On-chip, inverse-designed active wavelength division multiplexer at THz frequencies

Fuente: arXiv
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Main Authors: Digiorgio, Valerio, Senica, Urban, Micheletti, Paolo, Beck, Mattias, Faist, Jerome, Scalari, Giacomo
Format: Preprint
Published: 2024
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author Digiorgio, Valerio
Senica, Urban
Micheletti, Paolo
Beck, Mattias
Faist, Jerome
Scalari, Giacomo
author_facet Digiorgio, Valerio
Senica, Urban
Micheletti, Paolo
Beck, Mattias
Faist, Jerome
Scalari, Giacomo
contents The development of photonic integrated components for terahertz has become an active and growing research field. Despite its numerous applications, several challenges are still present in hardware design. We demonstrate an on-chip active wavelength division multiplexer (WDM) operating at THz frequencies. The WDM architecture is based on an inverse design topology optimization, which is applied in this case to the active quantum cascade heterostructure material embedded within a polymer in a planarized double metal cavity. Such an approach enables the fabrication of a strongly subwavelength device, with a normalized volume of only $V/λ^3 \simeq 0.5$. The WDM input is integrated with a THz quantum cascade laser frequency comb, providing three broadband output ports, ranging from 2.2 THz to 3.2 THz, with $\approx$ 330 GHz bandwidth and a maximum crosstalk of -6 dB. The three ports are outcoupled via integrated broadband patch array antennas with surface emission. Such a device can be also function as a stand-alone element, unlocking complex on-chip signal processing in the THz range
format Preprint
id arxiv_https___arxiv_org_abs_2412_20967
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle On-chip, inverse-designed active wavelength division multiplexer at THz frequencies
Digiorgio, Valerio
Senica, Urban
Micheletti, Paolo
Beck, Mattias
Faist, Jerome
Scalari, Giacomo
Optics
Applied Physics
The development of photonic integrated components for terahertz has become an active and growing research field. Despite its numerous applications, several challenges are still present in hardware design. We demonstrate an on-chip active wavelength division multiplexer (WDM) operating at THz frequencies. The WDM architecture is based on an inverse design topology optimization, which is applied in this case to the active quantum cascade heterostructure material embedded within a polymer in a planarized double metal cavity. Such an approach enables the fabrication of a strongly subwavelength device, with a normalized volume of only $V/λ^3 \simeq 0.5$. The WDM input is integrated with a THz quantum cascade laser frequency comb, providing three broadband output ports, ranging from 2.2 THz to 3.2 THz, with $\approx$ 330 GHz bandwidth and a maximum crosstalk of -6 dB. The three ports are outcoupled via integrated broadband patch array antennas with surface emission. Such a device can be also function as a stand-alone element, unlocking complex on-chip signal processing in the THz range
title On-chip, inverse-designed active wavelength division multiplexer at THz frequencies
topic Optics
Applied Physics
url https://arxiv.org/abs/2412.20967