Spintronic emitters for super-resolution in THz-spectral imaging
Abstract
THz-spectroscopy is an attractive imaging tool for scientific research, especially in life science, offering non-destructive interaction with matter due to its low photon energies. However, wavelengths above principally limit its spatial resolution in the far-field by diffraction to this regime, making it not sufficient to image biological cells in the micrometer scale. Therefore, super-resolution imaging techniques are required to overcome this restriction. Near-field-imaging using spintronic emitters offers the most feasible approach because of its simplicity and potential for wide-ranging applications. In our study, we investigate THz-radiation generated by fs-laser-pulses in CoFeB/Pt heterostructures, based on spin currents, detected by commercial LT-GaAs Auston switches. The spatial resolution is evaluated applying a 2D scanning technique with motorized stages allowing scanning steps in the sub-micrometer range. By applying near-field imaging we can increase the spatial resolution to the dimensions of the laser spot size in the micrometer scale. For this purpose, the spintronic emitter is directly evaporated on a gold test pattern separated by a 300 nm spacer layer. Moving these structures with respect to the femtosecond laser spot which generates the THz radiation allows for resolution determination using the knife-edge method. We observe a full-width half-maximum THz beam diameter of m at 1 THz. The possibility to deposit spintronic emitter heterostructures on simple glass substrates makes them an interesting candidate for near-field imaging for a large number of applications.
Cite
@article{arxiv.2111.05023,
title = {Spintronic emitters for super-resolution in THz-spectral imaging},
author = {Finn-Frederik Stiewe and Tristan Winkel and Yuta Sasaki and Tobias Tubandt and Tobias Kleinke and Christian Denker and Ulrike Martens and Nina Meyer and Tahereh Sadat Parvini and Shigemi Mizukami and Jakob Walowski and Markus Münzenberg},
journal= {arXiv preprint arXiv:2111.05023},
year = {2022}
}
Comments
10 pages, 4 figures