Annelot Nijkoops, Manuela Ciocca, Martina Aurora Costa Angeli, Mukhtar Ahmad, Remko M. Boom, Niko Münzenrieder, Paolo Lugli, Luisa Petti
Abstract Conducting polymers (CPs) are highly susceptible to ammonia ( NH 3 ) at room temperature. This has spurred growing interest in CP-based NH 3 gas sensors across diverse fields, ranging from biomedicine to environmental monitoring. Detecting NH 3 levels in breath, from parts per million to parts per billion, aids in diagnosing health conditions like liver and kidney dysfunction. Despite the importance of CP-based NH 3 sensors, a comprehensive assessment of their performance, limitations, and prospects has yet to be conducted. To address this gap, this work provides a detailed review of chemiresistive NH 3 sensors based on CPs (including P3HT, PEDOT, PPy, and PANI), examining sensor response, selectivity, stability, repeatability, and sensitivity to environmental factors like humidity and temperature. The role of porous structures and gas diffusion mechanisms in enhancing CP sensor performance is emphasized, alongside CP-based composite materials. The mechanical flexibility of these sensors is analyzed and compared, highlighting their potential for integration into flexible and wearable devices. Key challenges for CP-based NH 3 sensors include poor selectivity due to interference from similar gases, sensitivity loss caused by humidity-induced CP swelling, and instability from temperature fluctuations. Additionally, the lack of standardized testing protocols complicates performance comparisons of CP-based NH 3 sensors. Future research should focus on improving CP porosity, understanding gas-CP interactions, developing stable composites, and exploring new CPs for improved NH 3 sensing.