G5 Doctoral dissertation (article)
Modification of graphene properties by optical forging (2021)


Hiltunen, V.-M. (2021). Modification of graphene properties by optical forging [Doctoral dissertation]. Jyväskylän yliopisto. JYU Dissertations, 362. http://urn.fi/URN:ISBN:978-951-39-8560-8


JYU authors or editors


Publication details

All authors or editorsHiltunen, Vesa-Matti

eISBN978-951-39-8560-8

Journal or seriesJYU Dissertations

eISSN2489-9003

Publication year2021

Number in series362

Number of pages in the book1 verkkoaineisto (93 sivua, 51 sivua useina numerointijaksoina, 29 numeroimatonta sivua)

PublisherJyväskylän yliopisto

Place of PublicationJyväskylä

Publication countryFinland

Publication languageEnglish

Persistent website addresshttp://urn.fi/URN:ISBN:978-951-39-8560-8

Publication open accessOpenly available

Publication channel open accessOpen Access channel


Abstract

Graphene is one atom layer thin carbon material that has gained plenty of attention due to its numerous excellent properties. In this thesis a novel method to modify the structure and properties of graphene, called optical forging, is presented. In this method graphene is irradiated using femtosecond pulsed laser light and as a result of it graphene forms three-dimensional structures. Detailed characterizations have revealed that the process of optical forging causes defects to the graphene lattice, which in turn causes lattice expansion and bulging of graphene into the 3D shapes. In addition to this, some amorphous carbon is deposited onto graphene as a side effect, and the formation of the entire 3D shape is a combination of both bulging and deposition. Using nanoindentation measurements, optically forged graphene was determined to have high bending stiffness, which is very different from pristine graphene, which is very flexible. Optically forged patterns are also and more reflective than pristine graphene and they exhibit photoluminescence. As for applications, optical forging can be used to make ultralight scaffold structures from graphene, and potentially to increase the resonance frequencies of graphene resonator devices.


Keywordsgraphenethin filmsnanostructureschemical vapour depositionthree-dimensionalitymanufacturinglaser pulsesoptical propertiesphysical propertiesdoctoral dissertations

Free keywordsgraphene; nanoindentation; graphene quantum dot; chemical vapor deposition; Raman spectroscopy; atomic force microscopy; elastic modulus; defect engineering; optical forging


Contributing organizations


Ministry reportingYes

Reporting Year2021


Last updated on 2024-03-04 at 20:15