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Polimerik Süngerlerin Post Modifikasyonunda LbL Tekniğinin Yeri Hakkında Bir Derleme

Year 2022, Issue: 42, 168 - 175, 31.10.2022
https://doi.org/10.31590/ejosat.1182982

Abstract

Çok yönlü ve çok katmanlı tabaka tabaka (LbL) kaplamalar uzun yıllardan beri araştırmacıların ilgisini çeken bir konudur. Bu durumu ortaya çıkaran temel sebepler, yaklaşımın çok yönlülüğü ve istikrarlı bir şekilde artmaya devam eden geniş bir uygulama yelpazesine sahip olmasıdır. Kontrollü yüzey modifikasyonu ileri malzemeler geliştirmenin de anahtarı olduğundan, nano ölçekte yapılandırılmış malzemelerden LbL esaslı olanların hazırlanması ve uygulama alanlarının araştırılması giderek daha popüler hale gelmektedir. Bu çalışmalarda ele alınan uygulama alanları arasında -çevre kirliliğinin önlenmesi/iyileştirilmesi, ekolojik denge ve çevresel kaynakların korunması, ekonomik sürdürülebilirliğin gözetilmesi vb. de öne çıkarılarak- atık arıtımı, membran uygulamaları, süperhidrofobik kaplamalar, ultraviyole koruyucu kaplamalar, elektroaktif kaplamalar, hücre uygulamaları vb. bulunmaktadır. Süperhidrofobiklik ve süperhidrofobik özelliğe sahip malzemeler, kendi kendini temizleme özellikleri nedeniyle hem akademide hem de endüstride büyük ilgi görmektedir. Nanoteknolojinin ortaya çıkmasıyla birlikte, süperhidrofobikliğe ulaşmak için yüzey mimarisinin ve yüzey kimyasının kontrol edilmesini sağlamak mümkündür. Süperhidrofobik yüzeylerin benzersizliği sayesinde bu konudaki ilerlemelerin gelecekte onlarca yıl sürmesi beklenmektedir. Bu derleme çalışması son yıllarda kontrolü daha da zor hale gelen çevresel problemlerden birisi olan sulardaki yağsı kirliliklerin/organik atıkların giderimine yönelik olarak önerilen süngerik sorbentlere odaklanmaktadır. Bu bağlamda, süngerik sorbentlere LbL tekniği ile kazandırılmış çeşitli özellikler yanında temelde hidrofobik/süperhidrofobik karakter kazandırılmış polimerik süngerlere ilişkin avantaj/dezavantajlar irdelenerek yapılan çalışmalar gözden geçirilmiştir.

Supporting Institution

Hitit Üniversitesi Bilimsel Araştırma Projeleri Birimi

Project Number

MUH19001.20.002

Thanks

Bu çalışma, Hitit Üniversitesi Bilimsel Araştırma Projeleri Birimi tarafından desteklenmiştir. Proje No: MUH19001.20.002

References

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  • De Almeida, J. C., de Barros, A., Odone Mazali, I., & Ferreira, M. (2020). Influence of gold nanostructures incorporated into sodium montmorillonite clay based on LbL films for detection of metal traces ions. Applied Surface Science, 507(December 2019), 144972(1-9). https://doi.org/10.1016/j.apsusc.2019.144972
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A Review On The Role Of LbL Technique In Post Modification Of Polymeric Sponges

Year 2022, Issue: 42, 168 - 175, 31.10.2022
https://doi.org/10.31590/ejosat.1182982

Abstract

Multipurpose and multilayered layer-by-layer (LbL) coatings have been a topic of interest to researchers for many years. The main reasons for this situation are the versatility of the approach and the wide range of applications that continue to increase steadily. Since the controlled surface modification is also the key to developing advanced materials, the preparation of nano-structured materials based on LbL and the investigation of their application areas are becoming more and more popular. Among the application areas covered in these studies -preventing/improving environmental pollution, protecting ecological balance and environmental resources, observing economic sustainability, etc. also highlighting- waste treatment, membrane applications, superhydrophobic coatings, ultraviolet protective coatings, electroactive coatings, cell applications, etc. exists. Superhydrophobicity and materials with superhydrophobic property are of great interest in both academia and industry due to their self-cleaning properties. With the progress of nanotechnology, it is possible to control surface architecture and surface chemistry to achieve superhydrophobicity. Thanks to the uniqueness of superhydrophobic surfaces, advancements in this area are expected to continue for decades. This review study focuses on sponge sorbents recommended for the removal of oily pollutants/organic wastes in water, which is one of the environmental problems that have become more difficult to control in recent years. In this context, the advantages/disadvantages of polymeric sponges with essentially hydrophobic/superhydrophobic character, as well as the various properties that have been imparted to sponge sorbents with the LbL technique, have been reviewed.

Project Number

MUH19001.20.002

References

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  • Barroso-Solares, S., Pinto, J., Fragouli, D., & Athanassiou, A. (2018). Facile oil removal from water-in-oil stable emulsions using PU foams. Materials, 11(12), 1–12. https://doi.org/10.3390/ma11122382
  • Crespilho, F. N., Zucolotto, V., Oliveira, O. N., & Nart, F. C. (2006). Electrochemistry of layer-by-layer films: A review. International Journal of Electrochemical Science, 1(5), 194–214.
  • Darmanin, T., & Guittard, F. (2015). Superhydrophobic and superoleophobic properties in nature. Materials Today, 18(5), 273–285. https://doi.org/10.1016/j.mattod.2015.01.001
  • De Almeida, J. C., de Barros, A., Odone Mazali, I., & Ferreira, M. (2020). Influence of gold nanostructures incorporated into sodium montmorillonite clay based on LbL films for detection of metal traces ions. Applied Surface Science, 507(December 2019), 144972(1-9). https://doi.org/10.1016/j.apsusc.2019.144972
  • De Saint-Aubin, C., Hemmerlé, J., Boulmedais, F., Vallat, M. F., Nardin, M., & Schaaf, P. (2012). New 2-in-1 polyelectrolyte step-by-step film buildup without solution alternation: From PEDOT-PSS to polyelectrolyte complexes. Langmuir, 28(23), 8681–8691. https://doi.org/10.1021/la301254a
  • Deniz, M. (2018). Elektroaktif polimerlerin sentezi, karakterizasyonu ve uygulama alanlarının araştırılması. İstanbul Üniversitesi.
  • Deniz, M., & Deligöz, H. (2019). Flexible self-assembled polyelectrolyte thin films based on conjugated polymer: Quartz cristal microbalance dissipation (QCM-D) and cyclic voltammetry analysis. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 563, 206–216. https://doi.org/10.1016/J.COLSURFA.2018.12.014
  • Diep, J., Tek, A., Thompson, L., Frommer, J., Wang, R., Piunova, V., Sly, J., & La, Y. H. (2016). Layer-by-layer assembled core–shell star block copolymers for fouling resistant water purification membranes. Polymer, 103, 468–477. https://doi.org/10.1016/j.polymer.2015.11.048
  • Ergün, A., Tümer, E. H., Cengiz, H. Y., & Deligöz, H. (2020). Monitoring the Salt Stability of Layer-by-Layer Self-Assembled Films From Polyelectrolyte Blends by Quartz Crystal Microbalance-Dissipation and Their Ion Separation Performances. Polymer Engineering and Science, 60(5), 1006–1018. https://doi.org/10.1002/pen.25356
  • Feng, Y., Wang, Y., Wang, Y., & Yao, J. (2017). Furfuryl alcohol modified melamine sponge for highly efficient oil spill clean-up and recovery. Journal of Materials Chemistry A, 5(41), 21893–21897. https://doi.org/10.1039/c7ta06966a
  • Fenner, B. R., Zimmermann, M. V. G., da Silva, M. P., & Zattera, A. J. (2018). Comparative analysis among coating methods of flexible polyurethane foams with graphene oxide. Journal of Molecular Liquids, 271, 74–79. https://doi.org/10.1016/j.molliq.2018.08.113
  • Ferreira, M., De Barros, A., Ferreira, M., & Constantino, C. J. L. (2014). Nanocomposites based on LbL films of polyaniline and sodium montmorillonite clay. Synthetic Metals, 197, 119–125. https://doi.org/10.1016/j.synthmet.2014.09.001
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There are 58 citations in total.

Details

Primary Language Turkish
Subjects Engineering
Journal Section Articles
Authors

Merve Okutan 0000-0002-3110-0675

Project Number MUH19001.20.002
Early Pub Date October 25, 2022
Publication Date October 31, 2022
Published in Issue Year 2022 Issue: 42

Cite

APA Okutan, M. (2022). Polimerik Süngerlerin Post Modifikasyonunda LbL Tekniğinin Yeri Hakkında Bir Derleme. Avrupa Bilim Ve Teknoloji Dergisi(42), 168-175. https://doi.org/10.31590/ejosat.1182982