The limits of Near Field Immersion Microwave Microscopy evaluated by imaging bilayer graphene Moir\'{e} patterns
Abstract
Molecular and atomic imaging required the development of electron and scanning probe microscopies to surpass the physical limits dictated by diffraction. Nano-infrared experiments and pico-cavity tip-enhanced Raman spectroscopy imaging later demonstrated that radiation in the visible range can surpass this limit by using scanning probe tips to access the near-field regime. Here we show that ultimate resolution can be obtained by using scanning microwave imaging microscopy to reveal structures with feature sizes down to 1~nm using a radiation of 0.1~m in wavelength. As a test material we use twisted bilayer graphene, which is not only a very important recent topic due to the discovery of correlated electron effects such as superconductivity, but also because it provides a sample where we can systematically tune a superstructure Moir\'e patterns modulation from below one up to tens of nanometers. By analyzing the tip-sample distance dynamics, we demonstrate that this ultimate 10 probe-to-pattern resolution can be achieved by using liquid immersion microscopy concepts and exquisite force control exerted on nanoscale water menisci.
Keywords
Cite
@article{arxiv.2007.03823,
title = {The limits of Near Field Immersion Microwave Microscopy evaluated by imaging bilayer graphene Moir\'{e} patterns},
author = {Douglas A. A. Ohlberg and Diego Tami and Andreij C. Gadelha and Eliel G. S. Neto and Fabiano C. Santana and Daniel Miranda and Wellington Avelino and Kenji Watanabe and Takashi Taniguchi and Leonardo C. Campos and Jhonattan C. Ramirez and Cássio Gonçalves do Rego and Ado Jorio and Gilberto Medeiros-Ribeiro},
journal= {arXiv preprint arXiv:2007.03823},
year = {2021}
}
Comments
suppl. mat included, movies not included and available upon request by email to [email protected]