Freeform terahertz structures fabricated by multi-photon lithography and metal coating

Fuente: arXiv
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Auteurs principaux: Maier, Pascal, Kotz, Alexander, Hebeler, Joachim, Zhang, Qiaoshuang, Benz, Christian, Quint, Alexander, Kretschmann, Marius, Harter, Tobias, Randel, Sebastian, Lemmer, Uli, Freude, Wolfgang, Zwick, Thomas, Koos, Christian
Format: Preprint
Publié: 2024
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author Maier, Pascal
Kotz, Alexander
Hebeler, Joachim
Zhang, Qiaoshuang
Benz, Christian
Quint, Alexander
Kretschmann, Marius
Harter, Tobias
Randel, Sebastian
Lemmer, Uli
Freude, Wolfgang
Zwick, Thomas
Koos, Christian
author_facet Maier, Pascal
Kotz, Alexander
Hebeler, Joachim
Zhang, Qiaoshuang
Benz, Christian
Quint, Alexander
Kretschmann, Marius
Harter, Tobias
Randel, Sebastian
Lemmer, Uli
Freude, Wolfgang
Zwick, Thomas
Koos, Christian
contents Direct-write multi-photon laser lithography (MPL) combines highest resolution on the nanoscale with essentially unlimited 3D design freedom. Over the previous years, the groundbreaking potential of this technique has been demonstrated in various application fields, including micromechanics, material sciences, microfluidics, life sciences as well as photonics, where in-situ printed optical coupling elements offer new perspectives for package-level system integration. However, millimeter-wave (mmW) and terahertz (THz) devices could not yet leverage the unique strengths of MPL, even though the underlying devices and structures could also greatly benefit from 3D freeform microfabrication. One of the key challenges in this context is the fact that functional mmW and THz structures require materials with high electrical conductivity and low dielectric losses, which are not amenable to structuring by multi-photon polymerization. In this work, we introduce and experimentally demonstrate a novel approach that allows to leverage MPL for fabricating high-performance mmW and THz structures with hitherto unachieved functionalities. Our concept exploits in-situ printed polymer templates that are selectively coated through highly directive metal deposition techniques in combination with precisely aligned 3D-printed shadowing structures. The resulting metal-coated freeform structures offer high surface quality in combination with low dielectric losses and conductivities comparable to bulk material values, while lending themselves to fabrication on planar mmW/THz circuits. We experimentally show the viability of our concept by demonstrating a series of functional THz structures such as THz interconnects, probe tips, and suspended antennas. We believe that our approach offers disruptive potential in the field of mmW and THz technology and may unlock an entirely new realm of laser-based 3D manufacturing.
format Preprint
id arxiv_https___arxiv_org_abs_2401_03316
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Freeform terahertz structures fabricated by multi-photon lithography and metal coating
Maier, Pascal
Kotz, Alexander
Hebeler, Joachim
Zhang, Qiaoshuang
Benz, Christian
Quint, Alexander
Kretschmann, Marius
Harter, Tobias
Randel, Sebastian
Lemmer, Uli
Freude, Wolfgang
Zwick, Thomas
Koos, Christian
Optics
Applied Physics
Direct-write multi-photon laser lithography (MPL) combines highest resolution on the nanoscale with essentially unlimited 3D design freedom. Over the previous years, the groundbreaking potential of this technique has been demonstrated in various application fields, including micromechanics, material sciences, microfluidics, life sciences as well as photonics, where in-situ printed optical coupling elements offer new perspectives for package-level system integration. However, millimeter-wave (mmW) and terahertz (THz) devices could not yet leverage the unique strengths of MPL, even though the underlying devices and structures could also greatly benefit from 3D freeform microfabrication. One of the key challenges in this context is the fact that functional mmW and THz structures require materials with high electrical conductivity and low dielectric losses, which are not amenable to structuring by multi-photon polymerization. In this work, we introduce and experimentally demonstrate a novel approach that allows to leverage MPL for fabricating high-performance mmW and THz structures with hitherto unachieved functionalities. Our concept exploits in-situ printed polymer templates that are selectively coated through highly directive metal deposition techniques in combination with precisely aligned 3D-printed shadowing structures. The resulting metal-coated freeform structures offer high surface quality in combination with low dielectric losses and conductivities comparable to bulk material values, while lending themselves to fabrication on planar mmW/THz circuits. We experimentally show the viability of our concept by demonstrating a series of functional THz structures such as THz interconnects, probe tips, and suspended antennas. We believe that our approach offers disruptive potential in the field of mmW and THz technology and may unlock an entirely new realm of laser-based 3D manufacturing.
title Freeform terahertz structures fabricated by multi-photon lithography and metal coating
topic Optics
Applied Physics
url https://arxiv.org/abs/2401.03316