Plasmonically Enhanced Flexural-Mode AlScN Nanoplate Resonator as Uncooled and Ultrafast IR Detector with High Responsivity

Fuente: arXiv
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Hauptverfasser: Venditti, Aurelio, Gubinelli, Walter, Altin, Enise F., Colombo, Luca, Simeoni, Pietro, Davaji, Benyamin, Rinaldi, Matteo
Format: Preprint
Veröffentlicht: 2025
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author Venditti, Aurelio
Gubinelli, Walter
Altin, Enise F.
Colombo, Luca
Simeoni, Pietro
Davaji, Benyamin
Rinaldi, Matteo
author_facet Venditti, Aurelio
Gubinelli, Walter
Altin, Enise F.
Colombo, Luca
Simeoni, Pietro
Davaji, Benyamin
Rinaldi, Matteo
contents This letter introduces a novel class of miniaturized, uncooled, and ultra-fast infrared (IR) resonant thermal detectors (RTDs) based on 30%-doped Aluminum Scandium Nitride (AlScN) nanoplates. Exploiting high electromechanical coupling, good thermal properties, and enhanced and selective IR absorption, the presented device aims to demonstrate significant advancements over the state-of-the-art IR RTDs. This single pixel combines compact footprint, high spectral selectivity and responsivity, reduced noise, and fast thermal response, allowing for the potential development of innovative IR thermal imagers through multi-pixel integration. The flexural nature of the actuated resonance mode eventually enables an interferometric optical readout, paving the way towards achieving extremely low Noise Equivalent Power levels. These results demonstrate a high IR responsivity of around 130 ppt/pW, a thermal time constant of around 330 us, and a large out-of-plane displacement. This work represents the first experimental integration on a resonating platform of plasmonic absorbers that utilize AlScN as dielectric layer.
format Preprint
id arxiv_https___arxiv_org_abs_2506_21412
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Plasmonically Enhanced Flexural-Mode AlScN Nanoplate Resonator as Uncooled and Ultrafast IR Detector with High Responsivity
Venditti, Aurelio
Gubinelli, Walter
Altin, Enise F.
Colombo, Luca
Simeoni, Pietro
Davaji, Benyamin
Rinaldi, Matteo
Instrumentation and Detectors
Systems and Control
Applied Physics
This letter introduces a novel class of miniaturized, uncooled, and ultra-fast infrared (IR) resonant thermal detectors (RTDs) based on 30%-doped Aluminum Scandium Nitride (AlScN) nanoplates. Exploiting high electromechanical coupling, good thermal properties, and enhanced and selective IR absorption, the presented device aims to demonstrate significant advancements over the state-of-the-art IR RTDs. This single pixel combines compact footprint, high spectral selectivity and responsivity, reduced noise, and fast thermal response, allowing for the potential development of innovative IR thermal imagers through multi-pixel integration. The flexural nature of the actuated resonance mode eventually enables an interferometric optical readout, paving the way towards achieving extremely low Noise Equivalent Power levels. These results demonstrate a high IR responsivity of around 130 ppt/pW, a thermal time constant of around 330 us, and a large out-of-plane displacement. This work represents the first experimental integration on a resonating platform of plasmonic absorbers that utilize AlScN as dielectric layer.
title Plasmonically Enhanced Flexural-Mode AlScN Nanoplate Resonator as Uncooled and Ultrafast IR Detector with High Responsivity
topic Instrumentation and Detectors
Systems and Control
Applied Physics
url https://arxiv.org/abs/2506.21412