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Perspektywy rozwoju technik hydrofobizacji papieru

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Warianty tytułu
EN
Prospects for the development of paper hydrophobization techniques
Języki publikacji
PL
Abstrakty
PL
Materiały celulozowe o powierzchniowej hydrofobowości i właściwościach barierowych dla wody stanowią coraz większy odsetek rynku papierniczego, co wynika w dużym stopniu ze zmian struktury handlu detalicznego oraz środowiskowych regulacji prawnych. Niniejsza praca omawia stan legislacji europejskiej w tym zakresie oraz dokonuje przeglądu współczesnej literatury naukowej, opisującej nowe zastosowania tradycyjnych metod, nowych obiecujących technologii do zastosowań masowych, a także propozycji nadawania właściwości superhydrofobowych i kombinacji hydrofobowych z innymi właściwościami. Potencjalnie może to znaleźć zastosowania niszowe, takie jak: specjalne metody zabezpieczania banknotów, medyczne testy diagnostyczne i elektronika mikroprzepływowa.
EN
Cellulose materials with surface hydrophobicity and water barrier properties constitute an increasing percentage of the paper market. It is largely due to changes in the structure of retail trade and environmental legal regulations. This paper discusses the state of European legislation in this area and contemporary literature describing new applications of traditional methods, new promising technologies for mass applications as well as attempts of imparting superhydrophobic properties and combinations of hydrophobicity with other properties. These could potentially find niche applications such as special security methods for banknotes, medical diagnostic tests or microfluidic electronics.
Rocznik
Strony
53--61
Opis fizyczny
Bibliogr. 40 poz.
Twórcy
  • Centrum Papiernictwa i Poligrafii, Politechnika Łódzka, ul. Wólczańska 223, 90-924 Łódź
Bibliografia
  • [1] Awang N.A., W.N.W. Salleh, H. Hasbullah, N. Yusof, F. Aziz, J. Jaafar, A.F. Ismail. 2017. “Graft Copolymerization of Acrylonitrile onto Recycled Newspapers Cellulose Pulp.” In, 020244. https://doi. org/10.1063/1.5002438.
  • [2] Balu Balamurali, Adam D. Berry, Dennis W. Hess, Victor Breedveld. 2009. “Patterning of Superhydrophobic Paper to Control the Mobility of Micro-Liter Drops for Two-Dimensional Lab-on-Paper Applications.” Lab on a Chip 9 (21): 3066. https://doi.org/10.1039/ b909868b.
  • [3] Dankovich Theresa A., Derek G. Gray. 2011. “Contact Angle Measurements on Smooth Nanocrystalline Cellulose (I) Thin Films.” Journal of Adhesion Science and Technology 25 (6-7): 699-708. https://doi. org/10.1163/016942410X525885.
  • [4] Drzewińska Ewa, Anna Stanisławska. 2011. “Liner and Fluting Absorptiveness Properties: Comparison Between Cobb Method and PDA.” Przegląd Papierniczy 67 (12): 712-26.
  • [5] European Commission. 2019. “Sustainable Industry.” 2019. https://ec.europa.eu/commission/presscorner/detail/en/fs_19_6724.
  • [6] Fratzl Mario, Boyce S. Chang, Stephanie Oyola-Reynoso, Guillaume Blaire, Sarah Delshadi, Thibaut Devillers, Thomas Ward, Nora M. Dempsey, Jean-Francis Bloch, Martin M. Thuo. 2018. “Magnetic Two-Way Valves for Paper-Based Capillary-Driven Microfluidic Devices.” ACS Omega 3 (2): 2049-57. https://doi.org/10.1021/ acsomega.7b01839.
  • [7] Ganicz Tomasz, Konrad Olejnik, Krystyna Rózga-Wijas, Jan Kurjata. 2020. “New Method of Paper Hydrophobization Based on Starch-Cellulose-Siloxane Interactions.” BioResources 15 (2): 4124-42. https://bioresources.cnr.ncsu.edu/resources/new-method-of-paper-hydrophobization-based-on-starch-cellulose-siloxane-interactions/.
  • [8] Hu Haibo, Hao Zhong, Changle Chen, Qianwang Chen. 2014. “Magnetically Responsive Photonic Watermarks on Banknotes.” Journal of Materials Chemistry C 2 (19): 3695. https://doi.org/10.1039/ c3tc32228a.
  • [9] Hubbe Martin A., Douglas J. Gardner, Wei Shen. 2015. “Contact Angles and Wettability of Cellulosic Surfaces: A Review of Proposed Mechanisms and Test Strategies.” BioResources 10 (4). https://doi.org/10.15376/biores.10.4.Hubbe_Gardner_Shen.
  • [10] Hubbe Martin A. 2007. “Paper’s Resitance to Wetting – a Review of Internal Sizing Chemicals and Their Effects.” BioResources 2 (1): 106-45. https://doi.org/10.15376/biores.2.1.106-145.
  • [11] Kamenetz Anya. 2010. “The Starbucks Cup Dilemma.” Fast Company. Accessed June 18, 2020. https://www.fastcompany.com/1693703/ starbucks-cup-dilemma.
  • [12] Komisja Europejska. 2011. “Rozporządzenie Komisji UE w sprawie materiałów i wyrobów z tworzyw sztucznych przeznaczonych do kontaktu z żywnością.” 2011-01-14. https://eur-lex.europa.eu/legal-content/PL/TXT/HTML/?uri=CELEX:32011R0010.
  • [13] Komisja Europejska. 2018. “Odpady z tworzyw sztucznych: europejska strategia na rzecz ochrony naszej planety, obrony naszych obywateli i wzmocnienia pozycji naszego przemysłu.” https://ec.europa.eu/commission/presscorner/detail/pl/IP_18_5.
  • [14] Kumar Sunil, Vipul S. Chauhan, Swapan K. Chakrabarti. 2016. “Separation and Analysis Techniques for Bound and Unbound Alkyl Ketene Dimer (AKD) in Paper: A Review.” Arabian Journal of Chemistry 9 (November): S1636-42. https://doi.org/10.1016/j. arabjc.2012.04.019.
  • [15] Kurjata Jan, Krystyna Rozga-Wijas, Wlodzimierz Stanczyk. 2013. “Investigation of Hydrolysis and Condensation of Methyltriethoxysilane in Aqueous Systems.” European Journal of Chemistry 4 (4): 343-49. https://doi.org/10.5155/eurjchem.4.4.343-349.835.
  • [16] Lindström Tom, Per Tomas Larrson. 2008. “Alkyl Ketene Dimer (AKD) Sizing - a Review.” Nordic Pulp and Paper Research Journal 23 (02): 202-9. https://doi.org/10.3183/NPPRJ-2008-23-02-p202-209.
  • [17] Lo Roger. 2017. “Microfluidics Technology: Future Prospects for Molecular Diagnostics.” Advanced Health Care Technologies Volume 3 (February): 3-17. https://doi.org/10.2147/AHCT.S94024.
  • [18] Mohammadi Amirabad Leila, Mehdi Jonoobi, Narges Sharif Mousavi, Kristiina Oksman, Alireza Kaboorani, Hossein Yousefi. 2018. “Improved Antifungal Activity and Stability of Chitosan Nanofibers Using Cellulose Nanocrystal on Banknote Papers.” Carbohydrate Polymers 189 (June): 229-37. https://doi.org/10.1016/j.carbpol.2018.02.041.
  • [19] Musikavanhu Brian, Zhijun Hu, Ratidzo Lisah Dzapata, Yinchao Xu, Peter Christie, Daliang Guo, Jing Li. 2019. “Facile Method for the Preparation of Superhydrophobic Cellulosic Paper.” Applied Surface Science 496 (December): 143648. https://doi.org/10.1016/j. apsusc.2019.143648.
  • [20] Nechita Petronela, Mirela Roman (Iana-Roman). 2020. “Review on Polysaccharides Used in Coatings for Food Packaging Papers.” Coatings 10 (6): 566. https://doi.org/10.3390/coatings10060566.
  • [21] Ogihara Hitoshi, Jing Xie, Jun Okagaki, and Tetsuo Saji. 2012. “Simple Method for Preparing Superhydrophobic Paper: Spray-Deposited Hydrophobic Silica Nanoparticle Coatings Exhibit High Water-Repellency and Transparency.” Langmuir 28 (10): 4605-8. https://doi. org/10.1021/la204492q.
  • [22] Oyola-Reynoso Stephanie, Zhengjia Wang, Jiahao Chen, Simge Çınar, Boyce Chang, Martin Thuo. 2015. “Revisiting the Challenges in Fabricating Uniform Coatings with Polyfunctional Molecules on High Surface Energy Materials.” Coatings 5 (4): 1002-18. https://doi.org/10.3390/coatings5041002.
  • [23] Parlament Europejski. 2019. “Dyrektywa UE w sprawie zmniejszenia wpływu niektórych produktów z tworzyw sztucznych na środowisko.” 2019. https://eur-lex.europa.eu/legal-content/PL/TXT/PDF/?uri=CELEX:32019L0904&from=PL.
  • [24] PolyPrint. 2020. “Water Vapor Transmission Rate.” PolyPrint. 2020. https://www.polyprint.com/understanding-film-properties/ flexographic-wvtr/.
  • [25] Rastogi Vibhore, Pieter Samyn. 2015. “Bio-Based Coatings for Paper Applications.” Coatings 5 (4): 887-930. https://doi.org/10.3390/ coatings5040887.
  • [26] Ross M., F. König, S. Stadtmüller, B. Weyershause. 2008. “Evolution of Silicone Based Water Repellents for Modern Building Protection.” In 5th International Conference on Water Repellent Treatment of Building Materials, 3-16. Aedificatio Publishers. http://www.hydrophobe.org/pdf/bruxelles/V_01.pdf.
  • [27] Rutter Taylor, Brenda Hutton-Prager. 2018. “Investigation of Hydrophobic Coatings on Cellulose-Fiber Substrates with in-Situ Polymerization of Silane/Siloxane Mixtures.” International Journal of Adhesion and Adhesives 86 (November): 13-21. https://doi.org/10.1016/j.ijadhadh.2018.07.008.
  • [28] Samyn Pieter. 2013. “Wetting and Hydrophobic Modification of Cellulose Surfaces for Paper Applications.” Journal of Materials Science 48 (19): 6455-98. https://doi.org/10.1007/s10853-013-7519-y.
  • [29] Shen Zhenghui, Soojin Kwon, Kyudeok Oh, Araz Rajabi Abhari, Hak Lae Lee. 2019. “Facile Fabrication of Hydrophobic Cellulosic Paper with Good Barrier Properties via PVA/AKD Dispersion Coating.” Nordic Pulp & Paper Research Journal 34 (4): 516-24. https://doi. org/10.1515/npprj-2019-0040.
  • [30] Skowroński Jerzy W., Marek Kryczka, Joel Pawlak. 2010. “Critical Review of Water Penetration Tests. Part 2. Novel Methodology for Testing Liquid Penetration into Paper.” Przegląd Papierniczy 66 (7): 393-398.
  • [31] Song Junglong, Orlando J. Rojas. 2013. “Approaching Super-Hydrophobicity from Cellulosic Materials: A Review.” Nordic Pulp and Paper Research Journal 28 (02): 216-38. https://doi.org/10.3183/ NPPRJ-2013-28-02-p216-238.
  • [32] Triantafillopoulos, Nick, and Alexander A. Koukoulas. 2020. “The Future of Single-Use Paper Coffee Cups: Current Progress and Outlook.” BioResources 15 (3): 7260-87. https://doi.org/10.15376/biores.15.3.Triantafillopoulos.
  • [33] UN Envrioment Programme. 2018. “Legal Limits on Single-Use Plastics and Microplastics.” 2018. https://www.unenvironment. org/resources/report/legal-limits-single-use-plastics-and-microplastics.
  • [34] Vikele Laura, Marianna Laka, Inese Sable, Linda Rozenberga, Uldis Grinfelds, Juris Zoldners, Raphael Passas, and Evelyne Mauret. 2017. “Effect Of Chitosan On Properties Of Paper For Packaging.” Cellulose Chemistry and Technology 51 (1-2): 67-73. https://www.cellulosechemtechnol.ro/pdf/CCT1-2(2017)/p.67-73.pdf.
  • [35] Wandelt Paweł. 2013. „Innowacyjne rozwiązania opakowaniowe firmy MONDI na targach FachPack’13 w Norymberdze.” Przegląd Papierniczy 69 (11): 585-90.
  • [36] Wang Fei, Hiroo Tanaka, Takuya Kitaoka, Martin A. Hubbe. 2000. “Distribution Characteristics of Rosin Size and Their Effect on the Internal Sizing of Paper.” Nordic Pulp & Paper Research Journal 15 (5): 416-21. https://doi.org/10.3183/npprj-2000-15-05-p416-421.
  • [37] Wang Wei, Chengrong Qin, Wei Li, Jiayan Ge, Chengqi Feng. 2020. “Improving Moisture Barrier Properties of Paper Sheets by Cellulose Stearoyl Ester-Based Coatings.” Carbohydrate Polymers 235 (May): 115924. https://doi.org/10.1016/j.carbpol.2020.115924.
  • [38] West Jonathan, Marco Becker, Sven Tombrink, Andreas Manz. 2008. “Micro Total Analysis Systems: Latest Achievements.” Analytical Chemistry 80 (12): 4403-19. https://doi.org/10.1021/ac800680j.
  • [39] Zhang Ming, Chengyu Wang, Shuliang Wang, Yunling Shi, Jian Li. 2012. “Fabrication of Coral-like Superhydrophobic Coating on Filter Paper for Water–Oil Separation.” Applied Surface Science 261 (November): 764-69. https://doi.org/10.1016/j.apsusc.2012.08.097.
  • [40] Zhang Wewei, Peng Lu, Liying Qian, and Huining Xiao. 2014. “Fabrication of Superhydrophobic Paper Surface via Wax Mixture Coating.” Chemical Engineering Journal 250 (August): 431-36. https://doi. org/10.1016/j.cej.2014.04.050.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-7cabf3de-889b-47b7-9ad3-4fdf5e71b9fa
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