{"product_id":"experimental-micronanoscale-thermal-transport-9781118007440","title":"Experimental MicroNanoscale Thermal Transport","description":"\u003cb\u003eBook Synopsis\u003c\/b\u003e\u003cbr\u003eThis book covers the new technologies on micro\/nanoscale thermal characterization developed in the Micro\/Nanoscale Thermal Science Laboratory led by Dr. Xinwei Wang.\u003cbr\u003e\u003cbr\u003e\u003cb\u003eTrade Review\u003c\/b\u003e\u003cbr\u003e\u003cp\u003e“Experimentalists measuring thermal transport properties of micro-or nanoscale materials will definitely find this book well worth their time.”  \u003ci\u003e(IEEE Electrical Insulation Magazine\u003c\/i\u003e, 1 September 2013\u003c\/p\u003e \u003cp\u003e \u003c\/p\u003e\u003cbr\u003e\u003cbr\u003e\u003cb\u003eTable of Contents\u003c\/b\u003e\u003cbr\u003e\u003cp\u003ePreface xi\u003c\/p\u003e \u003cp\u003e\u003cb\u003e1 Introduction 1\u003c\/b\u003e\u003c\/p\u003e \u003cp\u003e1.1 Unique Feature of Thermal Transport in Nanoscale and Nanostructured Materials 1\u003c\/p\u003e \u003cp\u003e1.1.1 Thermal Transport Constrained by Material Size 2\u003c\/p\u003e \u003cp\u003e1.1.2 Thermal Transport Constrained by Time 6\u003c\/p\u003e \u003cp\u003e1.1.3 Thermal Transport Constrained by the Size of Physical Process 8\u003c\/p\u003e \u003cp\u003e1.2 Molecular Dynamics Simulation of Thermal Transport at Micro\/Nanoscales 10\u003c\/p\u003e \u003cp\u003e1.2.1 Equilibrium MD Prediction of Thermal Conductivity 11\u003c\/p\u003e \u003cp\u003e1.2.2 Nonequilibrium MD Study of Thermal Transport 15\u003c\/p\u003e \u003cp\u003e1.2.3 MD Study of Thermal Transport Constrained by Time 18\u003c\/p\u003e \u003cp\u003e1.3 Boltzmann Transportation Equation for Thermal Transport Study 21\u003c\/p\u003e \u003cp\u003e1.4 Direct Energy Carrier Relaxation Tracking (DECRT) 32\u003c\/p\u003e \u003cp\u003e1.5 Challenges in Characterizing Thermal Transport at Micro\/Nanoscales 44\u003c\/p\u003e \u003cp\u003eReferences 45\u003c\/p\u003e \u003cp\u003e\u003cb\u003e2 Thermal Characterization in Frequency Domain 47\u003c\/b\u003e\u003c\/p\u003e \u003cp\u003e2.1 Frequency Domain Photoacoustic (PA) Technique 47\u003c\/p\u003e \u003cp\u003e2.1.1 Physical Model 48\u003c\/p\u003e \u003cp\u003e2.1.2 Experimental Details 50\u003c\/p\u003e \u003cp\u003e2.1.3 PA Measurement of Films and Bulk Materials 52\u003c\/p\u003e \u003cp\u003e2.1.4 Uncertainty of the PA Measurement 55\u003c\/p\u003e \u003cp\u003e2.2 Frequency Domain Photothermal Radiation (PTR) Technique 57\u003c\/p\u003e \u003cp\u003e2.2.1 Experimental Details of the PTR Technique 57\u003c\/p\u003e \u003cp\u003e2.2.2 PTR Measurement of Micrometer-Thick Films 58\u003c\/p\u003e \u003cp\u003e2.2.3 PTR with Internal Heating of Desired Locations 60\u003c\/p\u003e \u003cp\u003e2.3 Three-Omega Technique 62\u003c\/p\u003e \u003cp\u003e2.3.1 Physical Model of the 3\u003ci\u003eω \u003c\/i\u003eTechnique for One-Dimensional Structures 62\u003c\/p\u003e \u003cp\u003e2.3.2 Experimental Details 65\u003c\/p\u003e \u003cp\u003e2.3.3 Calibration of the Experiment 67\u003c\/p\u003e \u003cp\u003e2.3.4 Measurement of Micrometer-Thick Wires 69\u003c\/p\u003e \u003cp\u003e2.3.5 Effect of Radiation on Measurement Result 70\u003c\/p\u003e \u003cp\u003e2.4 Optical Heating Electrical Thermal Sensing (OHETS) Technique 73\u003c\/p\u003e \u003cp\u003e2.4.1 Experimental Principle and Physical Model 73\u003c\/p\u003e \u003cp\u003e2.4.2 Effect of Nonuniform Distribution of Laser Beam 74\u003c\/p\u003e \u003cp\u003e2.4.3 Experimental Details and Calibration 77\u003c\/p\u003e \u003cp\u003e2.4.4 Measurement of Electrically Conductive Wires 79\u003c\/p\u003e \u003cp\u003e2.4.5 Measurement of Nonconductive Wires 81\u003c\/p\u003e \u003cp\u003e2.4.6 Effect of Au Coating on Measurement 83\u003c\/p\u003e \u003cp\u003e2.4.7 Temperature Rise in the OHETS Experiment 84\u003c\/p\u003e \u003cp\u003e2.5 Comparison Among the Techniques 85\u003c\/p\u003e \u003cp\u003eReferences 86\u003c\/p\u003e \u003cp\u003e\u003cb\u003e3 Transient Technologies in the Time Domain 87\u003c\/b\u003e\u003c\/p\u003e \u003cp\u003e3.1 Transient Photo-Electro-Thermal (TPET) Technique 87\u003c\/p\u003e \u003cp\u003e3.1.1 Experimental Principles 88\u003c\/p\u003e \u003cp\u003e3.1.2 Physical Model Development 88\u003c\/p\u003e \u003cp\u003e3.1.3 Effect of Nonuniform Distribution and Finite Rising Time of the Laser Beam 90\u003c\/p\u003e \u003cp\u003e3.1.4 Experimental Setup 92\u003c\/p\u003e \u003cp\u003e3.1.5 Technique Validation 93\u003c\/p\u003e \u003cp\u003e3.1.6 Thermal Characterization of SWCNT Bundles and Cloth Fibers 95\u003c\/p\u003e \u003cp\u003e3.2 Transient Electrothermal (TET) Technique 98\u003c\/p\u003e \u003cp\u003e3.2.1 Physical Principles of the TET Technique 98\u003c\/p\u003e \u003cp\u003e3.2.2 Methods for Data Analysis to Determine the Thermal Diffusivity 100\u003c\/p\u003e \u003cp\u003e3.2.3 Effect of Nonconstant Electrical Heating 101\u003c\/p\u003e \u003cp\u003e3.2.4 Experimental Details 102\u003c\/p\u003e \u003cp\u003e3.2.5 Technique Validation 104\u003c\/p\u003e \u003cp\u003e3.2.6 Measurement of SWCNT Bundles 105\u003c\/p\u003e \u003cp\u003e3.2.7 Measurement of Polyester Fibers 107\u003c\/p\u003e \u003cp\u003e3.2.8 Measurement of Micro\/Submicroscale Polyacrylonitrile Wires 109\u003c\/p\u003e \u003cp\u003e3.3 Pulsed Laser-Assisted Thermal Relaxation Technique 113\u003c\/p\u003e \u003cp\u003e3.3.1 Experimental Principles 113\u003c\/p\u003e \u003cp\u003e3.3.2 Physical Model for the PLTR Technique 114\u003c\/p\u003e \u003cp\u003e3.3.3 Methods to Determine the Thermal Diffusivity 116\u003c\/p\u003e \u003cp\u003e3.3.4 Experimental Setup and Technique Validation 117\u003c\/p\u003e \u003cp\u003e3.3.5 Measurement of Multiwalled Carbon Nanotube (MWCNT) Bundles 118\u003c\/p\u003e \u003cp\u003e3.3.6 Measurement of Individual Microscale Carbon Fibers 122\u003c\/p\u003e \u003cp\u003e3.4 Super Channeling Effect for Thermal Transport in Micro\/Nanoscale Wires 123\u003c\/p\u003e \u003cp\u003e3.5 Multidimensional Thermal Characterization 128\u003c\/p\u003e \u003cp\u003e3.5.1 Sample Preparation 129\u003c\/p\u003e \u003cp\u003e3.5.2 Thermal Characterization Design 130\u003c\/p\u003e \u003cp\u003e3.5.3 Thermal Transport Along the Axial Direction of Amorphous TiO\u003csub\u003e2\u003c\/sub\u003e Nanotubes 131\u003c\/p\u003e \u003cp\u003e3.5.4 Thermal Transport in the Cross-Tube Direction of Amorphous TiO\u003csub\u003e2\u003c\/sub\u003e Nanotubes 133\u003c\/p\u003e \u003cp\u003e3.5.5 Evaluation of Thermal Contact Resistance Between Amorphous TiO\u003csub\u003e2\u003c\/sub\u003e Nanotubes 136\u003c\/p\u003e \u003cp\u003e3.5.6 Anisotropic Thermal Transport in Anatase TiO\u003csub\u003e2\u003c\/sub\u003e Nanotubes 137\u003c\/p\u003e \u003cp\u003e3.6 Remarks on the Transient Technologies 139\u003c\/p\u003e \u003cp\u003eReferences 139\u003c\/p\u003e \u003cp\u003e\u003cb\u003e4 Steady-State Thermal Characterization 141\u003c\/b\u003e\u003c\/p\u003e \u003cp\u003e4.1 Generalized Electrothermal Characterization 142\u003c\/p\u003e \u003cp\u003e4.1.1 Generalized Electrothermal (GET) Technique: Combined Transient and Steady States 142\u003c\/p\u003e \u003cp\u003e4.1.2 Experimental Setup 144\u003c\/p\u003e \u003cp\u003e4.1.3 Experimental Details 145\u003c\/p\u003e \u003cp\u003e4.1.4 Measurement of MWCNT Bundle with \u003ci\u003eL \u003c\/i\u003e= 3\u003ci\u003e.\u003c\/i\u003e33 mm and \u003ci\u003eD \u003c\/i\u003e= 94\u003ci\u003e.\u003c\/i\u003e5 μm 147\u003c\/p\u003e \u003cp\u003e4.1.5 Measurement of MWCNT Bundle with \u003ci\u003eL \u003c\/i\u003e= 2\u003ci\u003e.\u003c\/i\u003e90 mm and \u003ci\u003eD \u003c\/i\u003e= 233 μm 153\u003c\/p\u003e \u003cp\u003e4.1.6 Analysis of the Tube-to-Tube Thermal Contact Resistance 157\u003c\/p\u003e \u003cp\u003e4.1.7 Effect of Radiation Heat Loss 158\u003c\/p\u003e \u003cp\u003e4.2 Get Measurement of Porous Freestanding Thin Films Composed of Anatase TiO\u003csub\u003e2\u003c\/sub\u003e Nanofibers 159\u003c\/p\u003e \u003cp\u003e4.2.1 Sample Preparation 160\u003c\/p\u003e \u003cp\u003e4.2.2 \u003ci\u003eR\u003c\/i\u003e–\u003ci\u003eT \u003c\/i\u003eCalibration 162\u003c\/p\u003e \u003cp\u003e4.2.3 TET Measurement of Thermal Conductivity and Thermal Diffusivity 163\u003c\/p\u003e \u003cp\u003e4.2.4 Thermophysical Properties of Samples with Different Dimensions 167\u003c\/p\u003e \u003cp\u003e4.2.5 The Intrinsic Thermal Conductivity of TiO2 Nanofibers 170\u003c\/p\u003e \u003cp\u003e4.2.6 Uncertainty Analysis 172\u003c\/p\u003e \u003cp\u003e4.3 Measurement of Micrometer-Thick Polymer Films 173\u003c\/p\u003e \u003cp\u003e4.3.1 Sample Preparation 173\u003c\/p\u003e \u003cp\u003e4.3.2 Electrical Resistance (\u003ci\u003eR\u003c\/i\u003e)-Temperature Coefficient Calibration 175\u003c\/p\u003e \u003cp\u003e4.3.3 Measurement of Thermal Conductivity and Thermal Diffusivity 175\u003c\/p\u003e \u003cp\u003e4.3.4 Thermophysical Properties of P3HT Thin Films with Different Dimensions 178\u003c\/p\u003e \u003cp\u003e4.4 Steady-State Electro-Raman Thermal (SERT) Technique 182\u003c\/p\u003e \u003cp\u003e4.4.1 Experimental Principle and Physical Model Development 183\u003c\/p\u003e \u003cp\u003e4.4.2 Experimental Setup for Measuring CNT Buckypaper 187\u003c\/p\u003e \u003cp\u003e4.4.3 Calibration Experiment 188\u003c\/p\u003e \u003cp\u003e4.4.4 Thermal Characterization of MWCNT Buckypapers 190\u003c\/p\u003e \u003cp\u003e4.4.5 Thermal Conductivity Analysis 192\u003c\/p\u003e \u003cp\u003e4.4.6 Uncertainty Induced by Location of Laser Focal Point 195\u003c\/p\u003e \u003cp\u003e4.4.7 Effect of Thermal and Electrical Contact Resistances and Thermal Transport in Electrodes 196\u003c\/p\u003e \u003cp\u003e4.5 SERT Measurement of MWCNT Bundles 197\u003c\/p\u003e \u003cp\u003e4.6 Extension of the Steady-State Techniques 202\u003c\/p\u003e \u003cp\u003eReferences 202\u003c\/p\u003e \u003cp\u003e\u003cb\u003e5 Steady-State Optical-Based Thermal Probing and Characterization 205\u003c\/b\u003e\u003c\/p\u003e \u003cp\u003e5.1 Sub-10-nm Temperature Measurement 205\u003c\/p\u003e \u003cp\u003e5.1.1 Introduction to Sub-10-nm Near-Field Focusing 206\u003c\/p\u003e \u003cp\u003e5.1.2 Experimental Design and Conduction 208\u003c\/p\u003e \u003cp\u003e5.1.3 Measurement Results 210\u003c\/p\u003e \u003cp\u003e5.1.4 Physics Behind Near-Field Focusing and Thermal Transport 213\u003c\/p\u003e \u003cp\u003e5.2 Thermal Probing at nm\/SUB-nm Resolution for Studying Interface Thermal Transport 219\u003c\/p\u003e \u003cp\u003e5.2.1 Introduction 219\u003c\/p\u003e \u003cp\u003e5.2.2 Experimental Method 220\u003c\/p\u003e \u003cp\u003e5.2.3 Experimental Results 221\u003c\/p\u003e \u003cp\u003e5.2.4 Comparison with Molecular Dynamics Simulation 225\u003c\/p\u003e \u003cp\u003e5.2.5 Discussion 226\u003c\/p\u003e \u003cp\u003e5.3 Optical Heating and Thermal Sensing using Raman Spectrometer 234\u003c\/p\u003e \u003cp\u003e5.3.1 Thermal Conductivity Measurement of Suspended Filmlike Materials 234\u003c\/p\u003e \u003cp\u003e5.3.2 Thermal Conductivity Measurement of Suspended Nanowires 236\u003c\/p\u003e \u003cp\u003e5.4 Bilayer Sensor-Based Technique 237\u003c\/p\u003e \u003cp\u003e5.5 Further Consideration for Micro\/Nanoscale Thermal Sensing and Characterization 238\u003c\/p\u003e \u003cp\u003e5.5.1 Electrothermal Sensing in Thermal Characterization of Coatings\/Films 239\u003c\/p\u003e \u003cp\u003e5.5.2 Transient Photo-Heating and Thermal Sensing of Wirelike Samples 240\u003c\/p\u003e \u003cp\u003eReferences 242\u003c\/p\u003e \u003cp\u003eIndex 247\u003c\/p\u003e","brand":"John Wiley \u0026 Sons Inc","offers":[{"title":"Default Title","offer_id":49406819959127,"sku":"9781118007440","price":102.56,"currency_code":"GBP","in_stock":false}],"url":"https:\/\/bookcurl.com\/products\/experimental-micronanoscale-thermal-transport-9781118007440","provider":"Book Curl","version":"1.0","type":"link"}