| Literature DB >> 36273005 |
Tolulope Michael Ajayi1,2, Vijay Singh3,4, Kyaw Zin Latt1, Sanjoy Sarkar2, Xinyue Cheng5, Sineth Premarathna1,2, Naveen K Dandu3,4, Shaoze Wang1,2, Fahimeh Movahedifar5, Sarah Wieghold1,6, Nozomi Shirato1, Volker Rose6, Larry A Curtiss3, Anh T Ngo3,4, Eric Masson7, Saw Wai Hla8,9.
Abstract
Complexes containing rare-earth ions attract great attention for their technological applications ranging from spintronic devices to quantum information science. While charged rare-earth coordination complexes are ubiquitous in solution, they are challenging to form on materials surfaces that would allow investigations for potential solid-state applications. Here we report formation and atomically precise manipulation of rare-earth complexes on a gold surface. Although they are composed of multiple units held together by electrostatic interactions, the entire complex rotates as a single unit when electrical energy is supplied from a scanning tunneling microscope tip. Despite the hexagonal symmetry of the gold surface, a counterion at the side of the complex guides precise three-fold rotations and 100% control of their rotational directions is achieved using a negative electric field from the scanning probe tip. This work demonstrates that counterions can be used to control dynamics of rare-earth complexes on materials surfaces for quantum and nanomechanical applications.Entities:
Year: 2022 PMID: 36273005 DOI: 10.1038/s41467-022-33897-3
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 17.694