
Bioinspired Antifouling Surfaces
Beschreibung
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Prof. Limei Tian received her PhD degree from JLU in 2005, and then she worked at the Key Laboratory of Bionic Engineering (Ministry of Education), JLU. From 2011-2012, she worked at the University of Manchester, UK as a visiting scientist. She has been working as the Secretary-General of the International Society for Bionics Engineering Youth Committee since 2016. Her current research interest focuses on the development of functional bionic surfaces that have drag reduction and antifouling properties. Based on the above research, she obtained 12 projects and nearly 20 million RMB, including the China National Natural Fund and other provincial-ministerial projects. She has published more than 50 papers in Material Sci. and Eng. C, J. Bionic Eng., Bra. Soc. Mech. Sci, etc., with 20 Chinese or international patents applied or authorized.Zhao Jie:
Prof. Jie Zhao received his PhD from Changchun Institute of Applied Chemistry Chinese Academy of Sciences in 2011. He moved to the USA afterward and worked at Georgia Southern University as a postdoctoral researcher. He has been a professor at Jilin University since 2016. His research focuses on bio-inspired surfaces, anti-fog coatings, and antibacterial coatings. He has published 40 SCI papers with more than 1700 citations. Currently, he has an h-index of 16 (Publons).Jin Huichao:
Dr. Huichao Jin received his PhD degree in physics from Jilin University (JLU). He is currently an assistant researcher in JLU. His research focuses on functional surfaces, bioinspired antifouling coatings, and medical antifouling materials.Bing Wei:
Dr. Wei Bing received her PhD degree from JLU in 2016, and then she joined Changchun University of Technology. She has conducted her postdoctoral studies in Jilin University since November 2017. Her research interests include biomimetic surface, antifouling films, bactericidal materials, biocatalysis and photodynamic therapy for environmental and medical applications.Jiang Rujian:
Doctor of Engineering - Shandong First Medical University & Shandong Academy of Medical Sciences · Science and Technology Innovation Center, School of Chemistry and Pharmaceutical Engineering
Inhalt
- Intro
- Bioinspired Antifouling Surfaces
- Contents
- Foreword
- Introduction to Biofouling and Bionics
- Biofouling
- Bionics
- Definition
- Antifouling Strategies Developed by Nature
- Materials Science and Manufacturing Techniques
- References
- Marine Biofouling and Surface Properties
- Marine Biofouling
- Marine Biofouling Process
- Fouling Organisms and Their Adhesion Behavior
- Species of Fouling Organisms
- Adhesion Behavior of Fouling Organisms
- Biofouling-Related Costs
- History of Antifouling Coatings
- Basics of Wettability/Surface Energy
- Surface Wettability
- The Young's Equation
- The Wenzel Model
- The Cassie-Baxter Model
- Dynamic Contact Angles
- Solid Surface Energy
- References
- Bioinspired Textured Surfaces for Marine Antifouling
- Introduction of Textured Surfaces
- Lotus Leaf
- Rice Leaf
- Butterfly Wings
- Mosquito Eyes
- Design Principles of Textured Surfaces
- Early Attempts
- Engineered Roughness Index
- Surface Energetic Attachment
- Contact Mechanics Theory
- Challenges and Solutions
- References
- Natural Antifoulants for Antifouling Surfaces
- Introduction
- Antifoulants from Marine Organisms
- Antifoulants from Terrestrial Plants
- Synthetic Analogues
- Dihydrostilbenes
- Capsaicin Analogs
- Indole Derivatives
- References
- Other Nature-Inspired Marine Antifouling Surfaces
- Introduction
- Natural Hydrogel-Inspired Antifouling Surfaces
- Introduction
- Current Hydrogels for Marine Antifouling
- Tough Hydrogels
- Hydrogel Brushes
- Hydrogel Composites
- Slippery Liquid-Infused Porous Surfaces (SLIPS)
- Natural SLIPS
- SLIPS for Antifouling
- Bioinspired Dynamic Surfaces
- Renewable Surfaces
- Natural Renewable Surfaces
- Variable Viscosity Materials
- Degradable Acrylic Copolymers
- Degradable Polyurethane Copolymers
- Unstable Surfaces
- Actively Deformed Surfaces
- Passively Deformed Surfaces
- References
- Bioinspired Medical Surfaces
- Bacterial Infection and Traditional Antibacterial Strategies
- Antibiotics and Physiological Activity
- Biofilm Infections
- Traditional Medical Antibacterial and Antifouling Methods
- Causes of Drug Resistance
- Manage and Prevent Drug Resistance
- Bioinspired Medical Antibacterial and Antifouling Methods
- References
- Bioinspired SLIPS for Medical Antifouling
- Introduction
- Bioinspired Prototype of Lubricant-Infused Slippery Surfaces
- Fundamental Principle and Liquid Repellency Mechanism of SLIPS
- Fabrication Strategies of SLIPS for Antifouling Applications
- Conclusions and Outlook
- References
- Superhydrophobic Surfaces for Medical Antifouling
- Introduction
- Fabrication Technologies of Superhydrophobic Textiles
- Bottom-Up Fabrication
- Physical Deposition: Spray-Coating and Dip-Coating
- Electrospinning
- Sol-Gel
- Hydrothermal Method
- Phase Inversion
- Top-Down Fabrication
- Photolithography
- Etching
- Conclusions and Outlooks
- References
- Bioinspired Mechanical Bactericidal Surfaces
- Naturally Occurring Nanostructured Bactericidal Surfaces
- Bactericidal Mechanism
- Artificial Mechanical Bactericidal Surfaces and Fabricating Technologies
- Conclusions and Outlook
- References
- Bioinspired Medical Drug-Delivery Surfaces
- The Inspiration and Development of Drug-Delivery Surfaces
- Types of Bioinspired Drug-Delivery Medical Surfaces
- Bioinspired Hydrogels
- Bioinspired Polymeric Carriers
- Bioinspired Nanostructures and Surfaces
- Other Bioinspired Drug-Delivery Surfaces
- References
- Conclusion
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