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February 5, 2026Nature Communications12 citationsOpen Access

Multifunctional lithium niobate platform for photodetection and photoacoustic and thermoelastic gas sensing

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HLHaoyang LinJYJianhui YuZCZhe Chen

Key Points

  • The aim is to create a compact platform that combines multiple sensing techniques using lithium niobate.
  • Developed a multifunctional chip integrating photoacoustic, thermoelastic spectroscopy, and photodetection.
  • Conducted experiments for gas detection across a wide spectral range.
  • Implemented a custom packaging solution to combine the sensing chip with a quantum cascade laser.
  • Achieved detection limits in parts-per-billion for various gases including nitrogen dioxide and methane.
  • Demonstrated effective carbon monoxide detection using second-harmonic measurements.
  • Showed significant reduction in system complexity compared to traditional setups.

Abstract

Abstract Leveraging the intrinsic multi physics nature of ferroelectric lithium niobate, we present a multi-functional platform (LN-MFP) that seamlessly integrates photoacoustic spectroscopy, light-induced thermoelastic spectroscopy and photodetection into a single on-chip device. The proposed LN-MFP operates over a broad spectral range spanning from the visible to the mid infrared. We experimentally demonstrate trace gas detection of nitrogen dioxide, water vapor, acetylene, carbon dioxide, methane and ammonia, achieving parts-per-billion detection limits. We implement a custom packaging solution where the LN-MFP chip and a 4.6 µm quantum cascade laser chip are mounted on a printed circuit board together with transimpedance amplification, demonstrating system-level integration. Using this co-packaged module, we demonstrate carbon monoxide detection via second-harmonic measurements, outlining a clear route towards fully integrated on-chip implementations. This compact, hybrid, multi-functional architecture markedly reduces system complexity and footprint compared with conventional benchtop systems and is intrinsically compatible with the rapidly developing lithium niobate integrated photonics ecosystem. The LN-MFP provides a core sensing building block for future all-lithium-niobate spectroscopic chips for environmental monitoring, point-of-care diagnostics and on-site chemical analysis.

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Cite This Study

Lin et al. (2026) studied this question.

synapsesocial.com/papers/698435fff1d9ada3c1fb5701https://doi.org/10.1038/s41467-026-69042-7
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