Academic literature on the topic 'Graphite nanostructures'

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Journal articles on the topic "Graphite nanostructures"

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Breus, Andrii, Sergey Abashin, Ivan Lukashov, Oleksii Serdiuk, and Oleg Baranov. "Catalytic synthesis of graphite oxide and graphite nanostructures in transient glow-to-arc plasma discharge." Aerospace technic and technology, no. 1 (February 24, 2022): 34–41. http://dx.doi.org/10.32620/aktt.2022.1.04.

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Carbon and carbon-based materials like graphene and graphene oxide exhibit a constantly expanding field of applications in science, medicine, and industry. However, their implementation is still hindered by the absence of a reliable, flexible, and highly productive method of synthesis. Most of the existing methods rely on the use of chemical reagents potentially dangerous for the environment. In this paper, a physical method based on the use of a transient glow-to-arc discharge is developed, and the carbon nanostructures are obtained during a single-step production in a plasma reactor. Argon a
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Stebeleva, Olesya P., Lyudmila V. Kashkina, Olga A. Vshivkova, and Andrey V. Minakov. "Application of high-speed hydrodynamic technology for the production of graphene nanosuspensions from natural graphites." Siberian Aerospace Journal 25, no. 4 (2024): 521–30. https://doi.org/10.31772/2712-8970-2024-25-4-521-530.

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Carbon nanostructures have been in the focus of world science for more than 25 years, since the discovery of fullerenes in 1985, single-walled carbon nanotubes in 1993, graphene in 2004, graphene quantum dots in 2004. Graphene is a monocrystalline graphite films (2D material) with a thickness of several atoms that are stable under environmental conditions and they have excellent electronic, mechanical, chemical, thermal and optical properties. All over the world, research and development of new methods of using graphene in various fields such as energy, oil production, materials science, and e
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Iijima, Sumio. "Closed graphene nanostructures." Proceedings, annual meeting, Electron Microscopy Society of America 53 (August 13, 1995): 194–95. http://dx.doi.org/10.1017/s0424820100137343.

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Graphene is named a single sheet of graphite, or a 2-D carbon hexagons network. The graphene structure has been observed in partially graphitized carbon which is familiar to electron microscopists and its HRTEM image properties were analyzed previously in detail. C60 molecules, which has brought a great excitements in interdisciplinary fields of science and technology, is basically the same graphene structure with a curvature. The individual C60 molecule can be imaged without difficulty by HRTEM. Many of fundamental problems with the molecule however are not solved by the HRTEM technique. On t
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Delgado-Notario, Juan A., Wojciech Knap, Vito Clericò, et al. "Enhanced terahertz detection of multigate graphene nanostructures." Nanophotonics 11, no. 3 (2022): 519–29. http://dx.doi.org/10.1515/nanoph-2021-0573.

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Abstract Terahertz (THz) waves have revealed a great potential for use in various fields and for a wide range of challenging applications. High-performance detectors are, however, vital for exploitation of THz technology. Graphene plasmonic THz detectors have proven to be promising optoelectronic devices, but improving their performance is still necessary. In this work, an asymmetric-dual-grating-gate graphene-terahertz-field-effect-transistor with a graphite back-gate was fabricated and characterized under illumination of 0.3 THz radiation in the temperature range from 4.5 K up to the room te
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Bouša, Daniel, Jan Luxa, David Sedmidubský, et al. "Nanosized graphane (C1H1.14)n by hydrogenation of carbon nanofibers by Birch reduction method." RSC Advances 6, no. 8 (2016): 6475–85. http://dx.doi.org/10.1039/c5ra22077g.

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Al-Saadi, D. A. Y., V. F. Pershin, B. N. Salimov, and S. A. Montaev. "Modification of graphite greases graphene nanostructures." Journal of Friction and Wear 38, no. 5 (2017): 355–58. http://dx.doi.org/10.3103/s1068366617050026.

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XU, C. X., X. W. SUN, B. J. CHEN, C. Q. SUN, and B. K. TAY. "NANOSTRUCTURAL ZnO FABRICATED BY VAPOR-PHASE TRANSPORT IN AIR." International Journal of Modern Physics B 18, no. 02 (2004): 225–32. http://dx.doi.org/10.1142/s0217979204023829.

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Nanostructural zinc oxide has been successfully fabricated by heating the mixture of ZnO and graphite powders in air. The growth of these zinc oxide nanostructures with respect to the growing time and temperature has been studied. The morphologies and the crystal structures have been characterized by scanning electronic microscopy and the X-ray diffraction. The results indicated that ZnO nanostructure formed mainly along the crystal orientation [002] on silicon substrate at moderate temperatures. The crystallization was improved by prolonging growth time and the morphologies mainly depended on
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Wu, Jian Fang, Hua Zhi Gu, and Lin Sheng Kou. "Formation of Carbon with One-Dimensional Nanostructure on the Surface of Graphite Coated by Ni-Salt." Advanced Materials Research 412 (November 2011): 374–77. http://dx.doi.org/10.4028/www.scientific.net/amr.412.374.

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In this paper, the catalyst precursors were coated on the surface of natural flake graphite with micron size by liquid coating method. Carbon with one-dimensional nanostructures formed on the surface of graphite after the heat treatment of the mixture of phenolic resin and coated graphite. The effects of the forms and amounts of catalyst precursors and the temperature on the formation of carbon with one-dimensional nanostructures were studied. And the thermal conductivities of the samples were measured. The results showed that the catalyst precursor with the form of NiO would be better. And th
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LI, WEI, ZHONGPING WANG, XINLI LENG, YAN LU, XIAOQING LIU, and LI WANG. "ORGANOMETALLIC NANOSTRUCTURES OF 1,4-DIBROMO-2,5-DIIODOBENZENE BY METAL IONS CONSTRUCTION ON HOPG SURFACE." Surface Review and Letters 23, no. 04 (2016): 1650020. http://dx.doi.org/10.1142/s0218625x16500207.

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Different organometallic nanostructures on highly oriented pyrolytic graphite (HOPG) have been synthesized by different metal ions coordinating with 1,4-Dibromo-2,5-diiodobenzene (C6H2Br2I2). Scanning tunneling microscopy (STM) images directly demonstrated the transformation of the nanostructure from self-assembled nanostructures formed by C6H2Br2I2 through halogen bond into organometallic network, formed by the dehalogenated C6H2Br2I2 molecules covalent bonded with metal ions. Moreover, by varying the concentrations of C6H2Br2I2 molecules or valence states of metal ions, organometallic struct
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Kuanyshbekov, Tilek, Kydyrmolla Akatan, Nazim Guseinov, et al. "Renewable Resources as Promising Materials for Obtaining Graphene Oxide-like Structures." Nanomaterials 14, no. 19 (2024): 1588. http://dx.doi.org/10.3390/nano14191588.

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Currently, one of the topical directions in the field of production and application of graphene-like nanostructures is the use of renewable natural raw materials, which have unlimited resources for an economically efficient large-scale yield of a product with environmental safety. In this regard, we present the production of graphene oxide (GO) from a renewable natural raw material of plant biomass, birch activated carbon (BAC), and a comparison of the obtained physicochemical, mechanical, and electrical properties of birch activated carbon–graphene oxide (BAC–GO) and graphite–graphene oxide (
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Dissertations / Theses on the topic "Graphite nanostructures"

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Espeland, Erlend. "Gold Nanostructures on Graphite." Thesis, Norges teknisk-naturvitenskapelige universitet, Institutt for fysikk, 2013. http://urn.kb.se/resolve?urn=urn:nbn:no:ntnu:diva-22433.

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Gold nanoparticles supported on a graphite substrate are prepared by thermal evaporation, and subsequently studied by X-ray photoelectron spectroscopy (XPS), temperature programmed desorption (TPD) of carbon monoxide and scanning electron microscopy (SEM).Increasing the amount of gold deposited leads to a shift of the desorption peak to higher temperatures, and the gold particles become larger.Depositing approximately the same amount of gold at different evaporation ratios does not seem to affect the desorption.Triangularly shaped gold particles appeared at higher evaporation rates.This is tho
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Scott, Shelley Ann. "Self-assembly of Sb and Bi nanostructures on graphite." Thesis, University of Canterbury. Physics and Astronomy, 2005. http://hdl.handle.net/10092/5562.

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Spontaneous pattern formation in the natural world provides a constant source of wonder. Remarkable similarities exist between the patterns observed in the likes of snowflake growth, electrodeposition, and bacterial colonies. The driving force which creates similar patterns from these seemingly different processes is a non-equilibrium growth environment, which results from a diffusion field at the structures' boundary. Thin film growth from the vapour phase is an interesting and technologically important non-equilibrium system. Particles deposited on atomically flat and weakly interacting sub
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Karlsen, Terje Kultom. "Gold and Platinum Surface Nanostructures on Highly Oriented Pyrolytic Graphite." Thesis, Norges teknisk-naturvitenskapelige universitet, Institutt for fysikk, 2012. http://urn.kb.se/resolve?urn=urn:nbn:no:ntnu:diva-19411.

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Self-assembled platinum and gold nanostructures, which are formed by evaporation and subsequent diffusion limited aggregation of metal on highly oriented pyrolytic graphite, have been studied by photoemission spectroscopy and scanning electron microscopy. Dendritic gold nanostructures were observed on samples onto which gold was evaporated at room temperature. For samples onto which gold was evaporated at reduced temperatures, no such dendrites were found. For samples evaporated with platinum, small nano-spiders were seen at low evaporation time, and more complex fractal structures at higher e
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Grigonis, A., L. Marcinauskas, M. Carnauskas, and R. Kaliasas. "Graphite Nanostructures Produce in the Acetylene, Argon-Acetylene and Argon-Hydrogen-Acetylene Plasmas." Thesis, Sumy State University, 2012. http://essuir.sumdu.edu.ua/handle/123456789/35388.

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The amorphous carbon films were deposited on silicon-metal substrates by plasma jet chemical vapor deposition (PJCVD) and plasma enchanted CVD (PECVD). PJCVD carbon coatings have been prepared at atmospheric pressure in Ar/ C2H2 and Ar/H2/C2H2 mixtures. The films prepared in Ar/C2H2 plasma are attributed to graphite-like carbon films. Addition of the hydrogen decreases growth rate and the surface roughness of the coatings, but coatings have low fraction of oxygen (~5 at.%) The formation of the nanocrystalline graphite was obtained in Ar/H2/C2H2 plasma. The carbon nanotubes were synthesed
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Tasci, Emre. "Generation And Simulations Of Nanostructures Of Cage Structures." Phd thesis, METU, 2007. http://etd.lib.metu.edu.tr/upload/12608619/index.pdf.

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This thesis proposes algorithms to construct various nanosystems such as nanotori, nanogear and nanojunctions based on graphite type structures, exploiting the observed pentagonal and heptagonal defects. These produced systems are then simulated to test for their thermal stability and for their electronic properties. A brief review of the methods used is also included.
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Diaz, Chacon Lurayni. "Influence de charges carbonées sur la dissipation thermique de nouveaux composites diélectriques." Thesis, Montpellier, 2016. http://www.theses.fr/2016MONTT320/document.

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La plupart des équipements électroniques et électriques sont enrobés ou encapsulés par de la résine epoxy, choisie pour ses qualités physiques, chimiques et surtout diélectriques. Cependant, ce matériau présente un inconvénient majeur : sa faible conductivité thermique (0.2 W/mK). Dans ce contexte, nous avons élaboré et caractérisé des composites epoxy / carbone dans le but d’améliorer la conductivité thermique de ce type de résine tout en conservant ses propriétés diélectriques. Nous avons ainsi testé le potentiel d’une large gamme de charges carbonées, de structures, formes et tailles variée
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Stankevičienė, Inga. "Synthesis and coatings production of carbonaceous nanostructures." Doctoral thesis, Lithuanian Academic Libraries Network (LABT), 2012. http://vddb.laba.lt/obj/LT-eLABa-0001:E.02~2012~D_20121017_111706-30788.

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Films and coatings of carbonaceous nanostructures are employed in nanoelectronics, biotechnology and other fields. The aim of the research was to synthesize multi-walled carbon nanotubes and graphite oxide and fabricate coatings thereof. Consequently, multi-walled carbon nanotubes and their coatings were synthesized by the catalytic chemical vapour deposition method. As-grown carbon nanotubes inevitably contain remains of metal catalyst particles. A method developed in the laboratory using CCl4 was successfully applied to remove the residual catalyst from the batch of synthesized carbon nanotu
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Gnanaprakasa, Tony Jefferson. "Surface Engineering and Synthesis of Graphene and Fullerene Based Nanostructures." Diss., The University of Arizona, 2016. http://hdl.handle.net/10150/605216.

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Graphene is a two-dimensional carbon structure that exhibits remarkable structure-property relations. Consequently, there has been immense effort undertaken towards developing methods for graphene synthesis. Chemical vapor deposition (CVD) and chemical exfoliation from colloidal suspensions are two common methods used for obtaining graphene films. However, the underlying experimental conditions have to be carefully optimized in order to obtain graphene films of controllable thickness and morphology. In this context, a significant part of this dissertation was devoted towards developing and imp
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Kang, Seungyeon. "Femtosecond laser direct writing of 3D metallic structures and 2D graphite." Thesis, Harvard University, 2014. http://dissertations.umi.com/gsas.harvard:11495.

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This thesis explores a novel methodology to fabricate three dimensional (3D) metal-dielectric structures, and two dimensional (2D) graphite layers for emerging metamaterials and graphene applications. The investigations we report here go beyond the limitations of conventional fabrication techniques that require multiple post-processing steps and/or are restricted to fabrication in two dimensions. Our method combines photoreduction mechanism with an ultrafast laser direct writing process in innovative ways. This study aims to open the doors to new ways of manufacturing nanoelectronic and nanoph
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Mahapatra, Ojas. "A scanning probe microscopy (SPM) study of Bi(110) nanostructures on highly oriented pyrolytic graphite (HOPG)." Thesis, University of Canterbury. Physics and Astronomy, 2013. http://hdl.handle.net/10092/8042.

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This research work is aimed at understanding the electronic properties of Bi(110) nanostructures. This study chiefly uses Scanning Tunneling Microscopy (STM), Scanning Tunneling Spectroscopy (STS) and Non Contact Atomic Force Microscope (NCAFM) to investigate the geometric and electronic structure of Bi(110) islands on highly oriented pyrolytic graphite (HOPG) substrate. STM measurements are the primary focus of the thesis which involves imaging the bismuth islands and study of its atomic structure. STM images of the Bi(110) islands reveal a ‘wedding cake’ profile of the bismuth islands that
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Books on the topic "Graphite nanostructures"

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Thomas, Philip James. Scanning tunnelling and scanning electron microscope investigations of self-organised supramolecular nanostructures on the basal plane of graphite. University of Birmingham, 1997.

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Mikhailov, Sergey. Physics and applications of graphene: Theory. InTech, 2011.

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Jorio, A. Raman spectroscopy in graphene related systems. Wiley-VCH, 2011.

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Enoki, Toshiaki, and Tsuneya Ando. Physics and Chemistry of Graphene: Graphene to Nanographene. Jenny Stanford Publishing, 2019.

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Enoki, Toshiaki, and Tsuneya Ando. Physics and Chemistry of Graphene: Graphene to Nanographene. Jenny Stanford Publishing, 2019.

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Enoki, Toshiaki, and Tsuneya Ando. Physics and Chemistry of Graphene: Graphene to Nanographene. Jenny Stanford Publishing, 2019.

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Physics and Chemistry of Graphene: Graphene to Nanographene. Taylor & Francis Group, 2019.

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Physics and Chemistry of Graphene. Taylor & Francis Group, 2013.

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Banadaki, Yaser M., and Safura Sharifi. Graphene Nanostructures. Jenny Stanford Publishing, 2019. http://dx.doi.org/10.1201/9780429022210.

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Graphene Nanostructures. Taylor & Francis Group, 2019.

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Book chapters on the topic "Graphite nanostructures"

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Kholmanov, I. N., C. Soldano, G. Faglia, and G. Sberveglieri. "Engineering of Graphite Bilayer Edges by Catalyst-Assisted Growth of Curved Graphene Structures." In Carbon Nanostructures. Springer Berlin Heidelberg, 2012. http://dx.doi.org/10.1007/978-3-642-20644-3_26.

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Penco, A., T. Svaldo-Lanero, M. Prato, et al. "Graphite Nanopatterning Through Interaction with Bio-organic Molecules." In Carbon Nanostructures. Springer Berlin Heidelberg, 2012. http://dx.doi.org/10.1007/978-3-642-20644-3_28.

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Ricciardella, F., I. Nasti, T. Polichetti, et al. "UV Lithography On Graphene Flakes Produced By Highly Oriented Pyrolitic Graphite Exfoliation Through Polydimethylsiloxane Rubbing." In Carbon Nanostructures. Springer Berlin Heidelberg, 2012. http://dx.doi.org/10.1007/978-3-642-20644-3_23.

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Lee, Kon Bae, Ki Seop Cho, Won Hee Lee, and Hoon Kwon. "Synthesis of ZnO Nanostructures by Thermal Evaporation on Graphite." In Solid State Phenomena. Trans Tech Publications Ltd., 2007. http://dx.doi.org/10.4028/3-908451-31-0.575.

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Topala, Pavel, Vitalie Besliu, and Laurentiu Marin. "Graphite Films Deposited on Metal Surface by Pulsed Electrical Discharge Machining." In Nanostructures and Thin Films for Multifunctional Applications. Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-30198-3_3.

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Yu. Sementsov, I., G. P. Prikhodko, S. L. Revo, A. V. Melezhyk, M. L. Pyatkovskiy, and V. V. Yanchenko. "Synthesis and Structural Peculiarities of the Exfoliated Graphite Modified by Carbon Nanostructures." In Hydrogen Materials Science and Chemistry of Carbon Nanomaterials. Springer Netherlands, 2004. http://dx.doi.org/10.1007/1-4020-2669-2_47.

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Khorkov, Kirill, Dmitriy Kochuev, Ruslan Chkalov, Valery Prokoshev, and Sergei Arakelian. "Nonlinear Dynamic Processes in Laser-Induced Transitions to Low-Dimensional Carbon Nanostructures in Bulk Graphite Unit." In New Trends in Nonlinear Dynamics. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-34724-6_14.

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Kouini, Benalia, and Hossem Belhamdi. "Graphene and Graphene Oxide as Nanofiller for Polymer Blends." In Carbon Nanostructures. Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-30207-8_9.

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Silva, Martin Kássio Leme, and Ivana Cesarino. "Graphene Functionalization and Nanopolymers." In Carbon Nanostructures. Springer Singapore, 2019. http://dx.doi.org/10.1007/978-981-32-9057-0_6.

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Insel, Mert Akin, Sena Nur Karabekiroglu, and Selcan Karakuş. "3D Graphene-Based Biosensors." In Carbon Nanostructures. Springer Nature Switzerland, 2023. http://dx.doi.org/10.1007/978-3-031-36249-1_6.

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Conference papers on the topic "Graphite nanostructures"

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Arun, Deepak, Barkha Rani, Sourav Ghosh, and David Jenkins. "Graphene-based Nanostructured Sensors and Antennas." In 2024 15th International Conference on Communications (COMM). IEEE, 2024. http://dx.doi.org/10.1109/comm62355.2024.10741396.

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Rahman, Mohammad Mizanur. "A Promising Coating of Nanostructured Graphene-Ceria Nanofillers in Polyurethane for Corrosion Protection." In CORROSION 2017. NACE International, 2017. https://doi.org/10.5006/c2017-09217.

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Abstract A proper combination of graphene and metal oxide nanoparticles has been considered as an efficient reinforcement material in developing next-generation multifunctional coatings. In this study a simple method has been applied to fabricate graphene nanocomposite with the inclusion of cerium oxide (CeO2) nanoparticles which can be effectively implemented as a reinforcement material in polyurethane (PU) coatings for corrosion protection. The corrosion resistance of mild steel coated with a PU coating containing graphene/CeO2 was pointedly higher than with a pure PU coating and a PU coatin
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Elamkulavan, Hasana Jahan, M. Sanjay Subramaniam, Jatinderbir Singh, Nikhil Puthiyapurayil, Athulya Kadeprath Satheesan, and Chandrasekharan Keloth. "Cavity-Assisted Fluorescence Enhancement of Graphene Quantum Dot Nanostructures." In 2023 IEEE Workshop on Recent Advances in Photonics (WRAP). IEEE, 2023. http://dx.doi.org/10.1109/wrap59682.2023.10712850.

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Ogawa, Shinpei, Manabu Iwakawa, Shoichiro Fukushima, and Masaaki Shimatani. "Graphene-metagrating hybrid nanostructures for advanced functional infrared sensors." In Infrared Technology and Applications LI, edited by David Z. Ting, Gabor F. Fulop, Masafumi Kimata, and Michael H. MacDougal. SPIE, 2025. https://doi.org/10.1117/12.3052217.

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Advincula, Rigoberto C. "Nanostructured and Superhydrophobic Coatings against Corrosion." In CORROSION 2017. NACE International, 2017. https://doi.org/10.5006/c2017-09429.

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Abstract The understanding and use of nanostructuring enable the utilization of nanomaterials and their ordering to achieve a desired property or a synergistic effect in which the minimum percolation threshold is obtained. In the case of nano clays, nanotubes, and graphene, this can be achieved by forming a highly networked structure, by planarized orientation of the platelets, and forming “house of cards” structures. In our work, nanostructuring can be achieved by a hierarchy of roughness or the mimicking of the lotus leaf structure. This involves the use of conducting polymers and stimuli-re
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Shuvo, Mohammad Arif Ishtiaque, Md Ashiqur Rahaman Khan, Miguel Mendoza, Matthew Garcia, and Yirong Lin. "Synthesis and Characterization of Nanowire-Graphene Aerogel for Energy Storage Devices." In ASME 2012 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/imece2012-86431.

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The study of graphene has become one of the most exhilarating topics in both academia and industry for being highly promising in various applications. Because of its excellent mechanical, electrical, thermal and nontoxic properties, graphene has shown promising application in energy storage devices such as lithium-ion-battery (LIB), super capacitor and solar cell. In lithium ion battery, graphite is the most commonly used material as anode. However, due to the limited specific surface area of graphite materials, the diffusion of the Li ions in the anode graphite is relatively slow, leading to
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Norris, Pamela M., Justin L. Smoyer, John C. Duda, and Patrick E. Hopkins. "Prediction and Measurement of Thermal Transport Across Interfaces Between Isotropic Solids and Graphitic Materials." In ASME 2010 8th International Conference on Nanochannels, Microchannels, and Minichannels collocated with 3rd Joint US-European Fluids Engineering Summer Meeting. ASMEDC, 2010. http://dx.doi.org/10.1115/fedsm-icnmm2010-30171.

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Due to the high intrinsic thermal conductivity of carbon allotropes, there have been many attempts to incorporate such structures into existing thermal abatement technologies. In particular, carbon nanotubes (CNTs) and graphitic materials (i.e., graphite and graphene flakes or stacks) have garnered much interest due to the combination of both their thermal and mechanical properties. However, the introduction of these carbon-based nanostructures into thermal abatement technologies greatly increases the number of interfaces per unit length within the resulting composite systems. Consequently, th
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Brühwiler, P. A. "Electronic structure of C[sub 60]/graphite." In ELECTRONIC PROPERTIES OF MOLECULAR NANOSTRUCTURES: XV International Winterschool/Euroconference. AIP, 2001. http://dx.doi.org/10.1063/1.1426815.

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Maultzsch, J. "Phonon dispersion of graphite." In ELECTRIC PROPERTIES OF SYNTHETIC NANOSTRUCTURES: XVII International Winterschool/Euroconference on Electronic Properties of Novel Materials. AIP, 2004. http://dx.doi.org/10.1063/1.1812116.

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Sahoo, Trilochan, and In-Hwan Lee. "Growth of ZnO nanostructures on graphite-rod by hydrothermal technique." In FUNCTIONAL MATERIALS: Proceedings of the International Workshop on Functional Materials (IWFM-2011). AIP, 2012. http://dx.doi.org/10.1063/1.4736888.

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Reports on the topic "Graphite nanostructures"

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Kim, Ki W. Graphene Nanostructures for Novel Spin Magnetic Device Applications. Defense Technical Information Center, 2012. http://dx.doi.org/10.21236/ada580335.

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McCarty, Keven F., Xiaowang Zhou, Donald K. Ward, Peter A. Schultz, Michael E. Foster, and Norman Charles Bartelt. Predicting growth of graphene nanostructures using high-fidelity atomistic simulations. Office of Scientific and Technical Information (OSTI), 2015. http://dx.doi.org/10.2172/1221517.

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Rashid, Afshin. (Organic Polymer- Graphene Oxide) New Nanostructures for Nanoelectronics and Biomedical Applications. ResearchHub Technologies, Inc., 2025. https://doi.org/10.55277/researchhub.rgvr0iyj.3.

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Rashid, Afshin. (Organic Polymer- Graphene Oxide) New Nanostructures for Nanoelectronics and Biomedical Applications. ResearchHub Technologies, Inc., 2025. https://doi.org/10.55277/researchhub.rgvr0iyj.2.

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Rashid, Afshin. (Organic Polymer- Graphene Oxide) New Nanostructures for Nanoelectronics and Biomedical Applications. ResearchHub Technologies, Inc., 2025. https://doi.org/10.55277/researchhub.rgvr0iyj.1.

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Sarje, Abhinav, Jack Pien, Xiaoye Li, et al. Large-scale Nanostructure Simulations from X-ray Scattering Data On Graphics Processor Clusters. Office of Scientific and Technical Information (OSTI), 2012. http://dx.doi.org/10.2172/1062108.

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