Bioinspired Multifunctional Nanomaterials for Ionic Artificial Muscles

Author:   Van Hiep Nguyen
Publisher:   Springer International Publishing AG
ISBN:  

9783031788123


Pages:   108
Publication Date:   30 March 2025
Format:   Hardback
Availability:   Manufactured on demand   Availability explained
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Bioinspired Multifunctional Nanomaterials for Ionic Artificial Muscles


Overview

This book presents the development of four multifunctional nanomaterials: two electrolyte membranes with high ionic conductivity and robust mechanical strength and two electrode materials with excellent electrical conductivity and high capacitance. The integration of these materials has led to a substantial improvement in the performance of ionic actuators, enabling their application in four demonstrative models: soft fingers, inchworms, dynamic tensegrity structures, and dragonflies. Therefore, this multidisciplinary book is highly relevant to a wide range of scientific fields, including materials science, ionic actuators, soft robotics, bioinspiration, and biomimetics, as well as energy storage systems such as batteries, capacitors, and fuel cells.

Full Product Details

Author:   Van Hiep Nguyen
Publisher:   Springer International Publishing AG
Imprint:   Springer International Publishing AG
ISBN:  

9783031788123


ISBN 10:   3031788125
Pages:   108
Publication Date:   30 March 2025
Audience:   Professional and scholarly ,  Professional & Vocational
Format:   Hardback
Publisher's Status:   Active
Availability:   Manufactured on demand   Availability explained
We will order this item for you from a manufactured on demand supplier.

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Author Information

Nguyen, Van Hiep received his Bachelor’s degree in Polymer Materials from Hanoi University of Science and Technology. He subsequently obtained both his Master’s and Doctoral degrees in Mechanical Engineering from the Korea Advanced Institute of Science and Technology (KAIST), where his research focused on the development of polymer electrolytes, graphene, and covalent triazine frameworks for use in ionic actuators. Currently, he is a postdoctoral researcher at KAIST. His research interests encompass the development of advanced materials, including polymer electrolytes, graphene, covalent organic frameworks, metal organic frameworks, MXenes, and bioinspired nanomaterials, and their applications in energy devices such as actuators, batteries, supercapacitors, and soft robotics.

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