Bionic functional structures by femtosecond laser micro/nanofabrication technologies /

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Bibliographic Details
Author / Creator:Li, Guoqiang, author.
Imprint:Singapore : Springer, [2018]
Description:1 online resource
Language:English
Series:Springer theses
Springer theses.
Subject:
Format: E-Resource Book
URL for this record:http://pi.lib.uchicago.edu/1001/cat/bib/11655128
Hidden Bibliographic Details
ISBN:9789811303593
9811303592
9811303584
9789811303586
Digital file characteristics:text file PDF
Notes:"Doctoral thesis accepted by the University of Science and Technology of China, Hefei, China.
Summary:"This thesis combines advanced femtosecond laser micro/nanofabrication technologies and frontier bionic design principles to prepare diverse biomimetic micro/nanostructures to realize their functions. By studying the formation mechanism of the micro/nanostructures, the author identifies various artificial structural colors, three-dimensional micro/nanocage arrays, and fish-scale inspired microcone arrays in different processing environments. Multiple functions such as enhanced antireflection, hydrophobicity, and underwater superoleophobicity are achieved by precisely adjusting laser-machining parameters. This novel design and method have extensive potential applications in the context of new colorizing technologies, microfluidics, microsensors, and biomedicine."--
Other form:Print version: 9811303584 9789811303586
Standard no.:10.1007/978-981-13-0359-3
10.1007/978-981-13-0
Description
Summary:

This thesis combines advanced femtosecond laser micro/nanofabrication technologies and frontier bionic design principles to prepare diverse biomimetic micro/nanostructures to realize their functions. By studying the formation mechanism of the micro/nanostructures, the author identifies various artificial structural colors, three-dimensional micro/nanocage arrays, and fish-scale inspired microcone arrays in different processing environments. Multiple functions such as enhanced antireflection, hydrophobicity, and underwater superoleophobicity are achieved by precisely adjusting laser-machining parameters. This novel design and method have extensive potential applications in the context of new colorizing technologies, microfluidics, microsensors, and biomedicine.

Item Description:"Doctoral thesis accepted by the University of Science and Technology of China, Hefei, China.
Physical Description:1 online resource
ISBN:9789811303593
9811303592
9811303584
9789811303586