Room-temperature mid-infrared detection using metasurface-absorber-integrated phononic crystal oscillator

Fuente: arXiv
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Main Authors: Xi, Zichen, Cen, Zengyu, Wang, Dongyao, Thomas, Joseph G., Srijanto, Bernadeta R., Kravchenko, Ivan I., Zuo, Jiawei, Liu, Honghu, Ji, Jun, Zhu, Yizheng, Yao, Yu, Shao, Linbo
Format: Preprint
Published: 2025
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author Xi, Zichen
Cen, Zengyu
Wang, Dongyao
Thomas, Joseph G.
Srijanto, Bernadeta R.
Kravchenko, Ivan I.
Zuo, Jiawei
Liu, Honghu
Ji, Jun
Zhu, Yizheng
Yao, Yu
Shao, Linbo
author_facet Xi, Zichen
Cen, Zengyu
Wang, Dongyao
Thomas, Joseph G.
Srijanto, Bernadeta R.
Kravchenko, Ivan I.
Zuo, Jiawei
Liu, Honghu
Ji, Jun
Zhu, Yizheng
Yao, Yu
Shao, Linbo
contents Mid-infrared (MIR) detectors find extensive applications in chemical sensing, spectroscopy, communications, biomedical diagnosis and space explorations. Alternative to semiconductor MIR photodiodes and bolometers, mechanical-resonator-based MIR detectors show advantages in higher sensitivity and lower noise at room temperature, especially towards longer wavelength infrared. Here, we demonstrate uncooled room-temperature MIR detectors based on lithium niobate surface acoustic wave phononic crystal (PnC) resonators integrated with wavelength-and-polarization-selective metasurface absorber arrays. The detection is based on the resonant frequency shift induced by the local temperature change due to MIR absorptions. The PnC resonator is configured in an oscillating mode, enabling active readout and low frequency noise. Compared with detectors based on tethered thin-film mechanical resonators, our non-suspended, fully supported PnC resonators offer lower noise, faster thermal response, and robustness in both fabrication and practical applications. Our 1-GHz oscillator-based MIR detector shows a relative frequency deviation of $5.24 \times 10^{-10}$ Hz$^{-1/2}$ at an integration time of 50 $μ$s, leading to an incident noise equivalent power of 197 pW/$\sqrt{\mathrm{Hz}}$ when input 6-$μ$m MIR light is modulated at 1.8 kHz, and a large dynamic range of 107 in incident MIR power. Our device architecture is compatible with the scalable manufacturing process and can be readily extended to a broader spectral range by tailoring the absorbing wavelengths of metasurface absorbers.
format Preprint
id arxiv_https___arxiv_org_abs_2503_12259
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Room-temperature mid-infrared detection using metasurface-absorber-integrated phononic crystal oscillator
Xi, Zichen
Cen, Zengyu
Wang, Dongyao
Thomas, Joseph G.
Srijanto, Bernadeta R.
Kravchenko, Ivan I.
Zuo, Jiawei
Liu, Honghu
Ji, Jun
Zhu, Yizheng
Yao, Yu
Shao, Linbo
Optics
Applied Physics
Mid-infrared (MIR) detectors find extensive applications in chemical sensing, spectroscopy, communications, biomedical diagnosis and space explorations. Alternative to semiconductor MIR photodiodes and bolometers, mechanical-resonator-based MIR detectors show advantages in higher sensitivity and lower noise at room temperature, especially towards longer wavelength infrared. Here, we demonstrate uncooled room-temperature MIR detectors based on lithium niobate surface acoustic wave phononic crystal (PnC) resonators integrated with wavelength-and-polarization-selective metasurface absorber arrays. The detection is based on the resonant frequency shift induced by the local temperature change due to MIR absorptions. The PnC resonator is configured in an oscillating mode, enabling active readout and low frequency noise. Compared with detectors based on tethered thin-film mechanical resonators, our non-suspended, fully supported PnC resonators offer lower noise, faster thermal response, and robustness in both fabrication and practical applications. Our 1-GHz oscillator-based MIR detector shows a relative frequency deviation of $5.24 \times 10^{-10}$ Hz$^{-1/2}$ at an integration time of 50 $μ$s, leading to an incident noise equivalent power of 197 pW/$\sqrt{\mathrm{Hz}}$ when input 6-$μ$m MIR light is modulated at 1.8 kHz, and a large dynamic range of 107 in incident MIR power. Our device architecture is compatible with the scalable manufacturing process and can be readily extended to a broader spectral range by tailoring the absorbing wavelengths of metasurface absorbers.
title Room-temperature mid-infrared detection using metasurface-absorber-integrated phononic crystal oscillator
topic Optics
Applied Physics
url https://arxiv.org/abs/2503.12259