A1 Journal article (refereed)
Stability limits of elemental 2D metals in graphene pores (2019)


Nevalaita, J., & Koskinen, P. (2019). Stability limits of elemental 2D metals in graphene pores. Nanoscale, 11(45), 22019-22024. https://doi.org/10.1039/C9NR08533E


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Publication details

All authors or editorsNevalaita, Janne; Koskinen, Pekka

Journal or seriesNanoscale

ISSN2040-3364

eISSN2040-3372

Publication year2019

Volume11

Issue number45

Pages range22019-22024

PublisherRoyal Society of Chemistry

Publication countryUnited Kingdom

Publication languageEnglish

DOIhttps://doi.org/10.1039/C9NR08533E

Publication open accessOpenly available

Publication channel open accessPartially open access channel

Publication is parallel published (JYX)https://jyx.jyu.fi/handle/123456789/66517


Abstract

Two-dimensional (2D) materials can be used as stabilizing templates for exotic nanostructures, including pore-stabilized, free-standing patches of elemental metal monolayers. Although these patches represent metal clusters under extreme conditions and are thus bound for investigations, they are poorly understood as their energetic stability trends and the most promising elements remain unknown. Here, using density-functional theory simulations and the liquid drop model to explore the properties of 45 elemental metal candidates, we identify metals that enable the largest and most stable patches. Simulations show that pores can stabilize patches up to ∼8 nm2 areas and that the most prominent candidate in a graphene template is Cu. The results, which are generalizable to templates also beyond graphene, provide encouragement for further, even more resolute experimental pursuit of 2D metals.


Keywordsnanostructuresgraphenemetalsdensity functional theory

Free keywordsstability limits; elemental 2D metals; graphene pores


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Ministry reportingYes

Reporting Year2019

JUFO rating2


Last updated on 2024-25-03 at 13:19