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|a Thermal and Rheological Measurement Techniques for Nanomaterials Characterization /
|c Sabu Thomas, Raju Thomas, Ajesh K Zachariah, Raghvendra Kumar Mishra.
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264 |
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|a [Place of publication not identified] :
|b Elsevier,
|c 2017.
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|a 1 online resource (292 pages)
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|a Micro and Nano Technologies ;
|v Volume 3
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|a Chapter 1: Instrumental techniques for the characterization of nanoparticles Chapter 2: Dynamic Light Scattering (DLS) Analysis of Nanomaterials Chapter 3: Size-exclusion chromatography in Nanoscience and Nanotechnology Chapter 4: Thermogravimetry Analysis for Characterization of Nanomaterials Chapter 5: Differential Scanning Calorimetry in Nanosciences and Nanotechnology Chapter 6: Dynamic Mechanical Thermal Analysis of Polymer Nanocomposites Chapter 7: Thermomechanical Analysis of Nanomaterials and Nanocomposites Chapter 8: Contact Angle Measurement Techniques in Nanosciences and NanotechnologyChapter 9: Surface area analysis of Nanomaterials Chapter 10: Small angle Light and X-ray scattering in Nanosciences and Nanotechnology.
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|6 880-01
|a Front Cover; Thermal and Rheological Measurement Techniques for Nanomaterials Characterization; Thermal and Rheological Measurement Techniques for Nanomaterials Characterization; Copyright; Contents; List of Contributors; Editor Biographies; 1 -- Instrumental Techniques for the Characterization of Nanoparticles; 1.1 NANOTECHNOLOGY AND NANOMATERIALS; 1.2 CLASSIFICATION OF NANOMATERIALS; 1.3 ADVANTAGES AND DISADVANTAGES OF NANOMATERIALS; 1.4 OPPORTUNITIES PRESENTED BY NANOMATERIALS; 1.5 CHARACTERIZATION TECHNIQUES OF NANOMATERIALS; 1.5.1 Optical (Imaging) Characterization Techniques.
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|a 1.5.1.1 Confocal Laser-Scanning Microscopy1.5.1.2 Scanning Near-Field Optical Microscopy; 1.5.1.3 Two-Photon Fluorescence Microscopy; 1.5.1.4 Dynamic Light Scattering; 1.5.1.5 Brewster Angle Microscopy; 1.5.2 Electron Probe Characterization Techniques; 1.5.2.1 Scanning Probe Electron Microscopy; 1.5.2.2 Electron Probe Microanalysis; 1.5.2.3 Transmission Electron Microscopy; 1.5.2.4 Scanning Transmission Electron Microscopy; 1.5.3 Photon Probe Characterization Techniques; 1.5.3.1 Photoelectron Spectroscopy; 1.5.3.2 UV-Visible Spectroscopy; 1.5.3.3 Atomic Absorption Spectroscopy.
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|a 1.5.3.4 Inductively Coupled Plasma Spectroscopy1.5.3.5 Fluorescence Spectroscopy; 1.5.3.6 Localized Surface Plasmon Resonance; 1.5.4 Ion Particle Probe Characterization Techniques; 1.5.4.1 Rutherford Backscattering; 1.5.4.2 Small-Angle Scattering; 1.5.4.3 Nuclear Reaction Analysis; 1.5.4.4 Raman Spectroscopy; 1.5.4.5 X-Ray Diffraction; 1.5.4.6 Cathodoluminescence; 1.5.4.7 Nuclear Magnetic Resonance Spectroscopy; 1.5.4.8 Matrix-Assisted Laser Desorption/Ionization Time-of-Flight Mass Spectrometry; 1.5.5 Thermodynamic Characterization Techniques; 1.5.5.1 Thermogravimetric Analysis.
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|a 2.3 DYNAMIC LIGHT SCATTERING BASICS2.4 DEPOLARIZED FABRY-P�EROT INTERFEROMETRY; 2.5 CONCLUSION; REFERENCES; FURTHER READING; 3 -- Size-Exclusion Chromatography; 3.1 INTRODUCTION; 3.2 INSTRUMENTATION; 3.3 SIZE-EXCLUSION CHROMATOGRAPHIC TECHNIQUES; 3.3.1 High-Temperature Size-Exclusion Chromatography; 3.3.2 Aqueous Size-Exclusion Chromatography; 3.3.3 Supercritical Fluid Chromatography; 3.3.4 Hydrodynamic Chromatography; 3.3.5 Inverse Gas Chromatography; 3.4 APPLICATIONS OF SIZE-EXCLUSION CHROMATOGRAPHY; 3.4.1 Biochemical Applications; 3.4.2 Polymer Synthesis; 3.4.3 Nanomaterials; 3.5 DRAWBACKS.
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|a Annotation
|b Thermal and Rheological Measurement Techniques for Nanomaterials Characterization, Second Edition covers thermal and rheological measurement techniques, including their principle working methods, sample preparation and interpretation of results. This important reference is an ideal source for materials scientists and industrial engineers who are working with nanomaterials and need to know how to determine their properties and behaviors. Outlines key characterization techniques to determine the thermal and rheological behavior of different nanomaterialsExplains how the thermal and rheological behavior of nanomaterials affect their usageProvides a method-orientated approach that explains how to successfully use each technique.
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|a Includes bibliographical references and index.
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|a Nanostructured materials
|x Testing.
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|a Rheology.
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|a Rh�eologie.
|0 (CaQQLa)201-0025965
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|a TECHNOLOGY & ENGINEERING
|x Engineering (General)
|2 bisacsh
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|a TECHNOLOGY & ENGINEERING
|x Reference.
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|a Rheology
|2 fast
|0 (OCoLC)fst01096929
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700 |
1 |
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|a Thomas, Sabu,
|e editor.
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700 |
1 |
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|a Thomas, Raju,
|e editor.
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700 |
1 |
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|a Zachariah, Ajesh K,
|e editor.
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700 |
1 |
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|a Mishra, Raghvendra Kumar,
|e editor.
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776 |
0 |
8 |
|i Print version:
|z 9780323461399
|z 0323461395
|w (OCoLC)967501541
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856 |
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|u https://sciencedirect.uam.elogim.com/science/book/9780323461399
|z Texto completo
|
880 |
8 |
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|6 505-01/(S
|a 1.5.5.2 Differential Thermal Analysis1.5.5.3 Evolved Gas Analysis; 1.5.5.4 Differential Scanning Calorimetry; 1.5.5.5 Nanocalorimetry; 1.5.5.6 Brunauer-Emmett-Teller Method; 1.5.6 Other Important Techniques; 1.5.6.1 Nanoparticle Tracking Analysis; 1.5.6.2 Tilted Laser Microscopy; 1.5.6.3 Turbidimetry; 1.5.6.4 Field-Flow Fractionation; 1.5.6.5 Size-Exclusion Chromatography; 1.5.6.6 Hydrophobic Interaction Chromatography; 1.5.6.7 ζ Potential Measurements; 1.6 CONCLUSIONS; ACKNOWLEDGMENT; REFERENCES; 2 -- Dynamic Light Scattering (DLS); 2.1 INTRODUCTION; 2.2 LIGHT SCATTERING THEORY.
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