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Autor(en): Ricciardi, Armando
Zimmer, Michael
Witz, Norbert
Micco, Alberto
Piccirillo, Federica
Giaquinto, Martino
Kaschel, Mathias
Burghartz, Joachim
Jetter, Michael
Michler, Peter
Cusano, Andrea
Portalupi, Simone Luca
Titel: Integrated optoelectronic devices using lab‐on‐fiber technology
Erscheinungsdatum: 2022
Dokumentart: Zeitschriftenartikel
Seiten: 9
Erschienen in: Advanced materials technologies 7 (2022), No. 2101681
URI: http://nbn-resolving.de/urn:nbn:de:bsz:93-opus-ds-147772
http://elib.uni-stuttgart.de/handle/11682/14777
http://dx.doi.org/10.18419/opus-14758
ISSN: 2365-709X
Zusammenfassung: Silica fibers are nowadays cornerstones in several technological implementations from long‐distance communication, to sensing applications in many scenarios. To further enlarge the functionalities, the compactness, and the performances of fiber‐based devices, one needs to reliably integrate small‐footprint components such as sensors, light sources, and detectors onto single optical fiber substrates. Here, a novel proof of concept is presented to deterministically integrate optoelectronic chips onto the facet of an optical fiber, further implementing the electrical contacting between the chip and fiber itself. The CMOS‐compatible procedure is based on a suitable combination of metal deposition, laser machining, and micromanipulation, directly applied onto the fiber tip. The proposed method is validated by transferring, aligning, and bonding a quantum‐well based laser on the core of a multimode optical fiber. The successful monolithic device integration on fiber shows simultaneously electrical contacting between the laser and the ferrule, and 20% light in‐coupling in the fiber. These results pave new ways to develop the next generation of optoelectronic systems on fiber. The technological approach will set a new relevant milestone along the lab‐on‐fiber roadmap, opening new avenues for a novel class of integrated optoelectronic fiber platforms, featuring unrivaled miniaturization, compactness, and performances levels, designed for specific applications.
Enthalten in den Sammlungen:08 Fakultät Mathematik und Physik

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