2D Ionic Liquid‐Like State of Charged Rare‐Earth Clusters on a Metal Surface

Author:

Trainer Daniel1,Lee Alex Taekyung23,Sarkar Sanjoy4,Singh Vijay23,Cheng Xinyue5,Dandu Naveen K.23,Latt Kyaw Zin1,Wang Shaoze14,Ajayi Tolulope Michael14,Premarathna Sineth14,Facemyer David4,Curtiss Larry A.3ORCID,Ulloa Sergio E.4ORCID,Ngo Anh T.23,Masson Eric5ORCID,Hla Saw Wai14ORCID

Affiliation:

1. Nanoscience and Technology Division Argonne National laboratory Lemont IL 60439 USA

2. Chemical Engineering Department University of Illinois at Chicago Chicago IL 60608 USA

3. Materials Science Division Argonne National laboratory Lemont IL 60439 USA

4. Nanoscale and Quantum Phenomena Institute and Department of Physics and Astronomy Ohio University Athens OH 45701 USA

5. Department of Chemistry and Biochemistry Ohio University Athens OH 45701 USA

Abstract

AbstractRare‐earth complexes are vital for separation chemistry and useful in many advanced applications including emission and energy upconversion. Here, 2D rare‐earth clusters having net charges are formed on a metal surface, enabling investigations of their structural and electronic properties on a one‐cluster‐at‐a‐time basis using scanning tunneling microscopy. While these ionic complexes are highly mobile on the surface at ≈100 K, their mobility is greatly reduced at 5 K and reveals stable and self‐limiting clusters. In each cluster, a pair of charged rare‐earth complexes formed by electrostatic and dispersive interactions act as a basic unit, and the clusters are chiral. Unlike other non‐ionic molecular clusters formed on the surfaces, these rare‐earth clusters show mechanical stability. Moreover, their high mobility on the surface suggests that they are in a 2D liquid‐like state.

Funder

U.S. Department of Energy

Office of Science

Publisher

Wiley

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