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Journal articles on the topic 'Organic-inorganic hybrid hydrogels'

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1

Bakeeva, I. V., E. A. Egorova, N. S. Perov, I. V. Dementsova, E. V. Chernikova, and V. P. Zubov. "Magnetosensitive organic-inorganic hybrid hydrogels." Polymer Science Series B 56, no. 3 (2014): 384–92. http://dx.doi.org/10.1134/s1560090414030038.

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2

Hu, Lulin, Yi Yang, Weiyan Yu, and Lu Xu. "Hydrogels for Lubrication: Synthesis, Properties, Mechanism, and Challenges." Lubricants 12, no. 6 (2024): 186. http://dx.doi.org/10.3390/lubricants12060186.

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Hydrogels have received extensive attention as functional lubricants because of their excellent anti-friction and anti-wear properties, tunable tribological performances, and effectiveness in alleviating lubrication failures caused by the creeping or leakage of conventional liquid lubricants owing to their semi-solid nature. This review summarizes the current research advances in hydrogel lubricants fabricated with various organic and/or inorganic gelators, including organic polymeric or supramolecular hydrogels, inorganic particles-based hydrogels, and organic polymer-inorganic particle hybri
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3

Zubov, V. P., A. A. Ishchenko, P. A. Storozhenko, I. V. Bakeeva, Yu O. Kirilina, and G. V. Fetisov. "Organic-inorganic hybrid hydrogels containing nanocrystalline silicon." Doklady Chemistry 437, no. 2 (2011): 120–23. http://dx.doi.org/10.1134/s0012500811040148.

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4

Xia, Shan, Shixin Song, Xiuyan Ren, and Guanghui Gao. "Highly tough, anti-fatigue and rapidly self-recoverable hydrogels reinforced with core–shell inorganic–organic hybrid latex particles." Soft Matter 13, no. 36 (2017): 6059–67. http://dx.doi.org/10.1039/c7sm01253e.

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5

Schupp, David J., Xiaotong Zhang, Shengtong Sun, and Helmut Cölfen. "Mineral plastic hydrogels from the cross-linking of polyacrylic acid and alkaline earth or transition metal ions." Chemical Communications 55, no. 34 (2019): 4913–16. http://dx.doi.org/10.1039/c8cc08986h.

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6

Kim, Chan Woo, Sung Eun Kim, Yong Woo Kim, et al. "Fabrication of hybrid composites based on biomineralization of phosphorylated poly(ethylene glycol) hydrogels." Journal of Materials Research 24, no. 1 (2009): 50–57. http://dx.doi.org/10.1557/jmr.2009.0002.

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A novel route to organic-inorganic composites was described based on biomineralization of poly(ethylene glycol) (PEG)-based hydrogels. The 3-dimensional hydrogels were synthesized by radical crosslinking polymerization of poly(ethylene glycol fumarate) (PEGF) in the presence of ethylene glycol methacrylate phosphate (EGMP) as an apatite-nuclating monomer, acrylamide (AAm) as a composition-modulating comonomer, and potassium persulfate (PPS) as a radical initiator. We used the urea-mediated solution precipitation technique for biomineralization of hydrogels. The apatite grown on the surface and
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7

Loos, Wouter, Sam Verbrugghe, Eric J. Goethals, Filip E. Du Prez, Irena V. Bakeeva, and Vitali P. Zubov. "Thermo-Responsive Organic/Inorganic Hybrid Hydrogels based on Poly(N-vinylcaprolactam)." Macromolecular Chemistry and Physics 204, no. 1 (2003): 98–103. http://dx.doi.org/10.1002/macp.200290058.

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8

BHUNIA, TRIDIB, LUNA GOSWAMI, DIPANKAR CHATTOPADHYAY, and ABHIJIT BANDYOPADHYAY. "SWELLING DESWELLING STUDIES AFTER FREEZE–THAW TREATMENT OF NANOSILICA REINFORCED POLY (VINYL ALCOHOL)-BASED ORGANIC–INORGANIC HYBRID HYDROGEL." International Journal of Nanoscience 10, no. 04n05 (2011): 1087–90. http://dx.doi.org/10.1142/s0219581x11009465.

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Aqueous nanosilica sol (particle size range: 9–13 nm, pH: 9.0) was added at various low concentration range (0.5–2 wt.%) into aqueous poly (vinyl alcohol) (PVA) of different molecular weight (98% hydrolyzed, 20 wt.%) (pH: 5.0) at room temperature under constant stirring to synthesize organic-inorganic hybrid hydrogels in presence of sodium lauryl sulphate as a silica dispersant. Buffer tablets were added to arrest the pH at 9.0 (to prevent any silica aggregation due to change in pH). The resultant hybrids were cast on Teflon sheets and dried in an oven at 50°C to drive out all the unbound wate
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9

Cao, Mengjiao, Chengcheng Liu, Mengxin Li, et al. "Recent Research on Hybrid Hydrogels for Infection Treatment and Bone Repair." Gels 8, no. 5 (2022): 306. http://dx.doi.org/10.3390/gels8050306.

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The repair of infected bone defects (IBDs) is still a great challenge in clinic. A successful treatment for IBDs should simultaneously resolve both infection control and bone defect repair. Hydrogels are water-swollen hydrophilic materials that maintain a distinct three-dimensional structure, helping load various antibacterial drugs and biomolecules. Hybrid hydrogels may potentially possess antibacterial ability and osteogenic activity. This review summarizes the recent progress of different kinds of antibacterial agents (including inorganic, organic, and natural) encapsulated in hydrogels. Se
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10

Mañas-Torres, Mari C., Gloria B. Ramírez-Rodríguez, José I. García-Peiro, et al. "Organic/inorganic hydrogels by simultaneous self-assembly and mineralization of aromatic short-peptides." Inorganic Chemistry Frontiers 9, no. 4 (2022): 743–52. http://dx.doi.org/10.1039/d1qi01249e.

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Hybrid hydrogels with a tunable structure–function relationship were prepared by simultaneous self-assembly and mineralization of aromatic short-peptides. Sub-stoichiometric Ca concentrations resulted in nanoapatite oriented along the peptide fiber.
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11

Alves, F., and I. Nischang. "A simple approach to hybrid inorganic–organic step-growth hydrogels with scalable control of physicochemical properties and biodegradability." Polymer Chemistry 6, no. 12 (2015): 2183–87. http://dx.doi.org/10.1039/c4py01789g.

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We prepared new and scalable, hybrid inorganic–organic step-growth hydrogels with polyhedral oligomeric silsesquioxane (POSS) network knot construction elements and hydrolytically degradable poly(ethylene glycol) (PEG) di-ester macromonomers by in situ radical-mediated thiol–ene photopolymerization.
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12

Qian, Yuna, Chuchu Xu, Wei Xiong, et al. "Dual cross-linked organic-inorganic hybrid hydrogels accelerate diabetic skin wound healing." Chemical Engineering Journal 417 (August 2021): 129335. http://dx.doi.org/10.1016/j.cej.2021.129335.

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13

Zhang, Jinlong, Haibing Wei, Junyan Tan, Weihong Qiao, Yan Guan, and Jie Zhang. "Thermo- and pH- dual responsive inorganic-organic hybrid hydrogels with tunable luminescence." Science China Chemistry 61, no. 3 (2017): 328–35. http://dx.doi.org/10.1007/s11426-017-9137-7.

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14

Yu, Jingjing, Zongtao Liu, Jinrui Shen, et al. "Biodegradable Inorganic-Organic POSS-PEG Hybrid Hydrogels as Scaffolds for Tissue Engineering." Macromolecular Materials and Engineering 302, no. 11 (2017): 1700142. http://dx.doi.org/10.1002/mame.201700142.

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15

Huh, Hyun Wook, Linlin Zhao, and So Yeon Kim. "Biomineralized biomimetic organic/inorganic hybrid hydrogels based on hyaluronic acid and poloxamer." Carbohydrate Polymers 126 (August 2015): 130–40. http://dx.doi.org/10.1016/j.carbpol.2015.03.033.

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16

Wei, Haibing, Nan Shi, Jinlong Zhang, Yan Guan, Jie Zhang, and Xinhua Wan. "pH-responsive inorganic–organic hybrid supramolecular hydrogels with jellyfish-like switchable chromic luminescence." Chem. Commun. 50, no. 66 (2014): 9333–35. http://dx.doi.org/10.1039/c4cc04000g.

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17

Chen, Yi, Guangsheng Zeng, Wenyong Liu, and Weijian Xu. "Synthesis and Characterization of Water-Soluble POSS Hybrid Inorganic/Organic PDMAEMA Nanocomposite Hydrogels." Soft Materials 13, no. 2 (2015): 77–85. http://dx.doi.org/10.1080/1539445x.2015.1016620.

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18

Gu, Hongbo, Hongyuan Zhang, Chao Ma, et al. "Smart strain sensing organic–inorganic hybrid hydrogels with nano barium ferrite as the cross-linker." Journal of Materials Chemistry C 7, no. 8 (2019): 2353–60. http://dx.doi.org/10.1039/c8tc05448g.

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19

Kumar, Anuj, So-Yeon Won, Ankur Sood, et al. "Triple-Networked Hybrid Hydrogels Reinforced with Montmorillonite Clay and Graphene Nanoplatelets for Soft and Hard Tissue Regeneration." International Journal of Molecular Sciences 23, no. 22 (2022): 14158. http://dx.doi.org/10.3390/ijms232214158.

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Hydrogel is a three-dimensional (3D) soft and highly hydrophilic, polymeric network that can swell in water and imbibe a high amount of water or biological fluids. Hydrogels have been used widely in various biomedical applications. Hydrogel may provide a fluidic tissue-like 3D microenvironment by maintaining the original network for tissue engineering. However, their low mechanical performances limit their broad applicability in various functional tissues. This property causes substantial challenges in designing and preparing strong hydrogel networks. Therefore, we report the triple-networked
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20

Wang, Zhanhua, Junhu Zhang, Zhicheng Tian, et al. "Organic–inorganic hybrid photonic hydrogels as a colorful platform for visual detection of SCN−." Chemical Communications 46, no. 45 (2010): 8636. http://dx.doi.org/10.1039/c0cc03533e.

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21

Bakeeva, I. V., L. A. Ozerina, A. N. Ozerin, and V. P. Zubov. "Structure and characteristics of organic-inorganic hybrid hydrogels based on poly(N-vinylcaprolactam)-SiO2." Polymer Science Series A 52, no. 5 (2010): 496–505. http://dx.doi.org/10.1134/s0965545x10050044.

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22

Hu, Chen, Taufiq Ahmad, Malik Salman Haider, et al. "A thermogelling organic-inorganic hybrid hydrogel with excellent printability, shape fidelity and cytocompatibility for 3D bioprinting." Biofabrication 14, no. 2 (2022): 025005. http://dx.doi.org/10.1088/1758-5090/ac40ee.

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Abstract Alginates are the most commonly used bioink in biofabrication, but their rheological profiles make it very challenging to perform real 3D printing. In this study, an advanced hybrid hydrogel ink was developed, a mixture of thermogelling diblock copolymer, alginate and clay i.e. Laponite XLG. The reversible thermogelling and shear thinning properties of the diblock copolymer in the ink system improves handling and 3D printability significantly. Various three-dimensional constructs, including suspended filaments, were printed successfully with high shape fidelity and excellent stackabil
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23

Abalymov, Anatolii, Louis Van der Meeren, Dmitry Volodkin, Bogdan Parakhonskiy, and Andre G. Skirtach. "Carbon Nanotubes Transform Soft Gellan Gum Hydrogels into Hybrid Organic–Inorganic Coatings with Excellent Cell Growth Capability." C 7, no. 1 (2021): 18. http://dx.doi.org/10.3390/c7010018.

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Carbone nanotubes (CNTs) possess distinct properties, for example, hardness, which is very complementary to biologically relevant soft polymeric and protein materials. Combining CNTs with bio-interfaces leads to obtaining new materials with advanced properties. In this work, we have designed novel organic-inorganic hybrid coatings by combining CNTs with gellan gum (GG) hydrogels. The surface topography of the samples is investigated using scanning electron microscopy and atomic force microscopy. Mechanical properties of synthesized hybrid materials are both assessed at the macro-scale and mapp
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24

Sakuhara, Iku, Eri Umebayashi, Kazuho Suguro, et al. "Preparation of Microporous, Thermosensitive Organic-Inorganic Hybrid Hydrogel with Simultaneous Control of Phase Separation and Sol-Gel Process." Advances in Science and Technology 54 (September 2008): 109–13. http://dx.doi.org/10.4028/www.scientific.net/ast.54.109.

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To control the microstructure and the responsive rates of hydrogels, a temperature-induced phase separation (TIPS) method applied to an organic-inorganic hybrid hydrogel. A copolymer between thermosensitive poly(N-isopropylacrylamide), polyNIPA, and a vinyl monomer possessing a trimethoxysilyl group was synthesized by radical reaction. Its cross-linking could be carried out by hydrolytic polycondensation of trimethoxysilyl groups. During both reactions, the pre-gel solution was separated into two phases by heating above a lower critical solution temperature of the elongating polyNIPA copolymer
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25

Jayash, Soher N., Paul R. Cooper, Richard M. Shelton, Sarah A. Kuehne, and Gowsihan Poologasundarampillai. "Novel Chitosan-Silica Hybrid Hydrogels for Cell Encapsulation and Drug Delivery." International Journal of Molecular Sciences 22, no. 22 (2021): 12267. http://dx.doi.org/10.3390/ijms222212267.

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Hydrogels constructed from naturally derived polymers provide an aqueous environment that encourages cell growth, however, mechanical properties are poor and degradation can be difficult to predict. Whilst, synthetic hydrogels exhibit some improved mechanical properties, these materials lack biochemical cues for cells growing and have limited biodegradation. To produce hydrogels that support 3D cell cultures to form tissue mimics, materials must exhibit appropriate biological and mechanical properties. In this study, novel organic-inorganic hybrid hydrogels based on chitosan and silica were pr
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26

Telin, A. G., V. A. Strizhnev, S. A. Vezhnin, L. E. Lenchenkova, R. N. Yakubov, and R. M. Safuanova. "APPLICATION OF HYDROGELS FOR WATER SHUTOFF TREATMENTS. Message 1." Petroleum Engineering 22, no. 1 (2024): 65–76. http://dx.doi.org/10.17122/ngdelo-2024-1-65-76.

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Application of gels for well water shutoff has become a part of oilfield practice, and this direction is constantly evolving due to several objective reasons. The main reason is the growing water cut of well production, and repair and isolation operations using hydrogels occupy a worthy place in this segment of technological processes for limiting water inflow. The second reason for oilfield workers’ interest in hydrogels for water shutoff is related to the possibility of smooth regulation of their properties: they are injected with low viscosity, then mature in the required isolation interval
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27

Shipovskaya, A. B., O. N. Malinkina, Yu Yu Zhuravleva, and S. M. Rogacheva. "Synthesis of Silicon-Containing Chitosan Hydrogels in a Glycolic Acid Medium." Advances in Materials Science and Engineering 2016 (2016): 1–8. http://dx.doi.org/10.1155/2016/3951703.

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The present paper considers a “one-pot” green sol-gel synthesis of hybrid inorganic/organic hydrogels based on chitosan glycolate by using organically modified silica Si(OGly)4·2GlyOH as a precursor to form a network of ≡Si–O–Si≡ bonds at 4, 20, and 37°C. The gelation time of the multicomponent chitosan-containing system was estimated as a function of the composition (the polymer template and precursor concentrations, introduction of a low-molecular-weight accelerator NaCl) and gelation conditions (the pH and temperature of the sol-gel process). It has been shown that an increased polymeric sa
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Chen, Xi, Yuru Wang, Ran Chai, Yang Xu, Huanrong Li, and Binyuan Liu. "Luminescent Lanthanide-Based Organic/Inorganic Hybrid Materials for Discrimination of Glutathione in Solution and within Hydrogels." ACS Applied Materials & Interfaces 9, no. 15 (2017): 13554–63. http://dx.doi.org/10.1021/acsami.7b02679.

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29

Sandu, Teodor, Andrei Sarbu, Rodica Zavoianu, et al. "New ways to use the red mud waste as raw material for inorganic- organic hybrid hydrogels." International Journal of Mineral Processing 169 (December 2017): 111–18. http://dx.doi.org/10.1016/j.minpro.2017.11.005.

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30

Velasco-Rodriguez, B., T. Diaz-Vidal, L. C. Rosales-Rivera, et al. "Hybrid Methacrylated Gelatin and Hyaluronic Acid Hydrogel Scaffolds. Preparation and Systematic Characterization for Prospective Tissue Engineering Applications." International Journal of Molecular Sciences 22, no. 13 (2021): 6758. http://dx.doi.org/10.3390/ijms22136758.

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Hyaluronic acid (HA) and gelatin (Gel) are major components of the extracellular matrix of different tissues, and thus are largely appealing for the construction of hybrid hydrogels to combine the favorable characteristics of each biopolymer, such as the gel adhesiveness of Gel and the better mechanical strength of HA, respectively. However, despite previous studies conducted so far, the relationship between composition and scaffold structure and physico-chemical properties has not been completely and systematically established. In this work, pure and hybrid hydrogels of methacroyl-modified HA
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31

Telin, A. G., S. A. Vezhnin, F. E. Safarov, L. E. Lenchenkova, R. N. Yakubov, and R. M. Safuanova. "APPLICATION OF HYDROGELS FOR CONFORMANCE CONTROL AND FLOW DIVERSION." Petroleum Engineering 21, no. 6 (2023): 58–77. http://dx.doi.org/10.17122/ngdelo-2023-6-58-77.

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The use of hydrogels in the development of oil fields by the flooding method has firmly established itself in the oil industry, and this direction is constantly evolving in all oil-producing countries around the world, as evidenced by the growth of publication and patent activity on this topic. Operations for conformance control and flow diversion are impossible to imagine without the use of gel technologies today. Inorganic, organic, and hybrid gels, as well as foam gels, gel-forming and gel-dispersed systems are used.The ability to widely regulate structural-mechanical properties, thermal st
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32

Fomina, E. K., E. V. Grinyuk, I. A. Klimovtsova, et al. "Obtaining hybrid absorbents by grafting acrylamide onto chitosan chains under gamma irradiation." Proceedings of the National Academy of Sciences of Belarus, Chemical Series 59, no. 3 (2023): 242–56. http://dx.doi.org/10.29235/1561-8331-2023-59-3-242-256.

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Hybrid hydrogels have been synthesized by radiation grafting of acrylamide to chitosan chains. The structure of the acrylamide-grafted chitosan was examined using FTIR spectroscopy, X-ray diffraction and simultaneous thermal analysis. It has been determined that both hydroxyl and amino groups of the polysaccharide are the grafting centers of growing polyacrylamide chains on the chitosan macromolecules. The effect of the reagents ratio on the sorption and rheological properties of the obtained hydrogels has been studied. Hydrogels based on acrylamide-grafted chitosan were modified chemically by
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33

Telin, Aleksey, Lyubov Lenchenkova, Ravil Yakubov, et al. "Application of Hydrogels and Hydrocarbon-Based Gels in Oil Production Processes and Well Drilling." Gels 9, no. 8 (2023): 609. http://dx.doi.org/10.3390/gels9080609.

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The use of gels in oil production processes has become a regular practice in oilfield operations and is constantly developing in all oil-producing countries of the world, as evidenced by the growth of publications and patent activity on this topic. Many oil production processes, such as hydraulic fracturing, conformance control, water, and gas shutoff, cannot be imagined without the use of gel technologies. Inorganic, organic, and hybrid gels are used, as well as foams, gel-forming, and gel-dispersed systems. The possibility of a broad control of structural and mechanical properties, thermal s
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34

Zeng, Ke, Yuan Fang, and Sixun Zheng. "Organic-inorganic hybrid hydrogels involving poly(N-isopropylacrylamide) and polyhedral oligomeric silsesquioxane: Preparation and rapid thermoresponsive properties." Journal of Polymer Science Part B: Polymer Physics 47, no. 5 (2009): 504–16. http://dx.doi.org/10.1002/polb.21655.

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35

Kirilina, Yu O., I. V. Bakeeva, N. A. Bulychev, and V. P. Zubov. "Organic-inorganic hybrid hydrogels based on linear poly(N-vinylpyrrolidone) and products of hydrolytic polycondensation of tetramethoxysilane." Polymer Science Series B 51, no. 3-4 (2009): 135–42. http://dx.doi.org/10.1134/s1560090409030105.

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36

Skoulas, Dimitrios, Gaetano Mangiapia, Daniele Parisi, et al. "Tunable Hydrogels with Improved Viscoelastic Properties from Hybrid Polypeptides." Macromolecules 54, no. 23 (2021): 10786–800. http://dx.doi.org/10.1021/acs.macromol.1c01596.

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37

Guvendiren, Murat, Paul A. Heiney, and Shu Yang. "Precipitated Calcium Carbonate Hybrid Hydrogels: Structural and Mechanical Properties." Macromolecules 42, no. 17 (2009): 6606–13. http://dx.doi.org/10.1021/ma9012576.

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38

Cavallaro, Giuseppe, Lorenzo Lisuzzo, Giuseppe Lazzara, and Stefana Milioto. "Printable Hydrogels Based on Alginate and Halloysite Nanotubes." International Journal of Molecular Sciences 23, no. 6 (2022): 3294. http://dx.doi.org/10.3390/ijms23063294.

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The design of hydrogels for the controlled release of active species is an attractive challenge. In this work, we prepared hybrid hydrogels composed of halloysite nanotubes as the inorganic component, and alginate as the organic counterpart. The reported procedure allowed us to provide the resulting materials with a peculiar wire-like shape. Both optical and scanning electron microscopy were used to characterize the morphological properties of the hydrogel wires, whose diameters were ca. 0.19 and 0.47 mm, respectively. The possibility to be exploited as drug delivery systems was carried out by
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Agoudjil, Nouria, Clémence Sicard, Vincent Jaouen, et al. "Design and properties of biopolymer–silica hybrid materials: The example of pectin-based biodegradable hydrogels." Pure and Applied Chemistry 84, no. 12 (2012): 2521–29. http://dx.doi.org/10.1351/pac-con-11-11-18.

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The association of natural polymers with silica is a fruitful strategy to design novel hybrid structures with potential applications in the fields of biotechnology, medicine, and environmental sciences. Here we illustrate the principles of formation, the structure, and the properties of such biohybrid systems by the specific example of silica–pectin porous materials. The influence of the silica source, i.e., aqueous silicates and tetraethoxysilane (TEOS), was more specifically addressed. The alkoxide precursor may be associated with the polysaccharide in a wide range of concentrations. In cont
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Kaneko, Yoshiro, Shinsuke Sato, Jun-ichi Kadokawa, and Nobuo Iyi. "Synthesis of organic–inorganic hybrid hydrogels using rodlike polysiloxane having acrylamido groups as a new cross-linking agent." J. Mater. Chem. 16, no. 18 (2006): 1746–50. http://dx.doi.org/10.1039/b602847k.

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Wang, Yang, Aijuan Dong, Zhicheng Yuan, and Dajun Chen. "Fabrication and characterization of temperature-, pH- and magnetic-field-sensitive organic/inorganic hybrid poly (ethylene glycol)-based hydrogels." Colloids and Surfaces A: Physicochemical and Engineering Aspects 415 (December 2012): 68–76. http://dx.doi.org/10.1016/j.colsurfa.2012.10.009.

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42

Dragan, Ecaterina Stela, Maria Cazacu, and Alexandra Nistor. "Ionic organic/inorganic materials. III. Stimuli responsive hybrid hydrogels based on oligo(N,N-dimethylaminoethylmethacrylate) and chloroalkyl-functionalized siloxanes." Journal of Polymer Science Part A: Polymer Chemistry 47, no. 24 (2009): 6801–13. http://dx.doi.org/10.1002/pola.23720.

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43

Nelson, Cartwright, Slesha Tuladhar, Loren Launen, and Ahasan Habib. "3D Bio-Printability of Hybrid Pre-Crosslinked Hydrogels." International Journal of Molecular Sciences 22, no. 24 (2021): 13481. http://dx.doi.org/10.3390/ijms222413481.

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Maintaining shape fidelity of 3D bio-printed scaffolds with soft biomaterials is an ongoing challenge. Here, a rheological investigation focusing on identifying useful physical and mechanical properties directly related to the geometric fidelity of 3D bio-printed scaffolds is presented. To ensure during- and post-printing shape fidelity of the scaffolds, various percentages of Carboxymethyl Cellulose (CMC) (viscosity enhancer) and different calcium salts (CaCl2 and CaSO4, physical cross-linkers) were mixed into alginate before extrusion to realize shape fidelity. The overall solid content of A
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44

Alinavaz, Samira, Gholam Reza Mahdavinia, Hessam Jafari, Maryam Hazrati, and Ali Akbari. "Hydroxyapatite (HA)-based hybrid bionanocomposite hydrogels: Ciprofloxacin delivery, release kinetics and antibacterial activity." Journal of Molecular Structure 1225 (February 2021): 129095. http://dx.doi.org/10.1016/j.molstruc.2020.129095.

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45

ZHANG, Xiaojing, Xiniu HAN, Shaoming FANG, Yadong LI, Zhonghou ZHANG, and Chunmian YAN. "SYNTHESIS AND CHARACTERIZATION OF ORGANIC-INORGANIC HYBRID HYDROGELS BASED ON OCTAVINYL POLYHEDRAL OLIGOMERIC SILSESQUIOXANE AND N-ISOPROPYLACRYLAMIDE COPOLYMER." Acta Polymerica Sinica 010, no. 8 (2010): 1023–29. http://dx.doi.org/10.3724/sp.j.1105.2010.09320.

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46

Kedir, Chahineze Nawel, D. Salinas-Torres, A. F. Quintero-Jaime, Abdelghani Benyoucef, and Emilia Morallon. "Hydrogels obtained from aniline and piperazine: Synthesis, characterization and their application in hybrid supercapacitors." Journal of Molecular Structure 1248 (January 2022): 131445. http://dx.doi.org/10.1016/j.molstruc.2021.131445.

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47

Chen, Qiang, Lin Zhu, Lina Huang, et al. "Fracture of the Physically Cross-Linked First Network in Hybrid Double Network Hydrogels." Macromolecules 47, no. 6 (2014): 2140–48. http://dx.doi.org/10.1021/ma402542r.

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Rose, Séverine, Alba Marcellan, Dominique Hourdet, Costantino Creton, and Tetsuharu Narita. "Dynamics of Hybrid Polyacrylamide Hydrogels Containing Silica Nanoparticles Studied by Dynamic Light Scattering." Macromolecules 46, no. 11 (2013): 4567–74. http://dx.doi.org/10.1021/ma4004874.

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49

Sharma, Pooja, and Rajeev Jindal. "Gum Dammar and poly(acrylamide)-based hydrogels and zirconium-based organic-inorganic hybrid materials for controlled drug delivery and their biodegradation studies." Polymer Bulletin 75, no. 9 (2017): 4175–90. http://dx.doi.org/10.1007/s00289-017-2261-2.

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50

Li, Jie, Yangzi Zhang, Longjiao Zhu, Keren Chen, Xiangyang Li, and Wentao Xu. "Smart Nucleic Acid Hydrogels with High Stimuli-Responsiveness in Biomedical Fields." International Journal of Molecular Sciences 23, no. 3 (2022): 1068. http://dx.doi.org/10.3390/ijms23031068.

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Abstract:
Due to their hydrophilic, biocompatible and adjustability properties, hydrogels have received a lot of attention. The introduction of nucleic acids has made hydrogels highly stimuli-responsiveness and they have become a new generation of intelligent biomaterials. In this review, the development and utilization of smart nucleic acid hydrogels (NAHs) with a high stimulation responsiveness were elaborated systematically. We discussed NAHs with a high stimuli-responsiveness, including pure NAHs and hybrid NAHs. In particular, four stimulation factors of NAHs were described in details, including pH
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