Organic Hydrogen Sensors for Potential Use in Safety-Critical Environments

Fuente: arXiv
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Main Authors: Morgenstern, Annika, Viriato, Lucas, Ortmann, Frank, Bickmann, Christopher, Hertling, Lukas, Weber, Dominik, Zahn, Dietrich R. T., Hiller, Karla, Unwerth, Thomas v., Schondelmaier, Daniel, Salvan, Georgeta
Format: Preprint
Published: 2026
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author Morgenstern, Annika
Viriato, Lucas
Ortmann, Frank
Bickmann, Christopher
Hertling, Lukas
Weber, Dominik
Zahn, Dietrich R. T.
Hiller, Karla
Unwerth, Thomas v.
Schondelmaier, Daniel
Salvan, Georgeta
author_facet Morgenstern, Annika
Viriato, Lucas
Ortmann, Frank
Bickmann, Christopher
Hertling, Lukas
Weber, Dominik
Zahn, Dietrich R. T.
Hiller, Karla
Unwerth, Thomas v.
Schondelmaier, Daniel
Salvan, Georgeta
contents Accurate monitoring of the hydrogen concentration is critical for optimizing fuel cell performance, minimizing purge losses, and reducing long-term degradation. Conventional hydrogen sensors often rely on catalytic materials and face limitations such as the need of oxygen purging when operated in fuel cell environments. Here, we report the discovery of a novel hydrogen-sensing mechanism based on organic molecules, without the use of catalytic metals. The sensor is based on a typical vertical stack geometry, containing $\mathrm{Alq_3}$ as active organic material. Upon exposure to hydrogen, the device shows an increase in resistivity, yielding a reliable sensor signal that varies linearly with hydrogen concentration, temperature, and humidity, and exhibits a relative response of up to 3.5 % at 100 %vol hydrogen. By exposing the sensor to an external magnetic field, the rise and fall times of the sensor response were found to be tunable. This novel organic sensor demonstrates sensitivity across a wide range of hydrogen concentrations under fuel cell-relevant conditions and beyond. This new class of hydrogen sensors with high miniaturization potential and cost efficiency paves the way for real-time hydrogen monitoring and advanced control strategies in fuel cells, the chemical industry, or energy storage applications.
format Preprint
id arxiv_https___arxiv_org_abs_2602_04434
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Organic Hydrogen Sensors for Potential Use in Safety-Critical Environments
Morgenstern, Annika
Viriato, Lucas
Ortmann, Frank
Bickmann, Christopher
Hertling, Lukas
Weber, Dominik
Zahn, Dietrich R. T.
Hiller, Karla
Unwerth, Thomas v.
Schondelmaier, Daniel
Salvan, Georgeta
Applied Physics
Accurate monitoring of the hydrogen concentration is critical for optimizing fuel cell performance, minimizing purge losses, and reducing long-term degradation. Conventional hydrogen sensors often rely on catalytic materials and face limitations such as the need of oxygen purging when operated in fuel cell environments. Here, we report the discovery of a novel hydrogen-sensing mechanism based on organic molecules, without the use of catalytic metals. The sensor is based on a typical vertical stack geometry, containing $\mathrm{Alq_3}$ as active organic material. Upon exposure to hydrogen, the device shows an increase in resistivity, yielding a reliable sensor signal that varies linearly with hydrogen concentration, temperature, and humidity, and exhibits a relative response of up to 3.5 % at 100 %vol hydrogen. By exposing the sensor to an external magnetic field, the rise and fall times of the sensor response were found to be tunable. This novel organic sensor demonstrates sensitivity across a wide range of hydrogen concentrations under fuel cell-relevant conditions and beyond. This new class of hydrogen sensors with high miniaturization potential and cost efficiency paves the way for real-time hydrogen monitoring and advanced control strategies in fuel cells, the chemical industry, or energy storage applications.
title Organic Hydrogen Sensors for Potential Use in Safety-Critical Environments
topic Applied Physics
url https://arxiv.org/abs/2602.04434