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Journal articles on the topic 'Dental Polymer'

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1

Lee, Jung-Hwan, Hae-Won Kim, and Seog-Jin Seo. "Polymer-Ceramic Bionanocomposites for Dental Application." Journal of Nanomaterials 2016 (2016): 1–8. http://dx.doi.org/10.1155/2016/3795976.

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Multiphasic bionanocomposites have been highlighted in the biotechnology field since they have offered mechanical flexibility during operation. This interest has been increased mainly through polymer/ceramic/metal manipulation techniques and modifications in formulation. Recently, a number of studies on bionanocomposites have been examined due to their favorable mechanical properties and cellular activities when compared to the neat polymers or polymer blends. This paper critically reviews recent applications of bionanocomposites for regeneration of pulp-dentin complex, periodontal ligament, a
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Stavreva, Natasha, and Biljana Kapusevska. "BIOCOMPATIBILITY AND REACTION OF DENTAL POLYMERS IN ORAL ENVIRONMENT." Teacher of the future 31, no. 4 (2019): 835–39. http://dx.doi.org/10.35120/kij3104835s.

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Dental polymers, commonly known as “Dental Resins” were first used in dentistry in 1839, and since then they have emerged as a favorable candidate for restorative dentistry and cosmetic and functional purposes. Many prosthesis and implants made from polymers have been in use for the last three decades and there is a continuous search for more biocompatible and stronger polymer prosthetic materials. Typical applications of polymers in dentistry are impression materials, relining materials, temporary crown materials, denture base materials, obturation materials (endodontic treatment), and fillin
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Heboyan, Artak, Muhammad Sohail Zafar, Mohmed Isaqali Karobari, and João Paulo Mendes Tribst. "Insights into Polymeric Materials for Prosthodontics and Dental Implantology." Materials 15, no. 15 (2022): 5383. http://dx.doi.org/10.3390/ma15155383.

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4

Vallittu, Pekka K. "Interpenetrating Polymer Networks (IPNs) in Dental Polymers and Composites." Journal of Adhesion Science and Technology 23, no. 7-8 (2009): 961–72. http://dx.doi.org/10.1163/156856109x432785.

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5

Murata, H., H. Chimori, T. Hamada, and J. F. McCabe. "Viscoelasticity of Dental Tissue Conditioners during the Sol-gel Transition." Journal of Dental Research 84, no. 4 (2005): 376–81. http://dx.doi.org/10.1177/154405910508400416.

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Formation of tissue conditioners is a process of polymer chain entanglements. This study evaluated the influence of composition and structure on dynamic viscoelasticity of concentrated polymer solutions based on poly(ethyl methacrylate) (PEMA) used as tissue conditioners through the sol-gel transition. The hypothesis was that the ethanol content is the most influential factor in determining gelation speed. Rheological parameters were determined with the use of a controlled-stress rheometer. Analysis of variance by orthogonal array L16(45) indicated that the strong polar bonding of ethanol (con
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Ali, Azam, Maree Gould, and Karl Lyons. "Development of an Organic–Inorganic Nanostructured Hybrid Dental Biocomposite." Journal of Nanoscience and Nanotechnology 20, no. 8 (2020): 5252–59. http://dx.doi.org/10.1166/jnn.2020.18527.

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Dental pathologies such as caries is one of the most prevalent diseases worldwide. Dental pulp contains stem cells capable of regenerating the dentine in the tooth, consequently, healthy dental pulp is essential for long term tooth survival. The aim of this study was to incorporate a variety of polymers that provide strength, an antibacterial substance and a protein-based polymer to provide cell support. These components were combined into a triphasic hybrid dental biocomposite (3HB), that together could provide regenerative properties for the pulp tissue. The 3HB biocomposite was incorporated
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Abouchenari, Aliasghar, Neda Tajbakhsh, AmirHosein Shahbaz, and Ghazal Alamdari-Mahd. "Advancements in dental implant technology: the impact of smart polymers utilized through 3D printing." Synthesis and Sintering 4, no. 2 (2024): 108–23. http://dx.doi.org/10.53063/synsint.2024.42211.

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The field of dental implantology has witnessed significant advancements in recent years, driven by innovations in materials science and manufacturing technologies. One such innovation that holds promise for revolutionizing dental implant generation is the mixing of smart polymers thru three-D printing. This evaluation article affords a comprehensive overview of the effect of clever polymers in enhancing the performance and functionality of dental implants. We begin by using elucidating the fundamental residences of smart polymers, which include their stimuli-responsive conduct, biocompatibilit
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8

NISHIYAMA, Norihiro. "Advance of Dental Polymer-Functional Monomer Promoting the Adhesiveness of Dental Polymer to Tooth." Kobunshi 47, no. 3 (1998): 146–49. http://dx.doi.org/10.1295/kobunshi.47.146.

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9

Arutyunov, S. D., E. V. Ippolitov, A. A. Pivovarov, and V. N. Tsarev. "Relationship between basic dental polymethyl methacrylate polymer roughness and surface topography and microbial biofilm formation using different polishing techniques." Kazan medical journal 95, no. 2 (2014): 224–31. http://dx.doi.org/10.17816/kmj2069.

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Aim. To determine the relationship between surface roughness and surface topography of the basic dental polymethyl methacrylate polymer polished by different methods and microbial adhesion of microorganisms (Porphyromonas gingivalis, Fusobacterium nucleatum and Streptococcus sanguis) and fungi (Candida albicans) causing periodontal diseases. Methods. Surface topography of the basic dental polymethyl methacrylate polymer was studied by atomic force microscopy; microbiological methods were used to study the adhesion of bacteria and Candida fungi causing periodontal diseases to the surfaces of th
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10

Venter, Sandro Aurélio de Souza, Gedalias Custódio Martim, Andressa Dos Santos, Tiago Roerto Detomini, Eduardo Radovanovic, and Emerson Marcelo Girotto. "Effect of the photoinitiator system on the properties of a dental material based on a hybrid polymer." Brazilian Dental Science 19, no. 1 (2016): 96. http://dx.doi.org/10.14295/bds.2016.v19i1.1233.

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<p><strong>Objective:</strong> In this study, the effects of two different cure protocols upon the properties of composites using a hybrid-polymer as dental resin were evaluated. <strong>Material and Methods:</strong> Two distinct dental composites were prepared, one containing a mixture of TEGDMA/bis-GMA (50:50) and, another containing a mixture of TEGDMA/p-MEMO (50:50), [p-MEMO: oligomeric inorganic precursor]. Both composites were polymerized with lucirin and canphorquinone as photoinitiators. The composites were made with a 70 % wt of inorganic filler. Flexura
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Chuchulska, Bozhana, Mariya Dimitrova, Boyan Dochev, and Kliment Georgiev. "Exploring Polymeric Surfaces Manufactured Under Different Temperature Conditions—A Preliminary Experimental Study of Hardness." J 8, no. 3 (2025): 22. https://doi.org/10.3390/j8030022.

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Polymers are essential materials in the fabrication of partial and complete dentures, where their mechanical properties directly impact durability, comfort, and clinical performance. This study examines the influence of different manufacturing temperatures on the surface hardness of polymeric materials used in dental applications. A total of 60 experimental samples with a rectangular shape of Vertex ThermoSens polymer (Vertex Dental, 3D Systems, Soesterberg, The Netherlands) were fabricated through injection molding at 280 °C and 300 °C and analyzed over time to assess changes in their propert
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12

Malik, Sharali, Felicite M. Ruddock, Adam H. Dowling, et al. "Graphene composites with dental and biomedical applicability." Beilstein Journal of Nanotechnology 9 (March 5, 2018): 801–8. http://dx.doi.org/10.3762/bjnano.9.73.

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Pure graphene in the form of few-layer graphene (FLG) – 1 to 6 layers – is biocompatible and non-cytotoxic. This makes FLG an ideal material to incorporate into dental polymers to increase their strength and durability. It is well known that graphene has high mechanical strength and has been shown to enhance the mechanical, physical and chemical properties of biomaterials. However, for commercial applicability, methods to produce larger than lab-scale quantities of graphene are required. Here, we present a simple method to make large quantities of FLG starting with commercially available multi
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13

Karadag, Mecit, Emrah Dolekcekic, Murat Erdem, and Mutlu Özcan. "Effect of Stearyl Methacrylate Comonomer on the Mechanical and Physical Properties of Dimethacrylate-Based Dental Resins." Materials 17, no. 16 (2024): 4136. http://dx.doi.org/10.3390/ma17164136.

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This study evaluated the effect of stearyl methacrylate addition on the physical and mechanical properties of bisphenol A glycidyl methacrylate- and triethylene glycol dimethacrylate-based polymers, which are traditionally used in dental applications. Methacrylate-based monomer compositions are polymerized under the visible blue light spectrum. An analysis of double bond conversion, surface microhardness test, three-point bending test and water sorption and water solubility were tested to determine the physical and mechanical properties of the dental polymers. The results indicated that steary
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14

Lafebre Carrasco, Milton Fabricio, Bryam Paul Taboada Brito, and Viventa Jannett Renteria Guerrero. "Microleakage of bulk fill polymer-based composite: review of the literature." Journal of Dental Health, Oral Disorders & Therapy 13, no. 4 (2022): 77–81. http://dx.doi.org/10.15406/jdhodt.2022.13.00577.

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Currently, the most widely used dental restoration materials in the field of dental aesthetics are polymer-based composite; therefore, the offer within the market is increasing with a focus on aesthetic, mechanical, and process improvement needs. Bulk fill or block filling polymer-based composite has been widely accepted, they have an advantage because they can be placed in blocks of up to 4 to 5 mm1 reducing clinical times in contrast to traditional polymer-based composite. Therefore, within the present study, we have focused on investigating the microleakage of this type of polymer-based com
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15

Chisnoiu, Radu Marcel, Alexandrina Muntean, Ovidiu Păstrav, et al. "Polymer Mixtures for Experimental Self-Limited Dental Burs Development—A Preliminary Approach (Part 1)." Journal of Functional Biomaterials 14, no. 9 (2023): 447. http://dx.doi.org/10.3390/jfb14090447.

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Alternative techniques have been investigated for effectiveness in caries removal because conventional metallic dental burs can lead to an excessive loss of sound tissue. The aim of the present study is to realize a preliminary approach in obtaining effective polymer mixtures for polymeric bur development, capable of removing primary dental caries using combinations of polymers to ensure the requirements for such instruments, but also a greater compatibility with the teeth structure. This study assessed the main mechanical properties, water sorption, solubility and microscopic structure of fou
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16

K, R. Navaneethakrishnan, Kumar Prabath Udaya Kumar Sanjey, R. Murali M, et al. "Cytotoxicity Testing of Dental Materials." Indian Journal of Science and Technology 16, no. 27 (2023): 2035–39. https://doi.org/10.17485/IJST/v16i27.KRN.

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Abstract <strong>Objectives:</strong>&nbsp;In this manuscript, we aim to review and evaluate the cytotoxicity data of 16 dental materials that have been generated in our laboratory over the past five years.<strong>&nbsp;Methods:</strong>&nbsp;Cytotoxicity data of dental materials generated in our laboratory over the past five years were retrieved from the archives. We collected and analyzed detailed information regarding the dental materials, tests conducted, regulatory standards followed, and the results obtained.&nbsp;<strong>Findings:</strong>&nbsp;Our laboratory conducted tests on a total
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17

Ringenberg, L., A. Winkel, O. Kufelt, P. Behrens, M. Stiesch, and W. Heuer. "The Effectiveness of Poly-(4-vinyl-N-hexylpyridiniumbromide) as an Antibacterial Implant Coating: AnIn VitroStudy." International Journal of Dentistry 2011 (2011): 1–11. http://dx.doi.org/10.1155/2011/859140.

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The clinical success of osseointegrated dental implants depends on the strong attachment of the surrounding hard and soft tissues. Bacterial adhesion on implant surfaces can cause inflammatory reactions and may influence healing and long-term success of dental implants. Promising implant coatings should minimize bacterial adhesion, but allow epithelial and connective tissue attachment. Therefore, the present study has examined the bioactive effect of poly-(4-vinyl-N-hexylpyridiniumbromide) regarding typical oral bacteria as well as cytotoxicitiy to human cells considering different methods of
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18

Lee, Du-Hyeong. "Dental application of Polyaryletherketone for fixed dental prostheses." Journal of The Korean Dental Association 56, no. 3 (2018): 152–58. http://dx.doi.org/10.22974/jkda.2018.56.3.003.

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Polyaryletherketone (PAEK) is recently introduced in dentistry. The polymer has superior mechanical and chemical properties compared to previous dental materials. PAEK has been explored for lots of applications for clinical dentistry. The prostheses can be made by the injection molding or milling techniques. Recent studies focus on improving the bioactivity of PAEK and expanding the application. The purpose of this article is to introduce the basic features, chemical structure and various clinical applications in fixed dental prostheses. Further research and clinical trials will be needed to c
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19

Mitalova, Zuzana, Jan Duplak, Dariana Duplakova, Dusan Mital, and Juliana Litecka. "PEEK-Polymer for Dental Implants: A Concise Review." Materiale Plastice 61, no. 1 (2024): 185–92. http://dx.doi.org/10.37358/mp.24.1.5713.

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The biomaterials applicable in dental implantology, or implantology generally, are subject to specific requirements, namely biocompatibility, osseointegration, resistance to fracture/ oxidative degradation/ long-term compressive stress/ hydrolisis in boiling water, suitable morphology, suitable physical properties (including mechanical properties), aesthetics, etc. When selecting a suitable material for dental implants, it is also necessary to consider the patient s current health condition and possible complications when placing titanium implants and alloys. If there is a risk of an allergic
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20

Lewandowska, Małgorzata, Joanna Siejka-Kulczyk, Mariusz Andrzejczuk, and Krzysztof Jan Kurzydlowski. "Nanomaterials in Dental Applications." Solid State Phenomena 140 (October 2008): 133–40. http://dx.doi.org/10.4028/www.scientific.net/ssp.140.133.

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Currently, nanopowders and nanocomposites reinforced with nanofillers are one of the most rapidly developing groups of materials possessing excellent prospects for a wide range of industrial and medical applications. This paper presents several examples of the nanomaterials developed in the Faculty of Materials Science and Engineering of Warsaw University of Technology which can have dental applications. Ceramic-polymer composites are the most popular materials for dental fillings. The influence of the nanofiller additions on the relevant properties of ceramic-polymer dental composites are dis
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21

Mai, Hang-Nga, Dong Choon Hyun, Ju Hayng Park, Do-Yeon Kim, Sang Min Lee, and Du-Hyeong Lee. "Antibacterial Drug-Release Polydimethylsiloxane Coating for 3D-Printing Dental Polymer: Surface Alterations and Antimicrobial Effects." Pharmaceuticals 13, no. 10 (2020): 304. http://dx.doi.org/10.3390/ph13100304.

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Polymers are the most commonly used material for three-dimensional (3D) printing in dentistry; however, the high porosity and water absorptiveness of the material adversely influence biofilm formation on the surface of the 3D-printed dental prostheses. This study evaluated the effects of a newly developed chlorhexidine (CHX)-loaded polydimethylsiloxane (PDMS)-based coating material on the surface microstructure, surface wettability and antibacterial activity of 3D-printing dental polymer. First, mesoporous silica nanoparticles (MSN) were used to encapsulate CHX, and the combination was added t
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22

Arutyunov, Sergey, Levon Kirakosyan, Lubov Dubova, et al. "Microbial Adhesion to Dental Polymers for Conventional, Computer-Aided Subtractive and Additive Manufacturing: A Comparative In Vitro Study." Journal of Functional Biomaterials 13, no. 2 (2022): 42. http://dx.doi.org/10.3390/jfb13020042.

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Modern structural materials are represented by a variety of polymer materials used for dental patients’ rehabilitation. They differ not only in physico-chemical properties, but also in microbiological properties, which is one of the reasons why these materials are chosen. The study focused on the microbial adhesion of clinical isolates of normal (5 types), periodontopathogenic (2 types), and fungal (2 types) microbiotas to various materials based on polymethylmethacrylate (PMMA) intended for traditional (cold-cured and hot-cured polymers), computer-aided subtractive and additive manufacturing.
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23

He, Li-Hong, and Michael Swain. "A novel polymer infiltrated ceramic dental material." Dental Materials 27, no. 6 (2011): 527–34. http://dx.doi.org/10.1016/j.dental.2011.02.002.

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Leporatti, Stefano. "Polymer Clay Nano-Composites." Polymers 11, no. 9 (2019): 1445. http://dx.doi.org/10.3390/polym11091445.

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Clay–polymer composite materials is an exciting area of research and this Special Issue aims to address the current state-of-the-art of “Polymer Clay Nano-Composites” for several applications, among them antibacterial, environmental, water remediation, dental, drug delivery and others [...]
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Barszczewska-Rybarek, Izabela Maria. "A Guide through the Dental Dimethacrylate Polymer Network Structural Characterization and Interpretation of Physico-Mechanical Properties." Materials 12, no. 24 (2019): 4057. http://dx.doi.org/10.3390/ma12244057.

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Material characterization by the determination of relationships between structure and properties at different scales is essential for contemporary material engineering. This review article provides a summary of such studies on dimethacrylate polymer networks. These polymers serve as photocuring organic matrices in the composite dental restorative materials. The polymer network structure was discussed from the perspective of the following three aspects: the chemical structure, molecular structure (characterized by the degree of conversion and crosslink density (chemical as well as physical)), a
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González-Henríquez, Carmen, Mauricio Sarabia-Vallejos, and Juan Rodríguez Hernandez. "Antimicrobial Polymers for Additive Manufacturing." International Journal of Molecular Sciences 20, no. 5 (2019): 1210. http://dx.doi.org/10.3390/ijms20051210.

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Three-dimensional (3D) printing technologies can be widely used for producing detailed geometries based on individual and particular demands. Some applications are related to the production of personalized devices, implants (orthopedic and dental), drug dosage forms (antibacterial, immunosuppressive, anti-inflammatory, etc.), or 3D implants that contain active pharmaceutical treatments, which favor cellular proliferation and tissue regeneration. This review is focused on the generation of 3D printed polymer-based objects that present antibacterial properties. Two main different alternatives of
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TIMOSHIN, Anton, Nikolay MITIN, Alexander OLEYNIKOV, Maria TIMOSHINA, and Evgeniya MITINA. "CLINICAL AND LABORATORY TESTING OF A NEW MODIFICATION OF TWO-LAYER "SILEP" DENTURES USED IN PROSTHETIC DENTISTRY." SOUTHERN BRAZILIAN JOURNAL OF CHEMISTRY 28, no. 28 (2020): 53–62. http://dx.doi.org/10.48141/sbjchem.v28.n28.2020.08_timoshin_pgs_53_62.pdf.

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Dentistry is a part of medicine, where various polymer materials were used for the first time. Many factors forced researchers to find more stable, versatile, and hygienic materials for the manufacture of dental products. It is important to note that the search for the ideal polymer dental material is still ongoing. This is because modern polymers, in some cases, do not meet the specified requirements for chemical, physical, strength, and elastic properties. Based on the data on the method of creating and using silicone material for the base of the removable prosthesis "Gossil", an improved si
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Timoshin, Anton, Nikolay Mitin, Alexander Oleynikov, Maria Timoshina, and Evgeniya Mitina. "Clinical and Laboratory Testing of a New Modification of Two-Layer "Silep" Dentures Used in Prosthetic Dentistry." Southern Brazilian Journal of Chemistry 28, no. 28 (2020): 53–62. http://dx.doi.org/10.37633/sbjc.28(28)2020.53-62.

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Dentistry is a part of medicine, where various polymer materials were used for the first time. Many factors forced researchers to find more stable, versatile, and hygienic materials for the manufacture of dental products. It is important to note that the search for the ideal polymer dental material is still ongoing. This is because modern polymers, in some cases, do not meet the specified requirements for chemical, physical, strength, and elastic properties. Based on the data on the method of creating and using silicone material for the base of the removable prosthesis "Gossil", an improved si
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29

Yakovishin, L. A., and E. V. Tkachenko. "Composite materials based on dental acrylic plastic and chitosan." Chimica Techno Acta 8, no. 4 (2021): 20218413. http://dx.doi.org/10.15826/chimtech.2021.8.4.13.

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Chitosan and poly(methyl methacrylate) (PMMA) composites were synthesized by polymerization with heating and mechanochemical method. The obtained polymer composites were analyzed by the ATR FT-IR spectroscopy method. The presence of intermolecular hydrogen bonds and hydrophobic interactions in formation of PMMA and chitosan polymer composites was shown.
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Zhang, Runsheng, Megan M. Jones, Hoda Moussa, et al. "Polymer–antibiotic conjugates as antibacterial additives in dental resins." Biomaterials Science 7, no. 1 (2019): 287–95. http://dx.doi.org/10.1039/c8bm01228h.

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31

Lesko, Lubos, Petra Jungova, Martina Culenova, Andrej Thurzo, and Lubos Danisovic. "Polymer-Based Scaffolds as an Implantable Material in Regenerative Dentistry: A Review." Journal of Functional Biomaterials 16, no. 3 (2025): 80. https://doi.org/10.3390/jfb16030080.

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Polymer-based scaffolds have emerged as transformative materials in regenerative dentistry, enabling the restoration and replacement of dental tissues through tissue engineering approaches. These scaffolds, derived from natural and synthetic polymers, mimic the extracellular matrix to promote cellular attachment, proliferation, and differentiation. Natural polymers such as collagen, chitosan, and alginate offer biocompatibility and bioactivity, while synthetic alternatives like polylactic acid (PLA) and polycaprolactone (PCL) provide tunable mechanical properties and degradation rates. Recent
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32

Ashraf, Cheruvu Mohammed, Sujesh M, Ravi Kumar C, Rajanikanth A, Chalapathi Rao Duggineni, and Sunitha K. "An overview of applications of PEEK polymer in prosthodontics." International Journal of Dental Materials 04, no. 02 (2022): 42–45. http://dx.doi.org/10.37983/ijdm.2022.4204.

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he rapid evolution of computer-aided design and computer-aided manufacturing (CAD-CAM) led to the introduction of newer materials that could be precisely milled for the fabrication of dental prostheses. PEEK (PolyEtherEtherKetone) has been explored for a number of applications for clinical dentistry, including removable dental prostheses, fixed dental prostheses, implant-supported prostheses, resin-bonded fixed dental prostheses and implant-retained overdentures. The major beneficial property of PEEK is its lower Young's modulus, and as elastic as bone, providing a cushioning effect and reduct
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Ashraf, Cheruvu Mohammed, Sujesh M, Ravi Kumar C, Rajanikanth A, Chalapathi Rao Duggineni, and Sunitha K. "An overview of applications of PEEK polymer in prosthodontics." International Journal of Dental Materials 04, no. 02 (2022): 42–45. http://dx.doi.org/10.37983/ijdm.2022.4204.

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he rapid evolution of computer-aided design and computer-aided manufacturing (CAD-CAM) led to the introduction of newer materials that could be precisely milled for the fabrication of dental prostheses. PEEK (PolyEtherEtherKetone) has been explored for a number of applications for clinical dentistry, including removable dental prostheses, fixed dental prostheses, implant-supported prostheses, resin-bonded fixed dental prostheses and implant-retained overdentures. The major beneficial property of PEEK is its lower Young's modulus, and as elastic as bone, providing a cushioning effect and reduct
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34

Poliukhovych, Yuliia, Andrii Demkovych, and Yurii Bondarenko. "CHARACTERISTICS OF THERMOPLASTIC POLYMER DENTURE BASE MATERIALS FOR PROSTHODONTIC CONSTRUCTIONS." Eastern Ukrainian Medical Journal 12, no. 3 (2024): 466–75. http://dx.doi.org/10.21272/eumj.2024;12(3):466-475.

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Introduction. In dentistry, there is a wide range of thermoplastic polymers for the removable constructions of dental prostheses, which are extremely promising in modern dental practice. Successful prosthetics of patients will depend on the properties of the selected structural materials.. Purpose of the study was to summarize current information, based on a review of literary sources, on the use of thermoplastic base materials for the manufacture of removable prostheses and improves the effectiveness of orthopedic treatment of patients with complete or partial absence of teeth. Methods. A lit
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Khafizova, F. A., R. M. Mirgazizov, I. R. Khafizov, and Y. A. Ulyanov. "Efficiency of cleaning dental structural polymer materials and their resistance to biofouling." Russian Journal of Dentistry 24, no. 4 (2020): 206–10. http://dx.doi.org/10.17816/1728-2802-2020-24-4-206-210.

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Aim. The formation of biofilms, involving microorganisms from the oral cavity, on the surface of various structural dental materials was investigated. Flexistron Plus, Dentalos Plus, and PEEK are used in dental orthopedic practice for prosthetics.&#x0D; Materials and methods. The difference in quantity depends on the structure and type of plastics, as well as on their mechanical cleaning. All the plastic samples were obtained using atomic force microscopy, which made it possible to detect differences in the microstructure and microrelief of all the types of plastics and to demonstrate bacteria
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Verma, Damini, Amit K. Yadav, Garima Rathee, Kunaal Dhingra, Maumita Das Mukherjee, and Pratima R. Solanki. "Review—Prospects of Nanomaterial-Based Biosensors: A Smart Approach for Bisphenol-A Detection in Dental Sealants." Journal of The Electrochemical Society 169, no. 2 (2022): 027516. http://dx.doi.org/10.1149/1945-7111/ac51fc.

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The use of Bisphenol-A (BPA) and its derivatives are rapidly increasing in dentistry for dental sealants and composite filling materials. The release of BPA from polymerized resin into saliva has aroused considerable concern regarding exposure to xenoestrogen by dental treatment. Many shreds of evidence have stated that leakage of BPA and its derivatives has posed health risks problems due to its endocrine-disrupting estrogenic properties. Various conventional techniques were designed for estimating leached BPA from dental sealants but having lengthy, complex procedures and requirements of tec
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Biris, Carmen, Edwin Sever Bechir, Anamaria Bechir, et al. "Trinia Reinforced Polymer as Core for Implants Superstructure." Materiale Plastice 54, no. 4 (2017): 762–67. http://dx.doi.org/10.37358/mp.17.4.4941.

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The intraosseous implants are the most used dental implants. The development of new classes of dental biomaterials determined the apparition of Trinia, a Computer-Aided Design/Computer-Aided Manufacturing (CAD/CAM) reinforced polymer, used for core in non-metallic prosthetic restorations, including implants superstructure. The aim of the study was to present the obtained results in the use of Trinia polymer as non-metallic core on the abutments of Bicon implants. 35 patients were selected, 19 females and 16 males, aged between 31 and 60 years. After 18 months of results monitoring, we ascertai
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Ciocan, Lucian Toma, Jana Ghitman, Vlad Gabriel Vasilescu, and Horia Iovu. "Mechanical Properties of Polymer-Based Blanks for Machined Dental Restorations." Materials 14, no. 23 (2021): 7293. http://dx.doi.org/10.3390/ma14237293.

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The tremendous technological and dental material progress led to a progressive advancement of treatment technologies and materials in restorative dentistry and prosthodontics. In this approach, CAD/CAM restorations have proven to be valuable restorative dental materials in both provisional and definitive restoration, owing to multifarious design, improved and highly tunable mechanical, physical and morphological properties. Thus far, the dentistry market offers a wide range of CAD/CAM restorative dental materials with highly sophisticated design and proper characteristics for a particular clin
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39

Lim, Alane. "Cleaning and cooling teeth while preventing COVID-19 cross-infection." Scilight 2023, no. 9 (2023): 091104. http://dx.doi.org/10.1063/10.0017359.

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40

Bredov, N. S., A. A. Bykovskaya, Nguyen Van Tuan, et al. "Oligomeric Silsesquioxane–Siloxane Modifiers for Polymer Dental Compounds." Polymer Science, Series B 62, no. 3 (2020): 182–89. http://dx.doi.org/10.1134/s1560090420030033.

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41

Borchardt, John K. "Polymer composites bring a smile to dental fillings." Materials Today 8, no. 11 (2005): 19. http://dx.doi.org/10.1016/s1369-7021(05)71148-2.

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42

Lygre, Henning, Paul Johan Høl, Einar Solheim, and Grete Moe. "Organic leachables from polymer-based dental filling materials." European Journal of Oral Sciences 107, no. 5 (1999): 378–83. http://dx.doi.org/10.1046/j.0909-8836.1999.eos107509.x.

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43

Ferracane, Jack L. "Hygroscopic and hydrolytic effects in dental polymer networks." Dental Materials 22, no. 3 (2006): 211–22. http://dx.doi.org/10.1016/j.dental.2005.05.005.

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44

Osorio, R., E. Osorio, Al Medina-Castillo, and M. Toledano. "Polymer nanocarriers as new fillers for dental adhesives." Dental Materials 30 (2014): e50-e51. http://dx.doi.org/10.1016/j.dental.2014.08.101.

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45

Boussès, Y., N. Brulat-Bouchard, and Y. Tillier. "Effects of ageing on glass-polymer dental composites." Computer Methods in Biomechanics and Biomedical Engineering 23, sup1 (2020): S47—S48. http://dx.doi.org/10.1080/10255842.2020.1822044.

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46

P, Widiyanti, and Siswanto Siswanto. "In vivo characterization of polymer based dental cements." Dental Journal (Majalah Kedokteran Gigi) 44, no. 4 (2011): 173. http://dx.doi.org/10.20473/j.djmkg.v44.i4.p173-176.

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47

He, Li-Hong, David Purton, and Michael Swain. "A novel polymer infiltrated ceramic for dental simulation." Journal of Materials Science: Materials in Medicine 22, no. 7 (2011): 1639–43. http://dx.doi.org/10.1007/s10856-011-4350-3.

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48

Cui, Ben-Cang, Jing Li, Yuan-Hua Lin, et al. "Polymer-infiltrated layered silicates for dental restorative materials." Rare Metals 38, no. 11 (2019): 1003–14. http://dx.doi.org/10.1007/s12598-019-01267-6.

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49

Kim, Tae-Yang, Min-Jeong Lee, and Eun-Mi Choi. "Extraction characteristics of dental polymer-based hand instruments." Korean Journal of Dental Materials 50, no. 1 (2023): 17–28. http://dx.doi.org/10.14815/kjdm.2023.50.1.17.

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50

Kushkhov, Tembulat A., Diana A. Makhieva, Larisa V. Kardanova, Marina T. Tkhazaplizheva, and Adalbi Z. Khashukoev. "The Use of Polymeric Materials in Modern Dentistry." Key Engineering Materials 899 (September 8, 2021): 613–18. http://dx.doi.org/10.4028/www.scientific.net/kem.899.613.

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The achievements and discoveries of chemical science have firmly established themselves in all branches of humanity. One of the most significant chemistry possibilities is the polymerization and polycondensation of compounds, which, in turn, are methods for producing polymers. Polymers are high molecular weight compounds consisting of many units (monomers) linked by chemical bonds. Unique polymer compounds are the basis of plastics, chemical fibers, rubber, paints, and varnishes, adhesives [8]. Polymers are used for the manufacture of removable prostheses, materials for fillings and inlays, or
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