Affiliation:
1. 4th Physics Institute and Research Center SCoPE University of Stuttgart Pfaffenwaldring 57 70569 Stuttgart Germany
2. Institute of Applied Optics (ITO) and Research Center SCoPE University of Stuttgart 70569 Pfaffenwaldring 9 Stuttgart Germany
3. Printoptix GmbH 70176 Johannesstr. 11 Stuttgart Germany
Abstract
AbstractPrecise positioning of optical elements plays a key role in the performance of optical systems. While additive manufacturing techniques such as 3D printing enable the creation of entire complex micro‐objectives in one step, thus rendering lens alignment unnecessary, certain applications require precise positional alignment of the printing process with respect to the substrate. For example, in order to efficiently couple quantum emitters to single‐mode fibers, which is a crucial step in the development of real world quantum networks, precise alignment between the emitter, the coupling optics, and the single‐mode fiber is of utmost importance. In this work, the positioning accuracy of a Photonics Professional GT (Nanoscribe GmbH) 3D printing machine is evaluated by using the integrated piezo stage to align to gold markers that is manufactured via e‐beam lithography. By running a statistical analysis of 38 printing cycles, a mean positional error of only 80 nm is determined. Additionally, an entire system is 3D printed that can couple quantum emitters to optical single‐mode fibers. Examining the focal spot of the 3D printed micro‐optics, a positional accuracy of ≈ 1 µm in all three dimensions is found, as well as excellent quality of the focal spot.
Funder
Gips-Schüle-Stiftung
Horizon 2020 Framework Programme
Carl-Zeiss-Stiftung
Bundesministerium für Bildung und Forschung
H2020 European Research Council
Deutsche Forschungsgemeinschaft