y.
[10] Pedro, A. R., Belen, M., Hele, M. B., Silvia, L., Kristin, A., Marianne, R. S., . . . Gerhard, R. (2017). Titanium dioxide nanoparticles exacerbate DSS-induced colitis: role of the NLRP3 inflammasome. GUT 66(7), 12-16 doi: 10.1136/gutjnl-2015-310297.
[11] Bin, S., Jia, L., Xiaoli, F., Limin, W., & Longguan, S. (2015). A review on potential neurotoxicity of Titanium Dioxide Nanoparticles. Nanoscale Res Left Volume 10, 342 doi: 10.1186/s11671-015-1042-9.
[12] Weir, A., Westerhoff, P., Fabricius, L., Hristovski, K., & Von, G. N. (2012). Titanium Dioxide Nanoparticles in food and personal care products. Environ Sci Technol Vol 46(4), 2242-2250 doi: 10.1021/es204168d. [PubMed].
[13] Logan, N., Sherif, A., Cross, A., Collins, S., Trynor, A., & Bozec, L. (2015). TiO2-coated CoCrMo improving the osteogenic differentiation and adhesion of mesenchymal stem cells in vitro. J Biomed Mater Res Part A 103(3), 1208-1217 doi: 10.1002/jbmr35264.
[14] Wu, Q., Li, J., Zhang, W., Qian, H., She, W., & Pan, H. (2014). Antibacterial property, angiogenic and osteogenic activity of Cu-incorporated TiO2 coating. J Mat Chem B 2(39), 6738-6748 doi: 10.1039/C4TB00923A
[15] Catauro, M., Bollino, F., Papale, F., Marciano, S., & Pacifico, S. (2014). TiO2/PCL hybrid materials synthesized via sol-gel technique for biomedical applications. Mater Sci Eng C 47, 135-141 doi: 10.1016/j.msec.2014.11.040[PubMed].
[16] Montazer, M., & Pakdel, E. (2011). Functionality of Nano Titanium dioxide on textiles with future aspects: Focus on wool. J Photochem Photobiol C-Photochem Rev. 12(4), 293-303: doi: 10.1016/j-jphotochemrev.2011.08.005.

Downloads

Published

2019-03-19

Issue

Section

Articles
Abstract views: 953 , PDF Downloads: 5513