TY - JOUR T1 - Değişik Boyalar Yüklenmiş p(AMPS) Hidrojellerinin Optik Özelliklerinin ve Elektriksel İletkenliklerinin İncelenmesi TT - Investigation of Optical Properties and Electrical Conductivities of Various Dyes Loaded p(AMPS) Hydrogels AU - Sel, Kıvanç AU - Demirci, Şahin AU - Şahiner, Nurettin PY - 2018 DA - May Y2 - 2018 DO - 10.28979/comufbed.403352 JF - Çanakkale Onsekiz Mart Üniversitesi Fen Bilimleri Enstitüsü Dergisi PB - Çanakkale Onsekiz Mart University WT - DergiPark SN - 2459-1580 SP - 56 EP - 73 VL - 4 IS - 1 LA - tr AB - Bu çalışmada, öncelikle poli(2-akrilamido-2-metilpropan sülfonikasit) (p(AMPS)) türü hidrojellersentezlenmiş ve sonrasında giemsa stain (GS), methylene blue (MB) ve rhodamin6G (R6G) boya maddeleri ile yüklenmiştir. Hidrojeller yapılarında suyu sevenbirçok fonksiyonel gruba sahip olabilmeleri nedeniyle özellikle tıp,biyomedikal, eczacılık, kozmetik, tarım, çevre gibi pek çok alanda uygulamaimkânına sahiptir. GS, MB, R6G boya maddeleri gen, protein, DNA gibi maddelerebağlanabilmeleri sayesinde kimya, biyoloji ve tıpta pH ayarlama ve belirleme,hastalık teşhis ve tedavisi gibi uygulamalarda ve endüstride de boya gerektirenuygulamalarda sıklıkla kullanılmaktadırlar. Floresan özellik göstermelerisayesinde çeşitli optik uygulamalarda da kullanım alanına sahiptirler.Sentezlenen ve boya yüklenen hidrojellerin optik özellikleri morötesi-görünürbölge (UV-Vis) soğurma spektrofotometre ve floresans spektrofotometre ileanaliz edilmiştir. Bu analizler sonucunda, bu boyaların optik özelliklerininboya yüklenen p(AMPS) hidrojellerde de gözlemlendiği belirlenmiştir. p(AMPS)hidrojellerin ve boya yüklenmiş hidrojellerin elektriksel özellikleri odasıcaklığında iletkenlik ölçümleri ile incelenmiştir. Elektriksel ve optiközelliklerinin analizleri boya yüklenmiş p(AMPS) hidrojellerin tıbbiuygulamalarda, LED, güneş gözesi, optik filtre gibi optoelektronikuygulamalarda kullanılma potansiyeline sahip olduğunu göstermiştir. KW - p(AMPS) KW - hidrojel KW - morötesi- görünür bölge soğurma spektroskopisi KW - floresans spektrometresi KW - elektriksel iletkenlik N2 - In this study,poly(2-acrylamido-2-methyl-propanesulfonic acid) (p(AMPS)) type hydrogels weresynthesized and afterwards giemsa stain (GS), methylene blue (MB) and rhodamin6G (R6G) dyes were loaded to the hydrogels. Because of the reason that thesehydrogels possess hydrophilic groups such as–OH, -NH2, -SO3H, -PO3H, -COOH in theirstructures; they have various applications in many fields such as medical,biomedical, pharmacy, cosmetic, agriculture, environment. GS, MB, R6G dyes,that could be bonded to gene, protein, DNA, often used in chemistry,biology and medical applications such as diagnosis and treatment, pHdetermination and in industrial applications that requires the use of dyes. Asa result of their fluorescence properties, they could be used in variousoptical applications. The optical properties of the synthesized and dye loadedhydrogels were analyzed by ultraviolet-visible (UV-Vis) absorption spectrophotometerand fluorescence spectrophotometry. As a result of these analysis, it isdetermined that the optical properties of the dyes were also observed in thedye loaded p(AMPS) hydrogels. Additionally, the electrical properties of thep(AMPS) hydrogels and dye loaded hydrogels were investigated by roomtemperature conductivity measurements. The analysis of the electrical andoptical properties showed that dye loaded p(AMPS) hydrogels have potential tobe used in medical applications and optical applications such as LED, solarcells, optical filters. CR - Biswal D., Chirra H.D. Hilt J.Z., 2008. Fabrication of hydrogel microstructures using polymerization controlled by microcontact printing (PC mu CP), Biomed. Microdevices 10: 213-219. CR - Dawson R., Cooper A.I., Adams D.J., 2012. Nanoporous organic polymer networks, Prog. Polym. Sci. 37: 530-563. CR - Jenkins J.S., Flickinger M.C., Velev O.D., 2012. Deposition of composite coatings from particle-particle and particle-yeast blends by convective-sedimentation assembly,J. Colloid. Interf. Sci. 380: 192-200. CR - Lozinsky V.I., Galaev I.Y., Plieva F.M., Savina I.N., Jungvid H., Mattiasson B., 2003. Polymeric cryogels as promising materials of biotechnological interest, Trends. Biotechnol. 21: 445-451. CR - Nayak S., Lyon A.A., 2005. Soft nanotechnology with soft nanoparticles, Angew. Chem. Int. Ed. 44: 7686-7708. CR - Oh J.K., Seigwart D.J., Lee H.I., Sherwood G., Peteanu L., Hollinger J.O., Kataoka K., Matyjaszewski K., 2007. Biodegradable nanogels prepared by atom transfer radical polymerization as potential drug delivery carriers: synthesis, biodegradation, in vitro release, and bioconjugation, J. Am. Chem. Soc. 129: 5939-5945. CR - Okay O., 2000. Macroporous copolymer networks, Prog. Polym. Sci. 25: 711-719. CR - Orakdogen N., Karacan P., Okay O., 2011. Macroporous, responsive DNA cryogel beads, React. Funct. Polym. 71: 782-790. CR - Pankove J.I., 1976. Optical Processes in Semiconductors, Prentice-Hall Inc. CR - Sahiner N., 2013a. Soft and flexible hydrogel templates of different sizes and various functionalities for metal nanoparticle preparation and theri use in catalysis, Prog. Polym. Sci. 38: 1329-1356. CR - Sahiner N., 2013b. Preparation of poly(ethylene imine) particles for versatile applications, Colloid. Surf. A., 433: 212-218. CR - Sahiner N., Ozay O., Aktas N., 2011. Aromatic organic contaminant removal from an aqueous environment by p(4-VP)-based materials, Chemosphere 85: 832-838. CR - Silan C., Akcali A., Otkun M.T., Ozbey N., Butun S., Ozay O., Sahiner N., 2012: Novel hydrogel particles and their IPN films as drug delivery systems with antibacterial properties, Colloids Suf. B. 89: 248-253. CR - Tan Z.Q., Ohara S., Naito M., Abe H., 2011. Supramolecular hydrogel of bile stalts triggered by single-walledcarbon nanotubes, Adv. Mater. 23: 4053-4057. CR - Varvarenko S., Voronov A., Samarky V., Tarnavchyk I., Nosova N., Kohut A., Voronov S., 2010. Covalent grafting of polyacrylamide-based hydrogels to a polypropylene surface activated with functional polyperoxide, React. Funct. Polym. 70: 647-655. CR - Yoon J.A., Kowalevski T., Matyjaszewski K., 2011. Comparison of thermoresponsive deswelling kinetics of poly(oligo (ethyelene oxide) methacrylate)-based thermoresponsive hydrogels prepared by “Graft-from” ATRP, Macromolecules 44: 2261-2268. CR - Zhu J.M., 2010. Bioactive modification of poly(ethylene glycol) hydrogels fortissue engineering, Biomaterials 3: 4639-4656. UR - https://doi.org/10.28979/comufbed.403352 L1 - https://dergipark.org.tr/en/download/article-file/473645 ER -