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    1. Naturvetenskap och teknik
    2. Matematik och naturvetenskap
    3. Fysik
    4. Tillämpad fysik

    Controlled Surface Wetting

    From Bioinspiration to Applications

    AvYongmei Zheng

    Inbunden, Engelska, 2025

    1 368 kr

    Skickas . Fri frakt över 249 kr.

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    E-bok

    1 846 kr

    E-bok

    1 846 kr

    Beskrivning

    Comprehensive resource covering the latest development of surface engineering inspired by nature with a special focus on wetting control Drawing from the natural abilities of plants and animals around the world, Controlled Surface Wetting takes a deep dive into wetting-controlled systems of biological surfaces with information on mechanisms, theory, surface design, fabrication, and effects. This book guides readers to design better engineering surfaces for applications in self-cleaning, water harvesting and repellency, anti-icing, liquid-transport, and beyond. Exploring the latest literature, this book introduces bioinspired techniques and methods to design wetting-controlled surfaces by using organic or inorganic materials, including those with high/low surface energy, regular/irregular, ordered/disordered, or rough/smooth surfaces, or endless arrangements and combinations of micro- and nanostructures of various styles. This book begins by introducing biological surfaces such as plant leaves and duck feathers, butterfly wings, and spider silks, as well as their functions, including superhydrophobic properties, water repellency, and capturing tiny water droplets, respectively, progressing through to more advanced topics such as dually-mobile super-repellency, multi-liquid repellency, and switchable repellency in both air and liquid. Controlled Surface Wetting includes discussion on: Fundamental wetting theories, extension and theoretical models, wetting dynamics and kinetics, physics of wetting, wetting adhesion, and wetting chemistryStatic and dynamic gradients, texture gradients such as gradient polymers, wedge- and helical-induced gradients, and synergism of multi-gradientsFormation, control, and instability of Rayleigh instability, microfluidics, fluid-coating, electrospinning, fluid diffusion, and laser techniquesCoalesced-droplet vertical transport, the hierarchical droplet size-effect, atmospheric water harvesting, and energy harvestingArtificial skins and sensors, including artificial skin vision, and medical applications, including directional-controllable drug deliveryControlled Surface Wetting is an up-to-date and completely comprehensive resource for students and researchers in chemistry, physics, and materials science seeking to learn about the design of smart and advanced materials for engineering applications.

    Produktinformation

    • Utgivningsdatum:2025-04-02
    • Mått:170 x 244 x 15 mm
    • Vikt:680 g
    • Format:Inbunden
    • Språk:Engelska
    • Antal sidor:320
    • Förlag:Wiley-VCH Verlag GmbH
    • ISBN:9783527352890

    Utforska kategorier

    • Tillämpad fysik inom Naturvetenskap och teknik
    • Fysikalisk kemi inom Naturvetenskap och teknik
    • Maskinteknik och material inom Naturvetenskap och teknik

    Mer om författaren

    Yongmei Zheng, PhD, is a Professor at the Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of the Ministry of Education, School of Chemistry, Beihang University, Beijing. Her research interests are focused on bioinspired surfaces with gradient micro- and nanostructures to control dynamic wettability and develop the surfaces and materials with characteristics of fog-harvesting, tiny droplet transport, and water collection. Her publications include more than 146 SCI papers with an H index of 52.

    Innehållsförteckning

    • Preface xiiiAcknowledgments xv1 Wetting-Controlled Systems of Biological Surfaces 11.1 Introduction 11.1.1 Duck Feather 11.1.2 Insect Wings 31.1.3 Lotus Leaf 31.1.4 Beetle Back 41.1.5 Rice Leaf 41.1.6 Water Strider 41.1.7 Butterfly Wing 41.1.8 Mosquito Eye 51.1.9 Rose Petal 51.1.10 Fish Scale 51.1.11 Cicada Wing 61.1.12 Spider Silk 61.1.13 Salvinia 61.1.14 Cacti 71.1.15 Gecko Skin 71.1.16 Nepenthes 71.2 Wetting Features of Biological Surfaces 81.2.1 Wet-Rebuilt Spindle-Knot with Nanofibrils on Spider Silk 81.2.2 Slippery in Multiorder Ridges on Peristome Surface of Nepenthes 101.2.3 Selectively Directional Ratchet Transport 121.2.4 Multilevel Structured System of Cacti 131.2.5 Overlapping Arrangement of Fish Scale 141.3 Antiwetting Features of Biological Surfaces 161.3.1 Multilevel Wetting-Controlling on Duck Feather 161.3.2 Gradient Micro- and Nanostructures for Droplet Suspending-up 181.3.3 Oriented Microhair with Nanogroove for Superhdyrophobic Floating 201.3.4 Butterfly Wing with Multilevel-oriented Structures 211.4 Biological Patterns on Micro- and Nanoscale Structures 231.4.1 Isotropic Micro- and Nanostructured Pattern 241.4.2 Anisotropic Pattern for Wetting Direction 251.4.3 Alternative Hydrophilic–Hydrophobic Patterns 261.5 Wetting-Controlled Effects 271.5.1 Spider Silk Effect: Cooperative Effect of Roughness and Curvature 281.5.2 Cactus Effect: Cooperative Effect of Multilevel Conical Geometries 291.5.3 Araucaria Leaf Effect: Steering Effect of Asymmetric Capillary Ratchet Geometries 301.5.4 Beetle Back Effect: Hydrophilic–Hydrophobic Heterogeneous Pattern 311.5.5 Self-Propelling Effect: Ultrasuperhydrophobic Micro- and Nanostructures 321.5.6 Janus Effect of Antifreeze Proteins: Controlling Ice Formation 34References 362 Mechanism and Theory of Wetting-Controlled Surfaces 412.1 Concept of Wetting-Controlled Effects 412.1.1 Wetting and Significance 412.1.2 Basic Definition of Wetting 422.1.3 Wetting in Biological Systems 442.1.4 Technological Relevance of Wetting Control 472.2 Wetting Theory of Surfaces 482.2.1 Fundamental Wetting Theories 482.2.2 Extension and Theoretical Models 492.2.3 Wetting Dynamics and Kinetics 512.2.4 Surface Roughness and Wetting 522.2.5 Wetting Transitions and Behavior 532.3 Physics of Wetting 552.3.1 Molecular Interactions in Wetting and Adhesion 552.3.2 Wetting Properties and Adhesion 562.3.3 Biological Structures and Adhesion Models 582.3.4 Quantitative Analysis of Wetting 592.3.5 Wetting Under External Influences 632.4 Surface Chemistry and Structures 642.4.1 Chemical Composition and Wetting 642.4.2 Surface Topography and Wetting Behavior 652.4.3 Chemical Modifications for Wetting Control 662.4.4 Chemical Heterogeneity and Janus 682.4.5 Chemistry Gradient for Controlling Wetting 702.5 Bioinspired Wetting-Controlled Mechanism 732.5.1 Liquid-Repellent Effects 732.5.2 Liquid Unidirection–Transport Effects 752.5.3 Controlling Ice Effects 762.5.4 Atmospheric Water Capture Effects 782.6 Self-Propelling Effects of Surfaces 822.6.1 Natural Self-Propelling System 822.6.2 Self-Propelling Theory from Gradient Surfaces 842.6.3 Self-Propelling Controlled on Conical-Structured Surfaces 852.6.4 Self-Propelled Droplet Jumping on Wetting-Stated Surfaces 882.6.5 Self-Propelled Topological Liquid Diode 892.7 Capillary Regime 922.7.1 Introduction of Capillary 922.7.2 Bioinspired Structured Surfaces with Controlled Capillary Rise 942.7.3 Rough Capillary Rise: Dual-Rise Model 952.7.4 Capillary Force-Induced Driving Strategy for Separations 972.7.5 Capillary Microfluidics System 1002.7.6 Capillary Solar Evaporator 1032.8 Liquid Infused Surfaces 1052.8.1 Liquid-Infused Regulation 1052.8.2 Bioinspired Lubricated Slippery Magnetic Responsive Array 1072.8.3 Slippery Surface for Defensive-Offensive Antifouling 1102.8.4 Slippery Liquid-Infused Surface for Integrative Functions 111References 1153 Design on Surfaces with Wetting-Controlled Effects 1273.1 Concept of Gradients 1273.1.1 Static Gradients 1273.1.2 Dynamic Gradients 1303.2 Chemistry Gradient 1303.2.1 Gradient of Chemical Groups in Density 1313.2.2 Molecule Gradient 1313.2.3 Dual Gradient in Janus Wettability 1333.2.4 Gradient in Thickness of Membrane 1353.2.5 Gradients of Polymer Brushes 1363.3 Texture Gradients 1373.3.1 Anisotropic Texture Gradient 1373.3.2 Texture Gradient of Wetting Heterogeneity 1373.3.3 Texture Gradient of Wetting-Controlling 1383.3.4 Texture with Gradient Polymers 1403.4 Geometry Gradient 1423.4.1 Spine with Microbarbs and Channels 1423.4.2 Wedged-Induced Gradient 1433.4.3 Conical-Induced Gradient for Wetting-Controlling 1443.4.4 Helical-Induced Gradient 1473.4.5 Spine-Shaped Gradient 1483.5 Synergism of Multi-gradients 1503.5.1 Rough Spindle-Knot for Photocatalyst 1503.5.2 Liquid-Infused Spindle-Knot 1513.5.3 Composite Wettability Gradient 1543.5.4 Wettability Gradient-Induced Diode 1553.5.5 Electronic Skin with Dual-Gradient Wettability 1573.6 Surface Tension Gradient 1593.6.1 Definition of Surface Tension Gradient 1593.6.2 Asymmetric Tube to Control Surface Tension 1603.6.3 Shape Shifting of Surface Tension and Capillary 1623.6.4 Wettability Gradient in Cross-thickness 164References 1664 Development of Bioinspired Fabrication and Methods 1754.1 Rayleigh Instability 1754.1.1 Formation of Rayleigh Instability 1754.1.2 Controlling of Rayleigh Instability 1774.1.3 Bioinspired Effects of Rayleigh Instability 1784.2 Microfluidics 1794.2.1 Introduction of Microfluidics 1794.2.2 Multiphase Microfluidics 1814.2.3 Coaxial Capillary Microfluidic 1824.2.4 Parallel-Nozzles Microfluidic 1834.2.5 Co-Axial Microfluidic 1844.3 Fluid-Coating 1844.3.1 Origin of Fluid-Coating 1854.3.2 Velocity-Regulated Fluid-Coating 1874.3.3 Fluid-Coating for Composite Nanofibers 1884.4 Electrospinning 1894.4.1 Basics of Electrospinning 1894.4.2 Bioinspired Lotus-like Structures 1904.4.3 Bioinspoired Heterostructured Fibers 1914.4.4 Wet Adhesive with Supercold Tolerance 1934.4.5 Omniadhesive Fibers 1944.4.6 Composite Nanofibrils 1954.5 Electrochemistry 1974.5.1 Wettable Gradient Pattern 1974.5.2 Multiinspired 3D Wettable Gradient 1984.5.3 Bidirectional Microchannel-Connected Pattern 1994.5.4 Capillarity-Induced Oxidation 2004.5.5 Bipolar Electrochemistry 2014.6 Fluid Diffusion for Gradient 2024.6.1 Liquid-Confined Modification for Janus Wire 2044.6.2 Ethanol-Infused Nanofibrils Wire for Cutting Droplet 2054.7 Laser Techniques 2054.7.1 Laser-Fabricated Geometric Gradient Surfaces 2074.7.2 Laser Microfabrication Strategy 2074.7.3 Laser Ablation for Wettability Pattern 2114.8 Printing Techniques 2114.8.1 Introduction to Printing Techniques 2134.8.2 Principle of Fabrication from Printings 2144.8.3 Heterostructure Patterning on Printed Matrix 2154.8.4 Printed Divisional Optical Biochip 2154.9 Nanotechnology 2184.9.1 Superhydrophilic Photothermic Nanocapsule 2184.9.2 Photothermal Dual-Nanoscale Effect 2194.9.3 MOF-Based Nanostructure 2204.9.4 MOF-Composite Nanofibers 2214.10 Plasma Techniques 2224.10.1 Functionalities of Titania Nanotube Arrays 2234.10.2 Pattern Fabrication in Wetting-Enabled-Transfer Strategy 224References 2265 Wetting-Controlled Effects for Functions and Applications 2355.1 Condensate Droplet Transport 2355.1.1 Coalesced-Droplet Vertical Transport 2355.1.2 Hierarchical Droplet Size-Effect 2365.1.3 Coalesced-Droplet Self-Propelling 2375.2 Fog Droplet Harvesting 2385.2.1 Introduction of Bioinspired Fog Harvesting 2395.2.2 Thermodynamical Fog Harvesting 2405.2.3 Janus-Integrated Fog Harvesting 2415.3 Atmospheric Water Harvesting 2445.3.1 MOF-Composite Nanofibers Textures 2445.3.2 MOF-Based Polymer Composite 2455.3.3 Super-hydrophilic Photothermic Nanocapsule 2475.4 Anti-icing 2485.4.1 Anti-icing onto Wind Turbine Blades 2485.4.2 Robust Photothermal Icephobic Surface 2495.4.3 Ice Inhibition for Cryopreservation 2515.5 Liquid Repellency 2525.5.1 Dually-Mobile Super-Repellency 2525.5.2 Multi-liquid Repellency 2545.5.3 Switchable Repellency in Both Air and Liquid 2545.6 Energy Harvesting 2565.6.1 Photothermal Energy Storage 2565.6.2 Salinity-Gradient Energy Harvesting 2575.6.3 Moisture-Driven Energy Generation 2605.7 Heat Transfer 2615.7.1 Thermal Energy Regulation and Utilization 2615.7.2 Switchable Thermoregulation 2635.7.3 Radiative Cooling Regulation 2675.8 Artificial Skin and Sensor 2685.8.1 Skin-Inspired Devices 2685.8.2 Artificial Skin Vision by Wet-Infused State 2695.8.3 Bioinspired Ionic Skins 2715.9 Medical Application 2725.9.1 Directional-Controllable Drug Delivery 2725.9.2 Nature-Inspired Wet Drug Delivery 2735.9.3 Inspired Active Injection Drug Delivery 274References 276Summary 293Index 295
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