DOE OSTI · 2472848
Accelerated Nano-Optical Imaging through Sparse Sampling
Abstract
The integration time and signal-to-noise ratio are inextricably linked when performing scanning probe microscopy based on raster scanning. This often yields a large lower bound on the measurement time, for example, in nano-optical imaging experiments performed using a scanning near-field optical microscope (SNOM). Here, in this study, we utilize sparse scanning augmented with Gaussian process regression to bypass the time constraint. We apply this approach to image charge-transfer polaritons in graphene residing on ruthenium trichloride (α-RuCl 3 ) and obtain key features such as polariton damping and dispersion. Critically, nano-optical SNOM imaging data obtained via sparse sampling are in good agreement with those extracted from traditional raster scans but require 11 times fewer sampled points. As a result, Gaussian process-aided sparse spiral scans offer a major decrease in scanning time.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Fu, Matthew, Xu, Suheng, Zhang, Shuai, Ruta, Francesco L., Pack, Jordan, Mayer, Rafael A., Chen, Xinzhong, Moore, Samuel L., Rizzo, Daniel J., Jessen, Bjarke S., Cothrine, Matthew, Mandrus, David G., Watanabe, Kenji, Taniguchi, Takashi, Dean, Cory R., Pasupathy, Abhay N., Bisogni, Valentina, Schuck, P. James, Millis, Andrew J., Liu, Mengkun, Basov, D. N.. 2024-02-08. Accelerated Nano-Optical Imaging through Sparse Sampling. https://doi.org/10.1021/acs.nanolett.3c03733
Cite the original work for its findings. Save a collection to share your selection of sources.