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Articles

The Effect of Tungsten Sulfide Fullerene-Like Nanoparticles on the Toughness of Epoxy Adhesives

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Pages 1083-1095 | Published online: 02 Apr 2012

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Hongfeng Li, Liwei Zhao, Yingjie Qiao, Xuefeng Bai, Dezhi Wang, Chunyan Qu, Wanbao Xiao & Yongqiang Wang. (2023) Toughening of benzoxazine structural adhesives and surface films. Journal of Adhesion Science and Technology 37:4, pages 740-754.
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Milica Marjanović, Danica Bajić, Srdja Perković, Bojana Fidanovski, Zijah Burzić, Lidija Matija & Dragoljub Bekrić. (2021) Inorganic fullerene-like nanoparticles and nanotubes of tungsten disulfide as reinforcement of carbon-epoxy composites. Fullerenes, Nanotubes and Carbon Nanostructures 29:12, pages 1034-1044.
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Ayesha Kausar. (2021) Fullerene Nanofiller Reinforced Epoxy Nanocomposites—Developments, Progress and Challenges. Materials Research Innovations 25:3, pages 175-185.
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Mohammad Chavooshian, Rahman Kamali, Abolfazl Tutunchi & Abbas Kianvash. (2017) Effect of silicon carbide nanoparticles on the adhesion strength of steel–epoxy composite joints bonded with acrylic adhesives. Journal of Adhesion Science and Technology 31:4, pages 345-357.
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Abolfazl Tutunchi, Rahman Kamali & Abbas Kianvash. (2016) Effect of Al2O3 nanoparticles on the steel-glass/epoxy composite joint bonded by a two-component structural acrylic adhesive. Soft Materials 14:1, pages 1-8.
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Abolfazl Tutunchi, Rahman Kamali & Abbas Kianvash. (2015) Steel-Epoxy Composite Joints Bonded with Nano-TiO2 Reinforced Structural Acrylic Adhesive. The Journal of Adhesion 91:9, pages 663-676.
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M. Yadollahi, S. Barkhordari, I. Gholamali & S. Farhoudian. (2015) Effect of nanofillers on adhesion strength of steel joints bonded with acrylic adhesives. Science and Technology of Welding and Joining 20:5, pages 443-450.
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Abolfazl Tutunchi, Rahman Kamali & Abbas Kianvash. (2015) Adhesive strength of steel–epoxy composite joints bonded with structural acrylic adhesives filled with silica nanoparticles. Journal of Adhesion Science and Technology 29:3, pages 195-206.
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Nagarjuna Reddy Paluvai, Smita Mohanty & S.K. Nayak. (2014) Synthesis and Modifications of Epoxy Resins and Their Composites: A Review. Polymer-Plastics Technology and Engineering 53:16, pages 1723-1758.
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G. Goldberg, H. Dodiuk, S. Kenig & R. Cohen. (2014) The effect of multiwall carbon nanotubes on the properties of room temperature-vulcanized silicone adhesives. Journal of Adhesion Science and Technology 28:17, pages 1661-1676.
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H. Dodiuk, O. Kariv, S. Kenig & R. Tenne. (2014) The effect of tungsten disulphide nanoparticles on the properties of polyurethane adhesives. Journal of Adhesion Science and Technology 28:1, pages 38-52.
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Hendrik Lützen & Andreas Hartwig. (2013) Highly cross-linked but tough: combination of contradicting properties in cationically polymerized epoxy-polyol adhesives. Journal of Adhesion Science and Technology 27:23, pages 2531-2541.
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Binling Chen, Hazel Tsui, Barrie Dams, Hussameldin M. Taha, Yanqiu Zhu & Richard J. Ball. (2023) High performance inorganic fullerene cage WS2 enhanced cement. Construction and Building Materials 404, pages 133305.
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Yarden Gercci, Natali Yosef-Tal, Tatyana Bendikov, Hanna Dodiuk, Samuel Kenig & Reshef Tenne. (2023) The Mechanical Properties Relationship of Radiation-Cured Nanocomposites Based on Acrylates and Cationic Polymerized Epoxies and the Composition of Silane-Modified Tungsten Disulfide Nanoparticles. Polymers 15:14, pages 3061.
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Sonjoy Dey, Krishnappa Manjunath, Alla Zak & Gurpreet Singh. (2023) WS 2 Nanotube-Embedded SiOC Fibermat Electrodes for Sodium-Ion Batteries . ACS Omega 8:11, pages 10126-10138.
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Gilad Gershoni, Hanna Dodiuk, Reshef Tenne & Samuel Kenig. (2023) Cationic Polymerized Epoxy and Radiation Cured Acrylate Blend Nanocomposites Based on WS2 Nanoparticles—Part A: Curing Processes and Kinetics. Journal of Composites Science 7:1, pages 41.
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Dhanapal Duraibabu, Srinivasan Ananda Kumar & Muthukaruppan Alagar. (2022) Tetra functional epoxy/polyhedral oligomeric silsesquioxane (POSS) nanocomposites with enhanced mechanical, thermal, anticorrosion and dielectric properties. Journal of Plastic Film & Sheeting 39:1, pages 52-79.
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Xiao‐Hui Yang, Kun Liu, Rui‐Qiong Dang, Ji‐Peng Guan, Shao‐Cong Guo, Ping Lan, Hong‐Quan Wang, Xiao‐Jun Shen & Shao‐Yun Fu. (2022) Enhanced tribological performance of epoxy nanocomposites by the hybridization of 2D nano‐WS 2 and graphene oxide nanosheets . Polymer Composites 44:1, pages 536-549.
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G. Gershoni, Y. Gercci, Hanna Dodiuk, S. Kenig & R. Tenne. 2022. Handbook of Thermoset Plastics. Handbook of Thermoset Plastics 891 915 .
O. Shepelev, S. Kenig & Hanna Dodiuk. 2022. Handbook of Thermoset Plastics. Handbook of Thermoset Plastics 833 890 .
Xi Luo, Xiao-Lu Pu, Xiao-Min Ding, Xiao-Feng Liu, Li Chen, Si-Chong Chen & Yu-Zhong Wang. (2021) Low Loading of Tannic Acid-Functionalized WS 2 Nanosheets for Robust Epoxy Nanocomposites . ACS Applied Nano Materials 4:10, pages 10419-10429.
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Wendong Zhu, Ya Cheng, Ce Wang, Nicola Pinna & Xiaofeng Lu. (2021) Transition metal sulfides meet electrospinning: versatile synthesis, distinct properties and prospective applications. Nanoscale 13:20, pages 9112-9146.
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S. Kenig, H. Dodiuk, G. Otorgust & S. Gomid. 2020. Progress in Adhesion and Adhesives. Progress in Adhesion and Adhesives 93 167 .
Ping Xiao, Josephus G. Buijnsters, Yanxi Zhao, Huan Yu, Xuelian Xu, Yujun Zhu, Duihai Tang, Junjiang Zhu & Zhen Zhao. (2019) Fullerene-like WS2 supported Pd catalyst for hydrogen evolution reaction. Journal of Catalysis 380, pages 215-223.
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Povilas Bertasius, Mark Shneider, Jan Macutkevic, Vytautas Samulionis, Juras Banys & Alla Zak. (2019) Dielectric Properties of Epoxy-Matrix Composites with Tungsten Disulfide Nanotubes. Journal of Nanomaterials 2019, pages 1-8.
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Sujoy Bose, Shyamoli Hazarika & Chandan Das. (2019) Fabrication of Mo/Co‐alumina‐coated kaolin‐based catalytic membrane for use in a catalytic membrane reactor. International Journal of Ceramic Engineering & Science 1:2, pages 103-116.
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M. Sheinbaum, L. Sheinbaum, O. Weizman, H. Dodiuk & S. Kenig. (2019) Toughening and enhancing mechanical and thermal properties of adhesives and glass-fiber reinforced epoxy composites by brominated epoxy. Composites Part B: Engineering 165, pages 604-612.
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Bhuvaneshwari Balasubramaniam, Govindasamy Sathiyan, Gadyam S. Palani, Nagesh R. Iyer & Raju Kumar Gupta. 2006. Materials Science and Technology. Materials Science and Technology 1 20 .
Lizzie Sheinbaum, Maria Sheinbaum, Orli Weizman, Hanna Dodiuk, Shay Dichter & Samuel Kenig. (2018) Toughening of epoxy systems by brominated epoxy. Polymer Engineering & Science 59:1, pages 206-215.
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Liulong Guo, Hongxia Yan, Zhengyan Chen, Qi Liu, Yuanbo Feng, Fan Ding & Yufeng Nie. (2018) Amino Functionalization of Reduced Graphene Oxide/Tungsten Disulfide Hybrids and Their Bismaleimide Composites with Enhanced Mechanical Properties. Polymers 10:11, pages 1199.
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Alexander Yu Polyakov, Alla Zak, Reshef Tenne, Eugene A Goodilin & Konstantin A Solntsev. (2018) Nanocomposites based on tubular and onion nanostructures of molybdenum and tungsten disulfides: inorganic design, functional properties and applications. Russian Chemical Reviews 87:3, pages 251-271.
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Milica Marjanović, Danica Simić, Srđa Perković, Jela Galović, Zijah Burzić, Ana Tasić & Slađan Grga. (2018) Carbon-epoxy composites reinforced with nano-structures of tungsten disulfide for potential use in aircraft structures. Scientific Technical Review 68:3, pages 13-17.
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Fang Xu, Takamichi Kobayashi, Zhuxian Yang, Toshimori Sekine, Hong Chang, Nannan Wang, Yongde Xia & Yanqiu Zhu. (2017) How the Toughest Inorganic Fullerene Cages Absorb Shockwave Pressures in a Protective Nanocomposite: Experimental Evidence from Two In Situ Investigations . ACS Nano 11:8, pages 8114-8121.
Crossref
L. Yadgarov, R. Popovitz‐Biro & R. Tenne. 2017. Handbook of Solid State Chemistry. Handbook of Solid State Chemistry 21 52 .
Dietmar Haba, Andreas J. Brunner & Christian Teichert. (2017) Atomic-Force Microscopy Investigations on Fracture Surfaces of Inorganic, Fullerene-Like WS 2 (IF-WS 2 )-epoxy Nanocomposites . Macromolecular Symposia 373:1, pages 1600127.
Crossref
Megha Sahu, Lakshmi Narashimhan, Om Prakash & Ashok M. Raichur. (2017) Noncovalently Functionalized Tungsten Disulfide Nanosheets for Enhanced Mechanical and Thermal Properties of Epoxy Nanocomposites. ACS Applied Materials & Interfaces 9:16, pages 14347-14357.
Crossref
Gilad Otorgust, Hanna Dodiuk, Shmuel Kenig & Reshef Tenne. (2017) Important insights into polyurethane nanocomposite-adhesives; a comparative study between INT-WS 2 and CNT. European Polymer Journal 89, pages 281-300.
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Arash Mojtabaei, Maryam Otadi, Vahabodin Goodarzi, Hossein Ali Khonakdar, Seyed Hassan Jafari, Uta Reuter & Udo Wagenknecht. (2017) Influence of fullerene-like tungsten disulfide (IF-WS 2 ) nanoparticles on thermal and dynamic mechanical properties of PP/EVA blends: Correlation with microstructure. Composites Part B: Engineering 111, pages 74-82.
Crossref
Leela S. Panchakarla & Reshef Tenne. 2017. Nanotechnology for Energy Sustainability. Nanotechnology for Energy Sustainability 745 780 .
Nannan Wang, Zhuxian Yang, Yuan Wang, Kunyapat Thummavichai, Yongde Xia, Oana Ghita & Yanqiu Zhu. (2017) Interface and properties of inorganic fullerene tungsten sulphide nanoparticle reinforced poly (ether ether ketone) nanocomposites. Results in Physics 7, pages 2417-2424.
Crossref
Dietmar Haba, Andreas J. Brunner, Michel Barbezat, Dmitri Spetter, Wolfgang Tremel & Gerald Pinter. (2016) Correlation of epoxy material properties with the toughening effect of fullerene-like WS2 nanoparticles. European Polymer Journal 84, pages 125-136.
Crossref
Song-Jeng Huang, Chia-Han Ho, Yishay Feldman & Reshef Tenne. (2016) Advanced AZ31 Mg alloy composites reinforced by WS2 nanotubes. Journal of Alloys and Compounds 654, pages 15-22.
Crossref
Ifat Kaplan-Ashiri & Reshef Tenne. (2015) On the Mechanical Properties of WS2 and MoS2 Nanotubes and Fullerene-Like Nanoparticles: In Situ Electron Microscopy Measurements. JOM 68:1, pages 151-167.
Crossref
Dietmar Haba, Andreas J. Brunner & Gerald Pinter. (2015) Dispersion of fullerene-like WS2 nanoparticles within epoxy and the resulting fracture mechanics. Composites Science and Technology 119, pages 55-61.
Crossref
G. Goldberg, H. Dodiuk, S. Kenig, R. Cohen & R. Tenne. (2014) The effect of tungsten disulfide nanotubes on the properties of silicone adhesives. International Journal of Adhesion and Adhesives 55, pages 77-81.
Crossref
Fang Xu, Chunze Yan, Yat-Tarng Shyng, Hong Chang, Yongde Xia & Yanqiu Zhu. (2014) Ultra-toughened nylon 12 nanocomposites reinforced with IF-WS 2 . Nanotechnology 25:32, pages 325701.
Crossref
Claudia Luhrs, Michael Moberg, Ashley Maxson, Luke Brewer & Sarath Menon. (2014) IF-WS2/Nanostructured Carbon Hybrids Generation and Their Characterization. Inorganics 2:2, pages 211-232.
Crossref
Olga Shepelev, Sam Kenig & Hanna Dodiuk. 2014. Handbook of Thermoset Plastics. Handbook of Thermoset Plastics 623 695 .
Mark Shneider, Hanna Dodiuk, Reshef Tenne & Shmuel Kenig. (2013) Nanoinduced morphology and enhanced properties of epoxy containing tungsten disulfide nanoparticles. Polymer Engineering & Science 53:12, pages 2624-2632.
Crossref
R. Tenne, R. Rosentsveig & A. Zak. (2013) Inorganic nanotubes and fullerene-like nanoparticles: Synthesis, mechanical properties, and applications. physica status solidi (a) 210:11, pages 2253-2258.
Crossref
Mark Shneider, Lev Rapoport, Alexey Moshkovich, Hanna Dodiuk, Shmuel Kenig, Reshef Tenne & Alla Zak. (2013) Tribological performance of the epoxy-based composite reinforced by WS 2 fullerene-like nanoparticles and nanotubes . physica status solidi (a) 210:11, pages 2298-2306.
Crossref
Michael Shtein, Roey Nadiv, Noa Lachman, H. Daniel Wagner & Oren Regev. (2013) Fracture behavior of nanotube–polymer composites: Insights on surface roughness and failure mechanism. Composites Science and Technology 87, pages 157-163.
Crossref
Mohammed Naffakh, Ana M. Díez-Pascual, Carlos Marco, Gary J. Ellis & Marián A. Gómez-Fatou. (2013) Opportunities and challenges in the use of inorganic fullerene-like nanoparticles to produce advanced polymer nanocomposites. Progress in Polymer Science 38:8, pages 1163-1231.
Crossref
Lena Yadgarov, Vincenzo Petrone, Rita Rosentsveig, Yishay Feldman, Reshef Tenne & Adolfo Senatore. (2013) Tribological studies of rhenium doped fullerene-like MoS2 nanoparticles in boundary, mixed and elasto-hydrodynamic lubrication conditions. Wear 297:1-2, pages 1103-1110.
Crossref
Roi Levi, Maya Bar-Sadan & Reshef Tenne. 2013. Springer Handbook of Nanomaterials. Springer Handbook of Nanomaterials 605 638 .
Nitzan Even, Lihi Adler-Abramovich, Ludmila Buzhansky, Hanna Dodiuk & Ehud Gazit. (2011) Improvement of the Mechanical Properties of Epoxy by Peptide Nanotube Fillers. Small 7:8, pages 1007-1011.
Crossref
Francis Leonard-Deepak, Carlos Fernando Castro-Guerrero, Sergio Mejía-Rosales & Miguel José-Yacamán. (2011) Structural transformation of tungsten oxide nanourchins into IF–WS2 nanoparticles: an aberration corrected STEM study. Nanoscale 3:12, pages 5076.
Crossref
Chaganti Srinivasa Reddy, Alla Zak & Eyal Zussman. (2011) WS2 nanotubes embedded in PMMA nanofibers as energy absorptive material. Journal of Materials Chemistry 21:40, pages 16086.
Crossref
Ronen Kreizman, Andrey N. Enyashin, Francis Leonard Deepak, Ana Albu-Yaron, Ronit Popovitz-Biro, Gotthard Seifert & Reshef Tenne. (2010) Synthesis of Core-Shell Inorganic Nanotubes. Advanced Functional Materials 20:15, pages 2459-2468.
Crossref

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