Academic literature on the topic 'Graphene silver nanocomposite films'
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Journal articles on the topic "Graphene silver nanocomposite films"
Balakrishnan, Dhivyabharathi, and Cheng-I. Lee. "Surface Functionalization of Bamboo with Silver-Reduced Graphene Oxide Nanosheets to Improve Hydrophobicity and Mold Resistance." Coatings 12, no. 7 (July 11, 2022): 980. http://dx.doi.org/10.3390/coatings12070980.
Full textCobos, Mónica, Iker De-La-Pinta, Guillermo Quindós, María Jesús Fernández, and María Dolores Fernández. "Synthesis, Physical, Mechanical and Antibacterial Properties of Nanocomposites Based on Poly(vinyl alcohol)/Graphene Oxide–Silver Nanoparticles." Polymers 12, no. 3 (March 24, 2020): 723. http://dx.doi.org/10.3390/polym12030723.
Full textСеливерстова, Е. В., Н. Х. Ибраев, and А. Ж. Жумабеков. "Влияние наночастиц серебра на фотодетектирующие свойства нанокомпозита TiO-=SUB=-2-=/SUB=-/оксид графена." Журнал технической физики 128, no. 9 (2020): 1337. http://dx.doi.org/10.21883/os.2020.09.49875.135-20.
Full textSerikov, T. M., P. A. Zhanbirbayeva, A. S. Baltabekov, and A. B. Kuanyshbekova. "Photocatalytic activity of the TIO2/Ag/rGO nanocomposite." Bulletin of the Karaganda University. "Physics" Series 108, no. 4 (December 30, 2022): 14–21. http://dx.doi.org/10.31489/2022ph4/14-21.
Full textJiang, Yu, Davide Carboni, Luca Malfatti, and Plinio Innocenzi. "Graphene Oxide-Silver Nanoparticles in Molecularly-Imprinted Hybrid Films Enabling SERS Selective Sensing." Materials 11, no. 9 (September 10, 2018): 1674. http://dx.doi.org/10.3390/ma11091674.
Full textSahu, Ganeswar, Mamata Das, Mithilesh Yadav, Bibhu Prasad Sahoo, and Jasaswini Tripathy. "Dielectric Relaxation Behavior of Silver Nanoparticles and Graphene Oxide Embedded Poly(vinyl alcohol) Nanocomposite Film: An Effect of Ionic Liquid and Temperature." Polymers 12, no. 2 (February 7, 2020): 374. http://dx.doi.org/10.3390/polym12020374.
Full textLiu, Mingyang, Yanjun Chen, Chaoran Qin, Zheng Zhang, Shuai Ma, Xiuru Cai, Xueqian Li, and Yifeng Wang. "Electrodeposition of reduced graphene oxide with chitosan based on the coordination deposition method." Beilstein Journal of Nanotechnology 9 (April 17, 2018): 1200–1210. http://dx.doi.org/10.3762/bjnano.9.111.
Full textSun, Haibin, Guixian Ge, Jiejun Zhu, Hailong Yan, Yang Lu, Yaozheng Wu, Jianguo Wan, Min Han, and Yongsong Luo. "High electrical conductivity of graphene-based transparent conductive films with silver nanocomposites." RSC Advances 5, no. 130 (2015): 108044–49. http://dx.doi.org/10.1039/c5ra24650d.
Full textSharma, Neha, Sathish Panneer Selvam, and Kyusik Yun. "Electrochemical detection of amikacin sulphate using reduced graphene oxide and silver nanoparticles nanocomposite." Applied Surface Science 512 (May 2020): 145742. http://dx.doi.org/10.1016/j.apsusc.2020.145742.
Full textCarreño, N. L. V., A. M. Barbosa, V. C. Duarte, C. F. Correa, C. Ferrúa, F. Nedel, S. Peralta, et al. "Metal-Carbon Interactions on Reduced Graphene Oxide under Facile Thermal Treatment: Microbiological and Cell Assay." Journal of Nanomaterials 2017 (2017): 1–10. http://dx.doi.org/10.1155/2017/6059540.
Full textDissertations / Theses on the topic "Graphene silver nanocomposite films"
Stone, D'Arcy S. "Tribological investigation of nanocomposite thin films of transitional metal nitrides with silver inclusions." OpenSIUC, 2011. https://opensiuc.lib.siu.edu/theses/768.
Full textAbelard, Joshua Erold Robert. "Silver-Polyimide Nanocomposite Films: Single-Stage Synthesis and Analysis of Metalized Partially-Fluorinated Polyimide BTDA/4-BDAF Prepared from Silver(I) Complexes." W&M ScholarWorks, 2010. https://scholarworks.wm.edu/etd/1539626900.
Full textSass, Danielle. "Nano silver-Iron-reduced graphene oxide modified titanium dioxide photocatalyst for the remediation of Organic dye in water systems." University of the Western Cape, 2018. http://hdl.handle.net/11394/6274.
Full textDrinking water with high concentrations of inorganic and organic contaminants can cause adverse health defects. Specifically methyl orange dye is an organic water contaminant that has been known (along with others like methyl blue etc.) to have an increase in our water systems over the past few years due to increasing demand in industrial processes. It is therefore of utmost importance to remediate organic contaminants and ultimately enable prevention. The contaminants can be removed by photocatalysis. Anatase TiO2 is known for its photocatalytic degradation of environmental pollutants and photoelectro-chemical conversion of solar energy. However its application is limited since it is a wide band gap semiconductor, (Eg = 3.2 eV). The following study deals with the enhancement of the photocatalytic properties of TiO2 for remediation of organic water contaminants. The study was carried out to produce the two nanocomposites AgFe-TiO2 and AgFe-TiO2-rGO photocatalyst which purpose is to be cheap and easy to apply, with improved (fast and effective) photocatalytic degradation of methyl orange. The main objective was to decrease the band gap and to introduce intra-band gap states to absorb visible light. Modification of the TiO2 with small bandgap semiconductor, graphene and Ag- Fe nanoalloy reduced the bandgap energy for visible light absorption and photocatalytic degradation of methyl orange dye. The two composites were synthesised using sonication and chemical synthesis methods. A photocatalytic study (degradation of methyl orange dye) was carried out using a system incorporating an UV lamp source to determine the degradation of methyl orange catalysed by the synthesised photocatalysts AgFe-TiO2-rGO and AgFe-TiO2 along with UV-vis Spectroscopy. Morphological studies were carried out using HRSEM and HRTEM which determined the spherical agglomerated nature of AgFe-TiO2 and the sheet-like nature of AgFe-TiO2-rGO containing spherical agglomerants but that also contained pockets formed by the sheets of the rGO. XRD served as confirmation of the phase of TiO2 in both composites to be anatase. Analysis confirmed the formation and elemental determination of both composites. It was observed that the Band gap of TiO2 degussa decreased from 2.94 eV to 2.77 eV in the composite AgFe-TiO2. The photocatalytic reactivity of AgFe- TiO2 was an improvement from TiO2 and AgFe-TiO2-rGO based on the photocatalytic study. Therefore concluding that AgFe-TiO2 was the best catalyst to convert the dye (Orange II) into free radicals and ultimately remove the contaminant from the water compared to AgFe-TiO2-rGO.
Kaouk, Ali [Verfasser]. "Plasma Enhanced Chemical Vapour Deposition of Graphene-Hematite Nanocomposite Films as Photoanodes in Water-Splitting Reactions / Ali Kaouk." München : Verlag Dr. Hut, 2016. http://d-nb.info/1100967753/34.
Full textSass, Danielle Thandi. "Nano silver-iron-reduced graphene oxide modified titanium dioxide photocatalyst for the remediation of organic dye in water systems." University of the Western Cape, 2018. http://hdl.handle.net/11394/6410.
Full textDrinking water with high concentrations of inorganic and organic contaminants can cause adverse health defects. Specifically methyl orange dye is an organic water contaminant that has been known (along with others like methyl blue etc.) to have an increase in our water systems over the past few years due to increasing demand in industrial processes. It is therefore of utmost importance to remediate organic contaminants and ultimately enable prevention. The contaminants can be removed by photocatalysis. Anatase TiO2 is known for its photocatalytic degradation of environmental pollutants and photoelectro-chemical conversion of solar energy. However its application is limited since it is a wide band gap semiconductor, (Eg = 3.2 eV). The following study deals with the enhancement of the photocatalytic properties of TiO2 for remediation of organic water contaminants.
2021-12-31
Pugliara, Alessandro. "Elaboration of nanocomposites based on Ag nanoparticles embedded in dielectrics for controlled bactericide properties." Thesis, Toulouse 3, 2016. http://www.theses.fr/2016TOU30324/document.
Full textSilver nanoparticles (AgNPs) because of their strong biocide activity are widely used in health-care sector, food industry and various consumer products. Their huge surface-volume ratio enhances the silver release compared to the bulk material, leading to an increased toxicity for microorganisms sensitive to this element. This work presents an assessment of the biocide properties on algal photosynthesis of small (<20 nm) AgNPs embedded in silica layers. Two physical approaches were used to elaborate these nanocomposites: (i) low energy ion beam synthesis and (ii) combined silver sputtering and plasma polymerization. These techniques allow elaboration of a single layer of AgNPs embedded in silica films at defined nanometer distances (from 0 to 7 nm) beneath the free surface. The structural and optical properties of the nanocomposites were studied by transmission electron microscopy, reflectance spectroscopy and ellipsometry. This last technique, coupled to modelling based on the quasi-static approximation of the classical Maxwell-Garnett formalism, allowed detection of small variations over the size and density of the embedded AgNPs. The silver release from the nanostructures after immersion in buffered water was measured by inductively coupled plasma mass spectrometry. The short-term toxicity of Ag to the photosynthesis of green algae, Chlamydomonas reinhardtii, was assessed by fluorometry. Embedding AgNPs reduces their interactions with the buffered water, protecting the AgNPs from fast oxidation. The release of bio-available silver (impacting on the algal photosynthesis) is controlled by the depth at which AgNPs are located for the given host silica matrix. This provides a procedure to tailor the biocide effect of nanocomposites containing AgNPs. By coupling the controlled antimicrobial properties of the embedded AgNPs and their quality as plasmonic antenna, these coatings can be used to detect and prevent the first stages of biofilm formation. Hence, the last part of this work is dedicated to a study of the structural stability and adsorption properties of Discosoma recombinant red (DsRed) fluorescent proteins deposited on these dielectric surfaces with perspectives of development of SERS devices
Ly, Kally Chein Sheng 1992. "Fabricação e caracterização de filme fino regenerável hidrofóbico." [s.n.], 2017. http://repositorio.unicamp.br/jspui/handle/REPOSIP/330349.
Full textDissertação (mestrado) - Universidade Estadual de Campinas, Instituto de Física Gleb Wataghin
Made available in DSpace on 2018-09-02T14:50:41Z (GMT). No. of bitstreams: 1 Ly_KallyCheinSheng_M.pdf: 2442128 bytes, checksum: 86716c6c19fa3a9db425b32c36463141 (MD5) Previous issue date: 2017
Resumo: Materiais biomiméticos são inspirados em estruturas biológicas para a obtenção de propriedades e funcionalidades específicas. Dentre os materiais biomiméticos, os que são capazes de se regenerar (self-healing) despertaram grande interesse pelo potencial de aplicação em diversas áreas. Para ilustrar, alguns materiais autorregeneráveis poliméricos apresentam regeneração múltipla, necessitando apenas de água para que a regeneração ocorra em alguns minutos, aumentando consideravelmente a proteção mecânica da superfície contra desgastes, danos mecânicos entre outros. Entretanto, múltiplas imersões em água ou em meios aquosos pode degradar o material e neste contexto este projeto visa incorporar a hidrofobicidade a um sistema regenerável. Desta forma, o material regenerável hidrofóbico, durante sua regeneração imersa em água, poderá diminuir a interação da superfície não danificada com a água, reduzindo corrosões e degradações devido a meios aquosos. Estudamos a nanoestruturação de materiais através da técnica de automontagem por adsorção física (LbL, do inglês Layer-by-Layer) utilizando os polieletrólitos poli(etileno imina) (PEI) e poli(ácido acrílico) (PAA), a fim de produzir revestimentos capazes de se regenerar a danos mecânicos micrométricos. Adicionalmente, foram incorporados a estes dois materiais nanofolhas de óxido de grafeno reduzido (rGO) funcionalizados com poli(cloridrato de alilamina) (GPAH) e poli(estireno-sulfonato de sódio) (GPSS), com o intuito de verificarmos um aumento de resistência a abrasão do material e alterações nas propriedades elétricas na nanoestrutura formada para aumentar o potencial de aplicação em eletrônica flexível. A arquitetura molecular (GPAH-PEI/GPSS-PAA)60 foi caracterizada com espectroscopia Raman, medidas de ângulo de contato, microscopia de força atômica, medidas elétricas e nanoindentação. Foi observada boa regeneração do material após 15 minutos de imersão em água a temperatura ambiente em um dano mecânico da ordem de 10 micrômetros. Também observamos boa hidrofobicidade do filme LbL (GPAH-PEI/GPSS-PAA)60 ( teta = 136º), e medidas de microscopia de força atômica e perfilometria indicaram, respectivamente, rugosidade superficial de 55 nm em uma área de (2 ?m x 2 ?m) e espessura de filme de 30 ?m. A análise Raman apontou para uma forte interação das nanofolhas de rGO com os polímeros, corroborando o tem caráter elétrico isolante do filme (GPAH-PEI/GPSS-PAA)60, que apresentou função trabalho ~ 5,2 eV e condutividade elétrica da ordem de 10-7 S/cm, que acreditamos resultar das fortes interações das nanofolhas com os polímeros. Por fim, medidas de nanoindentação indicaram que a incorporação de nanofolhas de GPSS e GPAH aumentou em 10 vezes a dureza do nanocompósito formado, sem comprometer a regeneração
Abstract: Biomimetic materials are inspired in biological structures to obtain specific properties and functionalities and among them, those capable of self-healing brought great interest due to high potential of application in different areas. To illustrate, some polymeric self-healing materials present multiple regeneration in the presence of water, with the regeneration occurring within a few minutes, increasing considerably the mechanical protection of a surface against wear and mechanical damage among others. Nevertheless, multiple immersions in water or in aqueous media can degrade the material and in this context this project aims the incorporation of hydrophobicity to a self-healing system. In this way, the self-healing, hydrophobic material during its immersion in water may decrease the interaction of the damaged surface with water, reducing corrosion and degradation due to aqueous media. We study the nanostructuration f materials through the layer-by-layer (LbL) technique using poly(ethylene imine) (PEI) and poly(acrylic acid) (PAA) in order to produce self-healing coatings from micrometric mechanical damages. In addition, we also incorporate to these materials reduced graphene oxide (rGO) functionalized with poly(allylamine hydrochloride) (GPAH) and poly(styrene-sodium sulfonate) (GPSS), with the purpose of verifying an increase in the mechanical abrasion resistance of the material and changes in the electrical properties of the nanostructures formed to increase the potential application in flexible electronics. The molecular architecture (GPAH-PEI/GPSS-PAA)60 was characterized by Raman spectroscopy, contact angle measurements, atomic force microscopy, electrical measurements and nanoindentation. It was observed good self-healing capacity after 15 min f immersion in water at room temperature in a mechanical scratch of the order of 10 micrometers. It was also observed good hydrophobicity in the (GPAH-PEI/GPSS-PAA)60 LbL film ( teta = 136º) and atomic force microscopy and perfilometer indicate, respectively, surface roughness of 55 nm in a (2 ?m x 2 ?m) area and film thickness of 30 ?m. Raman analysis pointed out to a strong physical interaction between the rGO nanoplatelets with the polymeric materials, corroborating the strong insulating nature of (GPAH-PEI/GPSS-PAA)60 film that displayed a work function of 5.2 eV and electrical conductivity of 10-7 S/cm, which we believe results from the strong interactions of the nanosheets with the polymers. Finally, nanoindentation measurements indicated that the incorporation of GPAH and GPSS nanoplatelets increased hardness by 10 times, without compromising the regeneration
Mestrado
Física
Mestra em Física
1543078/2015
CAPES
Cheviron, Perrine. "Nanostructuration de films nanocomposites amidon / argent et amidon / argent / montmorillonites par procédé de « chimie verte » : influence des voies de génération des nanoparticules métalliques sur la structure et les propriétés de transport." Thesis, Lyon 1, 2015. http://www.theses.fr/2015LYO10047/document.
Full textThe present work reports a strategy involving the preparation of silver nanoparticles in a biodegradable polymer stemming from either an ex situ or an in situ method, using in both cases a completely green chemistry process. The influence of the reducing agent concentration and the silver nanoparticles generation route is investigated on the structure, the morphology and the properties of the nanocomposite films. In both routes, silver nanoparticles with a diameter below 30 nm were highlighted in the nanocomposite films. For all nanocomposite films, no modification on the crystalline structure of the starch matrix is observed in the presence of silver. The in situ generation route allowed to obtain the smallest silver nanoparticles with a diameter below 10 nm. Crystalline silver nanoparticles were obtained only from the in situ generation route at the temperature of 85°C. The introduction of montmorillonites in both generation routes was also studied. The decrease of the water sorption and the improvement of water and oxygen barrier properties were found to be not dependent on the reducing agent concentration but mainly on the presence of the crystalline structure of the silver nanoparticles. Thus, significant enhancement of the barrier properties were finally obtained for the in situ nanocomposite films thanks to an efficient interaction between the crystalline silver nanoparticles and the starch matrix
Neella, Nagarjuna. "Development of Graphene Metal Nanocomposite Resistive Films for Flexible Sensors and Body Warmer Applications." Thesis, 2018. http://etd.iisc.ac.in/handle/2005/4263.
Full textZhang, Kai Chun, and 張凱鈞. "Fabrication and Characterization of Graphene/Epoxy Nanocomposite Films." Thesis, 2016. http://ndltd.ncl.edu.tw/handle/14076032421550644071.
Full text元智大學
機械工程學系
104
Graphene nanoplatelets (GNP) with excellent mechanical and thermal properties have been considered as ideal reinforcements. In this investigation, various contents of graphene nanoplatelets (MWCNT) ranging from 0.3 % ~1.0 % wt. were added to the epoxy to fabricate the nanocomposites. Nanocomposite films with thickness of 0.3 mm were deposited on the aluminum substrate using the spin coating. The Young’s modulus of the nanocomposite film was determined by the three-point bending test and nanoindentation test. The stress distribution and load carrying capability of the nanocomposite film subjected to tensile and bending loads were derived basing on the shear lag model and Bernoulli beam theory. Three-point and four-point bending tests were conducted to determine the interfacial fracture toughness of mode I and II, respectively. Experimental test results show that the Young’s modulus, load carrying capability and fracture toughness of the nanocomposite film are increasing with the increase of the content of GNPs In the case of nanocomposite film with 1.0 % wt. GNPs, the Young’s modulus, load carrying capability and fracture toughness are increased by 39%, 34% and 44% compared with neat epoxy, respectively. In addition, the dispersion of GNPs in the epoxy based matrix was examined using the scanning electronic microscope (SEM). The SEM images depict that GNPs are well dispersed resulting in the enhancement of the mechanical properties of the nanocomposite films.
Books on the topic "Graphene silver nanocomposite films"
Functional Materials: Fundamental Research and Industrial Application. Trans Tech Publications, Limited, 2021.
Find full textBook chapters on the topic "Graphene silver nanocomposite films"
Khenfouch, Mohammed, Mimouna Baitoul, and Malik Maaza. "Graphene for the Elaboration of Nanocomposite Films for Optoelectronic Applications." In Graphene Optoelectronics, 41–62. Weinheim, Germany: Wiley-VCH Verlag GmbH & Co. KGaA, 2014. http://dx.doi.org/10.1002/9783527677788.ch3.
Full textIyer, K. Swaminathan, Jeff Moreland, Igor Luzinov, Sergiy Malynych, and George Chumanov. "Block Copolymer Nanocomposite Films Containing Silver Nanoparticles." In ACS Symposium Series, 149–66. Washington, DC: American Chemical Society, 2006. http://dx.doi.org/10.1021/bk-2006-0941.ch011.
Full textBadilescu, Simona, Jai Prakash, and Muthukumaran Packirisamy. "Surface Gold and Silver-Polymer Nanocomposite Self-Standing Films." In Handbook of Polymer and Ceramic Nanotechnology, 1–20. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-10614-0_11-1.
Full textBadilescu, Simona, Jai Prakash, and Muthukumaran Packirisamy. "Surface Gold and Silver-Polymer Nanocomposite Self-Standing Films." In Handbook of Polymer and Ceramic Nanotechnology, 199–217. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-40513-7_11.
Full textZou, Qingqing, Congjun Cao, Huayang Zhu, and Chengmin Hou. "Preparation of Low Temperature Sintered Graphene/Silver Nanocomposite-Based Conductive Ink." In Advances in Graphic Communication, Printing and Packaging, 751–58. Singapore: Springer Singapore, 2019. http://dx.doi.org/10.1007/978-981-13-3663-8_101.
Full textDas, Mamata, Ganeswar Sahu, and Jasaswini Tripathy. "Fabrication of Chitosan–Carboxymethyl Cellulose Silver Nanocomposite Films as Antimicrobial Materials." In Lecture Notes in Mechanical Engineering, 351–59. Singapore: Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-15-7779-6_30.
Full textCuong, N. V., P. N. N. Han, N. K. Hoang, and N. N. L. Giang. "Preparation, Characterization and Antibacterial Curcumin Encapsulated Chitosan-PAA Silver Nanocomposite Films." In IFMBE Proceedings, 58–61. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-11776-8_15.
Full textAllahbakhsh, Ahmad. "High barrier graphene/polymer nanocomposite films." In Food Packaging, 699–737. Elsevier, 2017. http://dx.doi.org/10.1016/b978-0-12-804302-8.00020-0.
Full textGwizdała, Wojciech, Roman Czapla, and Wojciech Nawalaniec. "Modeling, simulations, and properties of thin films near graphene and its derivatives." In 2D and Quasi-2D Composite and Nanocomposite Materials, 269–94. Elsevier, 2020. http://dx.doi.org/10.1016/b978-0-12-818819-4.00018-0.
Full text"Silver–polyimide nanocomposite films: A single-stage thermally-induced metallization of aromatic fluorinated polyimides yielding highly reflective films." In Polyimides and Other High Temperature Polymers: Synthesis, Characterization and Applications, Volume 4, 269–94. CRC Press, 2007. http://dx.doi.org/10.1201/b12204-13.
Full textConference papers on the topic "Graphene silver nanocomposite films"
Neella, Nagarjuna, Venkateswarlu Gaddam, K. Rajanna, and M. M. Nayak. "Negative temperature coefficient behavior of graphene-silver nanocomposite films for temperature sensor applications." In 2016 IEEE 11th Annual International Conference on Nano/Micro Engineered and Molecular Systems (NEMS). IEEE, 2016. http://dx.doi.org/10.1109/nems.2016.7758260.
Full textMukhtar, Wan Maisarah, Razman Mohd Halim, Karsono Ahmad Dasuki, Affa Rozana Abdul Rashid, and Nur Athirah Mohd Taib. "Silver-Graphene Oxide Nanocomposite Film-based SPR Sensor for Detection of Pb2+ Ions." In 2018 IEEE International Conference on Semiconductor Electronics (ICSE). IEEE, 2018. http://dx.doi.org/10.1109/smelec.2018.8481315.
Full textDevlin, Christie L. H., Robert L. Ewing, and Elena A. Guliants. "Resistivity comparison of graphene oxide and graphene oxide-silver nanocomposite paper." In NAECON 2014 - IEEE National Aerospace and Electronics Conference. IEEE, 2014. http://dx.doi.org/10.1109/naecon.2014.7045836.
Full textZin, Farah Amanina Mohd, An’amt Mohamed Noor, Setia Budi, Muhammad Khairul Azhar Abdul Razab, Lee Seong Wei, Nor Hakimim Abdullah, and Mohd Hafiz Jamaludin. "Graphene oxide silver alginate and graphene oxide silver cellulose nanofibril nanocomposite: Comparison of antibacterial activity." In INTERNATIONAL CONFERENCE ON BIOENGINEERING AND TECHNOLOGY (IConBET2021). AIP Publishing, 2022. http://dx.doi.org/10.1063/5.0079408.
Full textGanesh, S., Arockiadoss, and S. Ramaprabhu. "Synthesis Of Graphene/Chitosan Nanocomposite Thin Films." In SOLID STATE PHYSICS, PROCEEDINGS OF THE 55TH DAE SOLID STATE PHYSICS SYMPOSIUM 2010. American Institute of Physics, 2010. http://dx.doi.org/10.1063/1.3504291.
Full textNeella, Nagarjuna, Venkateswarlu Gaddam, K. Rajanna, M. M. Nayak, and T. Srinivas. "Highly flexible and sensitive graphene-silver nanocomposite strain sensor." In 2015 IEEE Sensors. IEEE, 2015. http://dx.doi.org/10.1109/icsens.2015.7370612.
Full textHaldorai, Yuvaraj, Van Hoa Nguyen, and Jae-Jin Shim. "Silver Nanoparticles Decorated Graphene and Graphene Oxide Nanocomposite in Supercritical CO2: Antibacterial Activity." In 14th Asia Pacific Confederation of Chemical Engineering Congress. Singapore: Research Publishing Services, 2012. http://dx.doi.org/10.3850/978-981-07-1445-1_494.
Full textNoor, An’amt Mohamed, Farah Amanina Mohd Zin, Ahmad Muhsin Mohammad Fatin, Setia Budi, Muhammad Hafiz Abu Bakar, Mohd Shaiful Sajab, Mohamad Faiz Mohd Amin, and Sahid Mehmood. "Preparation and optimization of antibacterial activity of graphene oxide silver nanocomposite." In INTERNATIONAL CONFERENCE ON BIOENGINEERING AND TECHNOLOGY (IConBET2021). AIP Publishing, 2022. http://dx.doi.org/10.1063/5.0079406.
Full textZin, Farah Amanina Mohd, An’amt Mohamed Noor, Mohammad Khairul Azhar Abd Razab, Nor Hakimin Abdullah, and Lee Seong Wei. "Synthesis of silver graphene oxide nanocomposite reinforced with kenaf cellulose nanofibril aerogel." In MATERIALS CHARACTERIZATION USING X-RAYS AND RELATED TECHNIQUES. Author(s), 2019. http://dx.doi.org/10.1063/1.5089344.
Full textWang, Pengpeng, Zhijun Wei, Minhua Shen, Hui Pan, Jun Fu, and Lesheng Chen. "In-situ synthesized silver-graphene nanocomposite with enhanced electrical and mechanical properties." In 2017 IEEE Holm Conference on Electrical Contacts. IEEE, 2017. http://dx.doi.org/10.1109/holm.2017.8088091.
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