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Journal articles on the topic 'Waterborne polyurethane/silica hybrids'

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1

Sardon, Haritz, Lourdes Irusta, Robert Aguirresarobe, and María José Fernandez-Berridi. "Polymer/silica nanohybrids by means of tetraethoxysilane sol-gel condensation onto waterborne polyurethane particles." Progress in Organic Coatings 77, no. 9 (2014): 1436–42. https://doi.org/10.1016/j.porgcoat.2014.04.032.

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Stable waterborne polyurethane/silica hybrid dispersions were obtained by sol–gel reaction of tetraethoxysilane added to previously synthesized waterborne polyurethane nanodispersions. Two series of polyurethane/silica nanostructures with different silica contents were synthesized using pure polyurethane particles and polyurethane particles previously functionalized with (3-aminopropyl)triethoxysilane (APTES) as colloidal templates. The optimum experimental conditions for tetraethoxysilane sol–gel reaction (T = 75 °C and semi batch polymerization conditions) leading to the form
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2

Yang, Chien-Hsin, Feng-Jiin Liu, Yun-Peng Liu, and Wei-Tung Liao. "Hybrids of colloidal silica and waterborne polyurethane." Journal of Colloid and Interface Science 302, no. 1 (2006): 123–32. http://dx.doi.org/10.1016/j.jcis.2006.06.001.

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3

Sardon, H., A. González, M. J. Fernández-Berridi, and L. Irusta. "Oxygen Barrier Properties of Waterborne Polyurethane/Silica Hybrids." Journal of Macromolecular Science, Part B 54, no. 6 (2015): 711–21. http://dx.doi.org/10.1080/00222348.2015.1035613.

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4

Fan, Wuhou, Weining Du, Zhengjun Li, Nianhua Dan, and Jin Huang. "Abrasion resistance of waterborne polyurethane films incorporated with PU/silica hybrids." Progress in Organic Coatings 86 (September 2015): 125–33. http://dx.doi.org/10.1016/j.porgcoat.2015.04.022.

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5

Lee, Sang Nam, Dae Sung Kim, Ki Bong Lee, et al. "Enhancement of Surface Properties on Films of Waterborne-Polyurethane Hybridized by Highly Dispersed and Aluminate-Modified Silica Sol." Advanced Materials Research 1105 (May 2015): 355–60. http://dx.doi.org/10.4028/www.scientific.net/amr.1105.355.

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The reinforced clear coat on glass substrate was prepared by coating waterborne-polyurethane hybridized by silica sol or aluminate modified silica sol. To enhance the physicochemical property of the film, aluminate modified silica particle was prepared by the interaction between sodium aluminate and cation-exchanged silica. The hybrid thin films were developed in the range of the modified silica content varying from 0 to 20 wt%. The film, containing the modified silica content of 16 wt%, exhibits markedly improved properties as compared to the neat polyurethane and the polyurethane containing
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6

Jeon, Ho Tak, Moon Kyoung Jang, Byung Kyu Kim, and Kwang Ho Kim. "Synthesis and characterizations of waterborne polyurethane–silica hybrids using sol–gel process." Colloids and Surfaces A: Physicochemical and Engineering Aspects 302, no. 1-3 (2007): 559–67. http://dx.doi.org/10.1016/j.colsurfa.2007.03.043.

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7

Jena, Kishore K., Sambita Sahoo, Ramanuj Narayan, Tejraj M. Aminabhavi, and KVSN Raju. "Novel hyperbranched waterborne polyurethane-urea/silica hybrid coatings and their characterizations." Polymer International 60, no. 10 (2011): 1504–13. http://dx.doi.org/10.1002/pi.3109.

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8

Pagliolico, Simonetta Lucia, Elena Daniela Ozzello, Guido Sassi, and Roberta Bongiovanni. "Characterization of a hybrid nano-silica waterborne polyurethane coating for clay bricks." Journal of Coatings Technology and Research 13, no. 2 (2016): 267–76. http://dx.doi.org/10.1007/s11998-015-9758-0.

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9

Lin, W. C., C. H. Yang, T. L. Wang, Y. T. Shieh, and W. J. Chen. "Hybrid thin films derived from UV-curable acrylate-modified waterborne polyurethane and monodispersed colloidal silica." Express Polymer Letters 6, no. 1 (2012): 2–13. http://dx.doi.org/10.3144/expresspolymlett.2012.2.

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10

Chen, Qi, Na Wang, Dhandapani Kuzhandaivel, Yingxian Chen, Lixin Wu, and Longhui Zheng. "Microfluidization Preparation of Hybrid Graphene for Enhanced Wear Resistance of Coatings." Polymers 17, no. 6 (2025): 824. https://doi.org/10.3390/polym17060824.

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Wear resistance is the key factor that affects the long-term use of leather. Graphene has excellent wear resistance properties, but ensuring the effective dispersion of graphene in resin is crucial for determining the performance of the material. In this work, silica modified with polydopamine (SiO2@PDA) was used as an exfoliation agent. Using the microfluidization process and water as the medium, silica-graphene hybrid nanoparticles (SiO2@PDA-G) were prepared from expanded graphite. These nanoparticles were further compounded with waterborne polyurethane (WPU), and a superfine fiber-based fab
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11

Wu, Zhaofeng, Hua Wang, Xingyou Tian, et al. "Surface and mechanical properties of hydrophobic silica contained hybrid films of waterborne polyurethane and fluorinated polymethacrylate." Polymer 55, no. 1 (2014): 187–94. http://dx.doi.org/10.1016/j.polymer.2013.11.019.

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12

Cakić, Suzana M., Ivan S. Ristić, Milena M.-Cincović, Dragan T. Stojiljković, and Jaroslava B.-Simendić. "Preparation and characterization of waterborne polyurethane/silica hybrid dispersions from castor oil polyols obtained by glycolysis poly(ethylene terephthalate) waste." International Journal of Adhesion and Adhesives 70 (October 2016): 329–41. http://dx.doi.org/10.1016/j.ijadhadh.2016.07.010.

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13

Cakić, Suzana M., Ivan S. Ristić, Dragan T. Stojiljković, Nada N. Nikolić, Bratislav Ž. Todorović, and Nataša V. Radosavljević-Stevanović. "Effect of the silica nanofiller on the properties of castor oil-based waterborne polyurethane hybrid dispersions based on recycled PET waste." Polymer Bulletin 76, no. 3 (2018): 1217–38. http://dx.doi.org/10.1007/s00289-018-2429-4.

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14

Yeh, Jui-Ming, Chia-Tseng Yao, Chi-Fa Hsieh, Hsing-Chung Yang, and Chi-Phi Wu. "Preparation and properties of amino-terminated anionic waterborne-polyurethane–silica hybrid materials through a sol–gel process in the absence of an external catalyst." European Polymer Journal 44, no. 9 (2008): 2777–83. http://dx.doi.org/10.1016/j.eurpolymj.2008.06.040.

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15

Suwan, Anutida, Kanitsorn Srichai, Nathapong Sukhawipat, Pamela Pasetto, Anuwat Saetung, and Nitinart Saetung. "New waterborne polyurethane/silica hybrid dispersions based on natural rubber and prepared by sol-gel process: Effects of amino alkoxy-silane and nano-silica contents on dispersion stability and films properties." Progress in Organic Coatings 184 (November 2023): 107835. http://dx.doi.org/10.1016/j.porgcoat.2023.107835.

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16

Choi, H. Y., C. Y. Bae, and B. K. Kim. "Nanoclay reinforced UV curable waterborne polyurethane hybrids." Progress in Organic Coatings 68, no. 4 (2010): 356–62. http://dx.doi.org/10.1016/j.porgcoat.2010.03.015.

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17

Yuan, Hui, Yushuai Wang, Zhiyong Liu, and Shiyu Li. "A study on the properties and working mechanism of a waterborne polyurethane-modified silicate-based coating." RSC Advances 9, no. 46 (2019): 26817–24. http://dx.doi.org/10.1039/c9ra04441h.

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Herein, the effects of the amount of waterborne polyurethane, silica sol and fillers on the compressive and bending strength, temperature resistance and acid resistance of waterborne polyurethane-modified silicate-based coatings were investigated.
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18

Negim, El-Sayed, M. Shalash, Zh S. Mukatayeva, et al. "Mini review polyurethane hybrids: preparation, characterization and applications." Kompleksnoe Ispolzovanie Mineralnogo Syra = Complex Use of Mineral Resources 333, no. 2 (2024): 16–26. http://dx.doi.org/10.31643/2025/6445.13.

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Polyurethane hybrids (PUHs) are a type of versatile materials with a broad variety of possible applications. Considering the connections between their structure and characteristics, this is especially true. Because of its special mechanical stability, toughness, stickiness, sustainability of the finished product, biological properties, and chemical properties, PUHs are the subject of extensive research and development for use in a wide range of applications. Polyurethane /acrylic hybrids are important type of binders in coating industries due to their exceptional properties. This mini review a
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19

Kim, Hyun A., and Byung Kyu Kim. "Synthesis and properties of waterborne polyurethane/hydroxyapatite chemical hybrids." Progress in Organic Coatings 128 (March 2019): 69–74. http://dx.doi.org/10.1016/j.porgcoat.2018.12.009.

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20

Wu, Dongmei, Heping Xu, Fengxian Qiu, and Dongya Yang. "Preparation, Morphology and Properties of Waterborne-Polyurethane/Silica." Polymer-Plastics Technology and Engineering 50, no. 5 (2011): 498–508. http://dx.doi.org/10.1080/03602559.2010.543245.

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21

Heck, Cesar A., João Henrique Z. dos Santos, and Carlos R. Wolf. "Hybrid silicas/waterborne polyurethane composite properties: In situ formation vs. grafting methods." Journal of Sol-Gel Science and Technology 81, no. 2 (2016): 505–13. http://dx.doi.org/10.1007/s10971-016-4220-z.

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22

Yang, Jian Jun, Wen Long Yang, Qing Yun Wu, Jia Nan Zhang, and Ming Yuan Wu. "Synthesis of Silica-Core/Polymer-Shell Microcapsule via Double In Situ Miniemulsion Polymerization." Advanced Materials Research 915-916 (April 2014): 742–46. http://dx.doi.org/10.4028/www.scientific.net/amr.915-916.742.

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Carboxylic waterborne polyurethane was synthesized with isophorone diisocyanate (IPDI), polyether glycol (PPG) and 2,2-bis (hydroxymethyl) propionic acid (DMPA) as major materials, and terminated with C=C by using β-hydroxyethyl ethacrylate (HEMA). And then 2, 2-azobis (isobutyronitrile) (AIBN) and cumene hydroperoxide (CHPO)/tetraethylenepentamine (TEPA), as a representative of different kinds of initiators, were employed to prepare SiO2/polymer composites via double in situ miniemulsion polymerization, in which the prepared waterborne polyurethane was used as a reactive surfactant. The morph
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23

Lee, T. J., S. H. Kwon, and B. K. Kim. "Biodegradable sol–gel coatings of waterborne polyurethane/gelatin chemical hybrids." Progress in Organic Coatings 77, no. 6 (2014): 1111–16. http://dx.doi.org/10.1016/j.porgcoat.2014.03.011.

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24

Jung, Dong H., Min A. Jeong, Han M. Jeong, and Byung K. Kim. "Chemical hybridization of imidized waterborne polyurethane with silica particle." Colloid and Polymer Science 288, no. 14-15 (2010): 1465–70. http://dx.doi.org/10.1007/s00396-010-2279-6.

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25

Yan-ting, Han, Cheng Zheng, Dong Wei, Zhang Fan, and Xin Zhong-yin. "Comparative study of in situ polymerized waterborne polyurethane/nano-silica composites and polyethersiloxanediol-modified polyurethane." Journal of Thermoplastic Composite Materials 30, no. 1 (2016): 107–20. http://dx.doi.org/10.1177/0892705715584434.

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The waterborne polyurethane/nano-silica composites (WPU/nano-silica, WPUS) and WPU composites modified by polyethersiloxanediol (WPUPES) were prepared, respectively. The properties of WPUS and WPUPES were investigated by various characterizations. The results showed both WPUS and WPUPES had better waterproof property and thermal stability than neat WPU. However, WPUPES has a lower elongation at break due to the higher micro-phase separation. This is ascribed to migration and aggregation of siloxane segments during the film formation. The tensile strength of WPUS was higher than that of neat WP
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26

Jia-Hu, Guo, Liu Yu-Cun, Chai Tao, et al. "Synthesis and properties of a nano-silica modified environmentally friendly polyurethane adhesive." RSC Advances 5, no. 56 (2015): 44990–97. http://dx.doi.org/10.1039/c5ra01965f.

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In this study, a nano-SiO<sub>2</sub> modified waterborne polyurethane (WPU) adhesive with remarkably low VOC content and high adhesion performance was successfully synthesized via in situ polymerization.
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27

Li, Pengling, Hui Ren, Fengxian Qiu, et al. "Preparation and Properties of Graphene Oxide-Modified Waterborne Polyurethane-Acrylate Hybrids." Polymer-Plastics Technology and Engineering 53, no. 13 (2014): 1408–16. http://dx.doi.org/10.1080/03602559.2014.909474.

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28

Fan, Weiwei, Junchao Wang, and Zhengjun Li. "Antiglare waterborne polyurethane/modified silica nanocomposite with balanced comprehensive properties." Polymer Testing 99 (July 2021): 107072. http://dx.doi.org/10.1016/j.polymertesting.2021.107072.

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29

Lv, Caihong, Ling Hu, Yao Yang, Houbin Li, Chi Huang, and Xinghai Liu. "Waterborne UV-curable polyurethane acrylate/silica nanocomposites for thermochromic coatings." RSC Advances 5, no. 33 (2015): 25730–37. http://dx.doi.org/10.1039/c5ra01687h.

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SiO<sub>2</sub> was modified by KH-570 and then introduced to the ends of the PUA main chains through radical polymerization, which might be the reason for the high rigidity, hardness, abrasion resistance and good weather resistance of the PUA/SiO<sub>2</sub>.
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30

Liu, Haidong, Hengsen Xiong, Yongming Chang, Jianhui Xu, Chuanlai Xu, and Yaolu Liu. "Fabrication of Superhydrophobic Coating Based on Waterborne Silicone-Modified Polyurethane Dispersion and Silica Nanoparticles." Polymers 15, no. 1 (2022): 22. http://dx.doi.org/10.3390/polym15010022.

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In this work, eco-friendly superhydrophobic coatings were prepared by dispersing hydrophobic silica nanoparticles and a waterborne silicone-modified polyurethane dispersion into an ethanol solution, which was free of fluorine and volatile toxic solvents. The effects of the silica content on the hydrophobicity and scratch resistance of the hydrophobic surfaces were investigated by WCA measurements and a sandpaper abrasion test, respectively. The experimental results indicated that when the silica content exceeded 30% by mass, the silica/silicone-modified polyurethane coatings had superhydrophob
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31

Acierno, Domenico, Lucia Graziosi, and Antonella Patti. "Puncture Resistance and UV aging of Nanoparticle-Loaded Waterborne Polyurethane-Coated Polyester Textiles." Materials 16, no. 21 (2023): 6844. http://dx.doi.org/10.3390/ma16216844.

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The goal of this research was to investigate the effect of different types of nanoparticles on the UV weathering resistance of polyurethane (PU) treatment in polyester-based fabrics. In this regard, zinc oxide nanoparticles (ZnO), hydrophilic silica nanoparticles (SiO2 (200)), hydrophobic silica nanoparticles (SiO2 (R812)), and carbon nanotubes (CNT) were mixed into a waterborne polyurethane dispersion and impregnated into textile samples. The puncturing resistance of the developed specimens was examined before and after UV-accelerated aging. The changes in chemical structure and surface appea
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32

Aguirresarobe, R. H., L. Martin, M. J. Fernandez-Berridi, and L. Irusta. "Autonomic healable waterborne organic-inorganic polyurethane hybrids based on aromatic disulfide moieties." Express Polymer Letters 11, no. 4 (2017): 266–77. http://dx.doi.org/10.3144/expresspolymlett.2017.27.

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33

Potaufeux, Jean-Emile, Jérémy Odent, Delphine Notta-Cuvier, et al. "Mastering Superior Performance Origins of Ionic Polyurethane/Silica Hybrids." ACS Applied Polymer Materials 3, no. 12 (2021): 6684–93. http://dx.doi.org/10.1021/acsapm.1c01396.

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34

Kang, S. M., M. J. Kim, S. H. Kwon, H. Park, H. M. Jeong, and B. K. Kim. "Polyurethane foam/silica chemical hybrids for shape memory effects." Journal of Materials Research 27, no. 22 (2012): 2837–43. http://dx.doi.org/10.1557/jmr.2012.334.

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35

Wu, Te Hsing, Chih Wei Chou, and Lie Hang Shen. "The Efficiency on Mechanical and Thermal Characteristic in Polyurethane/Silica Nanocompounds." Advanced Materials Research 123-125 (August 2010): 807–10. http://dx.doi.org/10.4028/www.scientific.net/amr.123-125.807.

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The object of this paper is to study the effect of silica nanoparticles (SiO2 NPs) on waterborne polyurethane films (5×10-3 to 5wt % SiO2 NPs). The Nanocompounds’ properties were analyzed by thermogravimetric analyzer (TGA), field emission scanning electron microscopy (FESEM), transmission electron microscopy (TEM), Fourier transform infrared spectroscopy (FTIR) and dynamic mechanical analyzer (DMA). From the results, the nanocomposites degraded at a higher temperature than pure PU matrix. Moreover, the temperature where the weight loss reached 50% was shifted by 57oC towards higher temperatur
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36

Ding, Xiaodan, Xue Wang, Hao Zhang, et al. "Preparation of waterborne polyurethane-silica nanocomposites by a click chemistry method." Materials Today Communications 23 (June 2020): 100911. http://dx.doi.org/10.1016/j.mtcomm.2020.100911.

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37

Chiu, Hsien-Tang, Hui-Min Yang, and Chung-Shane Liu. "Synthesis, morphology, and properties of waterborne m-TMXDI-based anionic polyurethane and hybrids." Polymer Science Series B 56, no. 2 (2014): 247–56. http://dx.doi.org/10.1134/s1560090414020043.

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38

Chen, Chiou-Juy, Mei-Hui Tsai, I.-Hsiang Tseng, Ai-Wen Hsu, Tung Chen Liu, and Shih-Liang Huang. "Composition, thermal and tensile properties of polyurethane-urea-silica hybrids." RSC Advances 3, no. 25 (2013): 9729. http://dx.doi.org/10.1039/c3ra23186k.

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39

Ma, Jianzhong, Chao Liu, Yufei Dong, Qianqian Fan, Yan Bao, and Hongxia Yan. "Waterborne polyurethane/silica nanocomposites based on electrostatic interaction: Interfacial interactions and properties." Progress in Organic Coatings 171 (October 2022): 107052. http://dx.doi.org/10.1016/j.porgcoat.2022.107052.

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40

Lee, Min-Young, and Su Kyung Kim. "Effects of the Amounts of Reactive Compatibilizer on Waterborne Polyurethane/Silica Nanocomposites." Polymer Korea 43, no. 2 (2019): 235–42. http://dx.doi.org/10.7317/pk.2019.43.2.235.

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41

Ma, Hui, Yucun Liu, Jiahu Guo, et al. "Synthesis of a novel silica modified environmentally friendly waterborne polyurethane matting coating." Progress in Organic Coatings 139 (February 2020): 105441. http://dx.doi.org/10.1016/j.porgcoat.2019.105441.

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42

Loison, Pierre, Vincent Debout, Hugo Groult, Juan Creus, and Sébastien Touzain. "Incorporation of silica nanocontainers and its impact on a waterborne polyurethane coating." Materials and Corrosion 70, no. 10 (2019): 1884–99. http://dx.doi.org/10.1002/maco.201910809.

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43

Patti, A., and D. Acierno. "The effect of silica/polyurethane waterborne dispersion on the perforating features of impregnated polypropylene-based fabric." Textile Research Journal 90, no. 11-12 (2019): 1201–11. http://dx.doi.org/10.1177/0040517519888254.

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In an attempt to improve the puncturing behavior of a commercial technical textile, this study investigated the effects of fabric impregnation with waterborne polyurethane dispersions (WPUDs). The infusing solutions were prepared by mixing a commercially available WPUD with other components, such as water, hydrophilic and hydrophobic silica (SiO2) nanoparticles, and a crosslinker. Quasi-static perforation tests were performed on a dynamometer machine equipped with a spherical spike and pointed blade as piercing probes. The results showed that the polyurethane impregnation augmented the punctur
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44

Cho, Jae Whan, and Sun Hwa Lee. "Influence of silica on shape memory effect and mechanical properties of polyurethane–silica hybrids." European Polymer Journal 40, no. 7 (2004): 1343–48. http://dx.doi.org/10.1016/j.eurpolymj.2004.01.041.

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45

Paul, Uttam C., Gözde Bayer, Silvia Grasselli, Annalisa Malchiodi, and Ilker S. Bayer. "Biodegradable, Stretchable and Transparent Plastic Films from Modified Waterborne Polyurethane Dispersions." Polymers 14, no. 6 (2022): 1199. http://dx.doi.org/10.3390/polym14061199.

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Waterborne polyurethane dispersions can be designed to generate highly functional and environmentally friendly polymer systems. The use of water as the main dispersion medium is very advantageous for the environment and the introduction of linear and aliphatic polyols such as polyether and polyesters in the formulations can make them highly biocompatible and susceptible to biodegradation. In this study, we fabricated biodegradable, flexible and transparent plastic films by hybridizing a waterborne aliphatic polyester polyurethane (PU) suspension with polyvinylpyrrolidone (PVP) using mechanical
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46

Mishra, Aswini K., Ramanuj Narayan, Tejraj M. Aminabhavi, S. K. Pradhan, and K. V. S. N. Raju. "Hyperbranched polyurethane-urea-imide/o-clay-silica hybrids: Synthesis and characterization." Journal of Applied Polymer Science 125, S1 (2011): E67—E75. http://dx.doi.org/10.1002/app.34970.

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47

Sun, Daoxing, Xiao Miao, Kejie Zhang, Hern Kim, and Yongan Yuan. "Triazole-forming waterborne polyurethane composites fabricated with silane coupling agent functionalized nano-silica." Journal of Colloid and Interface Science 361, no. 2 (2011): 483–90. http://dx.doi.org/10.1016/j.jcis.2011.05.062.

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48

Peng, Zhengkang, and Aiping Zhu. "The novel preparation of waterborne acrylic polyurethane-silica organic-inorganic interpenetrating network coatings." Progress in Organic Coatings 187 (February 2024): 108157. http://dx.doi.org/10.1016/j.porgcoat.2023.108157.

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49

Xu, Jinglu, Jihu Wang, Shaoguo Wen, et al. "Preparation and Dispersion Performance of Hydrophobic Fumed Silica Aqueous Dispersion." Polymers 15, no. 17 (2023): 3502. http://dx.doi.org/10.3390/polym15173502.

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Hydrophobic fumed silica (HFS) is a commonly used rheology additive in waterborne coatings. A series of experiments were conducted on the HFS-dispersing technology in this study. The size and structure of HFS primary particles were observed via transmission electron microscopy (TEM). The measurement results of the TEM were D50 = 13.6 nm and D90 = 19.7 nm, respectively. The particle size and dispersion performance of HFS were tested via dynamic light scattering (DLS). Additionally, the HFS aqueous dispersion was prepared and compounded with waterborne polyacrylic latex and polyurethane resin. T
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50

Wu, Dongmei, Fengxian Qiu, Heping Xu, Jingli Zhang, and Dongya Yang. "Preparation, characterization, and properties of environmentally friendly waterborne poly(urethane acrylate)/silica hybrids." Journal of Applied Polymer Science 119, no. 3 (2010): 1683–95. http://dx.doi.org/10.1002/app.32846.

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