Rozprawy doktorskie na temat „Graphene Nano-sheets”
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Wang, S. Q. "Car-Parrinello Molecular Dynamics of Nanosized Graphene Sheets". Thesis, Sumy State University, 2013. http://essuir.sumdu.edu.ua/handle/123456789/35242.
Pełny tekst źródłaHolliday, Nathan. "Processing and Properties of SBR-PU Bilayer and Blend Composite Films Reinforced with Multilayered Nano-Graphene Sheets". University of Cincinnati / OhioLINK, 2016. http://rave.ohiolink.edu/etdc/view?acc_num=ucin1458300045.
Pełny tekst źródłaChi-HuaHsu i 徐啟華. "Characterization and Optimal Design of Graphene Sheets on Micro/Nano Actuators". Thesis, 2015. http://ndltd.ncl.edu.tw/handle/70913433104122613605.
Pełny tekst źródła國立成功大學
機械工程學系
103
With the rapid growth of semiconductor process technologies, micro / nano-electromechanical systems is well developed. Nowadays, the conventional semiconductor device can’t meet the requirements because of its weight, bulk and high power consumption. The application of micro / nano electromechanical technology to achieve functional integration, bandwidth, low signal loss and small size requirements is used to solve this problem. Graphene have excellent chemical and machinery stability and it’s suitable for the application of micro / nano components in high speed, high sensitivity and high current density. This paper shows systematic analysis and design methods for actuator electrodes of electrostatic driving micro actuator, and further discuss about the graphene sheet as the basic element. Meshfree method with no grid dependence, it is only necessary to know the information of node location. It is easy to analyze the data. Thus, we adopted EFGM as our methods. Finally apply an electrostatic force and nonlocal elastically theory to observe the changes in the structure of the graphene. Simulation results show that: through the nonlocal parameters and electrostatic driving will cause reduction of frequency in the structure. By the EFGM analysis, it can be observed that method provides not only the value of voltage rapidly which arise adsorption phenomena but also reduces the cost of experiments. The value could be as a reference to company.
Srinivasanaik, Azmeera. "AFM and STM Characterization of Electrochemically Synthesized Few-Layer Graphene Nano-Sheets". Thesis, 2018. http://ethesis.nitrkl.ac.in/9579/1/2018_MT_216MM1425_ASrinivasanaik_AFM.pdf.
Pełny tekst źródłaLiu, Cheng-Hao, i 劉承浩. "Synthesis and Optoelectronic Properties of Poly(fluorene-alt-thiophene) Comprising Nano Graphene Sheets". Thesis, 2009. http://ndltd.ncl.edu.tw/handle/36731003518401988063.
Pełny tekst źródła國立中正大學
化學工程所
97
Graphite was acidified to convert to graphite oxide via the Hummers method, and the resulting exfoliated graphite oxide sheets were reduced by phenylhydrazine in the presence of conjugated polymer PDOFT to form the PDOFT/GS polymeric nanocomposite. This novel polymeric nanocomposite was characterized by FT-IR spectroscopy, X-ray photoelectron spectroscopy, atomic force microscope, scanning electron microscopy, transmission electron microscope, UV/Vis spectroscopy, photoluminescence spectroscopy and various optoelectronic instruments. TGA and DSC analyses indicate that all polymeric nanocomposites are thermally stable up to 400℃ without detectable melting points. By introducing graphene sheets into the polymer matrix, the threshold voltage of the PLED device is lowered and both of the current efficiency and the carrier mobility were improved.
Chiou, Po-Jiun, i 邱柏鈞. "Synthesis and Optoelectronic Properties of Poly fluorene-block-polythiophene Comprising Nano Graphene Sheets". Thesis, 2010. http://ndltd.ncl.edu.tw/handle/02517459316046375324.
Pełny tekst źródła國立中正大學
化學工程所
98
Graphite was acidified to convert to graphite oxide via the Hummers method, and the resulting exfoliated graphite oxide sheets were reduced by octadecylamine in the presence of conjugated polymer PF-b-P3HT to form the PF-b-P3HT/Gr polymeric nanocomposite. This novel polymeric nanocomposite was characterized by FT-IR spectroscopy, X-ray photoelectron spectroscopy, atomic force microscope, scanning electron microscopy, transmission electron microscope, UV/Vis spectroscopy, photoluminescence spectroscopy and various optoelectronic instruments. TGA and DSC analyses indicated that all polymeric nanocomposites were thermally stable up to 400℃ with the glass transition temperature being to 150℃. And the melting point being 230℃.By introducing graphene sheets into the polymer matrix, the threshold voltage of the PLED device was lowered and both of the current efficiency and the carrier mobility were improved.
Yang, Chih-Yu, i 楊芷瑀. "Preparation and Characterization of Graphene Nano Sheets/Waterborne Polyurethane Nanocomposite for Electromagnetic Interference Shielding". Thesis, 2015. http://ndltd.ncl.edu.tw/handle/459r4t.
Pełny tekst źródła國立清華大學
化學工程學系
103
The aim of this study is to prepare the electromagnetic interference shielding (EMI SE) polymer composite by two-dimentional Graphene Nano Sheets (GNS) and Waterborne Polyurethane (WPU) via solution mixing method. This study includes two parts. In the first part, graphene oxide (GO) was prepared from graphite by modified Hummers’ method, and then was reduced to GNS by NaBH4. In order to improve the dispersion and to prevent the restacking and aggregations of GNS during reduction, [2-(Methacryloyloxy)-ethyl]- trimethyl ammonium chloride (AETAC) was grafted onto the GO and GNS surface by free radical polymerization to form FGO and FGNS. FGO was reduced to FRGO by chemical reduction with NaBH4. According to the results of analysis of XRD, XPS and TEM, it was confirmed that AETAC was grafted onto GO and GNS surface. A simple solution mixing method was used to prepare GNS/WPU, FGNS/WPU and FRGO/WPU composite with 1, 3, 5 and 10 wt% filler content. The electrical conductivity of GNS/WPU (FGNS/WPU and FRGO/WPU) composites was increased with the filler content. The results showed that the highest electrical conductivity of 2.07 S/cm and EMI shielding effectiveness (EMI SE) of approximately 17 dB in the frequency of 8.2–12.4 GHz (X-band) were obtained by the 10 wt% filler content of FRGO/WPU composite. In the second part, in order to increase the electrical conductivity and EMI SE of composites, silver nanoparticles (Ag NPs) were deposited on the FRGO surfaces to form Ag@FRGO. The different weight ratios of Ag NPs to FRGO were 1:1, 1:3, 1:5 and 1:10, which formed 1Ag@FRGO, 3Ag@FRGO, 5Ag@FRGO and 10Ag@FRGO. A simple solution mixing method was used to prepare Ag@FRGO/WPU composites with 10 wt% filler content and different weight ratios of Ag NPs to FRGO. Results showed that the electrical conductivity and EMI SE of Ag@FRGO/WPU composites were increased with the increasing weight ratio of Ag NPs to FRGO. The highest electrical conductivity and EMI SE of 10Ag@FRGO/WPU composite over the frequency of 8.2–12.4 GHz were improved to 25.5 S/cm and 35 dB, respectively.
Arash, Behrouz. "Molecular dynamics studies on application of carbon nanotubes and graphene sheets as nano-resonator sensors". 2013. http://hdl.handle.net/1993/22278.
Pełny tekst źródła黃郁芩. "Preparation and Characterization of Graphene Nano sheets/Waterborne Polyurethane Nanocomposites for Electromagnetic Interference Shielding via Self-Assembly Process". Thesis, 2014. http://ndltd.ncl.edu.tw/handle/we5y8s.
Pełny tekst źródłaFan, Yang-chun, i 范揚均. "Morphology, electrical conductivity, crystalline property of high density polyethylene/polyamide/graphene nano sheets composites prepared by melt-compounding". Thesis, 2016. http://ndltd.ncl.edu.tw/handle/06366971148305821535.
Pełny tekst źródła逢甲大學
纖維與複合材料學系
104
This study focused on the morphology change of immiscible polymer, high-density polyethylene(HDPE) and polyamide 6(PA blends with the incorporation of GNSs to produce double double percolation, to find the direct relationship between the GNS content with compatibilizer introduce of blends and the network structure of GNSs. The conductivities of HDPE/PA6 composites filled with different amounts of GNS were measured by 4-point Probe and Source meter. The morphologies, GNS dispersion and crystallization behavior of HDPE/PA6/GNS composites were investigated by scanning electron microscopy (SEM), transmission electron microscopy (TEM), and differential scanning calorimetry (DSC). Analysis the ratio 50/50 HDPE/PA6 will produce co-continuous morphology by SEM and TEM, different content GNSs bring about morphology change. The GNSs located in HDPE/PA6 phases form conductive network, we find the double percolation bring in 3wt% and 5wt% of HDPE/PA6-6N/GNS and HDPE/PA6-10k/GNS, Incorporate the HDPE-g-MA will more improve the conductivity of HDPE/HDPE-g-MA/PA6-6N/GNS-M in 5wt%.
Pai, Yu Li, i 白有立. "Preparation of Nafion/Graphene Oxide Nano-Sheets Composite Membrane by Spin Coating Method for Direct Formic Acid and Alcohol Fuel Cells". Thesis, 2014. http://ndltd.ncl.edu.tw/handle/37560206845042265446.
Pełny tekst źródłaManjanath, Aaditya. "Engineering the Properties of Elemental 2D Materials using First-principles Calculations". Thesis, 2016. http://etd.iisc.ac.in/handle/2005/2916.
Pełny tekst źródłaManjanath, Aaditya. "Engineering the Properties of Elemental 2D Materials using First-principles Calculations". Thesis, 2016. http://etd.iisc.ernet.in/handle/2005/2916.
Pełny tekst źródła張棠翔. "The Mechanical and Thermal Properties of Nano Graphite Sheets/Polypropylene Composites". Thesis, 2013. http://ndltd.ncl.edu.tw/handle/65222743770934185577.
Pełny tekst źródłaHuang, Hsiang, i 黃襄. "Analysis and Measurement of High Thermal Conductivity of Micro/Nano Graphite Sheets". Thesis, 2013. http://ndltd.ncl.edu.tw/handle/48594905755740798468.
Pełny tekst źródła國立中興大學
精密工程學系所
101
This paper aims to investigate thermal conductivity properties originated between artificial and different thicknesses natural high thermal conductivity graphite sheets. The Angstrom’s method was used to establish a thermal diffusivity measurement instrument. The experimental results showed the room temperature thermal diffusivity of artificial graphite sheet is about (8.24±0.93) x 10^-4 m^2/s, and the values of natural graphite sheets are in the range (2.04±0.26) x 10^-4 to (2.67±0.17) x 10^-4 m^2/s. The experimental results also showed the error within ±10% by the uncertainty analysis. The graphite sheet densities and specific heat were measured by an electronic balance and differential scanning calorimetry (DSC). Combining the thermal diffisivity, density, and specific heat, the thermal conductivity can be obtained. Optical microscope (OM), scanning electron microscopy (SEM) and transmission electron microscopy (TEM) were used to observe and analyze the graphite sheets surface and atomic structures. The experimental result and micro/nano observation showed that carbon structures of artificial graphite sheets are well arranged in lattice and high purity. That results in a better thermal conductivity than natural graphite sheets.