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Nanosensor Based on Thermal Gradient and Machine Learning for the Detection of Methanol Adulteration in Alcoholic Beverages and Methanol Poisoning
doi: 10.3390/s22155554
pmid: 35898057
pmc: PMC9329758
handle: 11572/354684 , 10449/78977 , 11584/351740
doi: 10.3390/s22155554
pmid: 35898057
pmc: PMC9329758
handle: 11572/354684 , 10449/78977 , 11584/351740
Methanol, naturally present in small quantities in the distillation of alcoholic beverages, can lead to serious health problems. When it exceeds a certain concentration, it causes blindness, organ failure, and even death if not recognized in time. Analytical techniques such as chromatography are used to detect dangerous concentrations of methanol, which are very accurate but also expensive, cumbersome, and time-consuming. Therefore, a gas sensor that is inexpensive and portable and capable of distinguishing methanol from ethanol would be very useful. Here, we present a resistive gas sensor, based on tin oxide nanowires, that works in a thermal gradient. By combining responses at various temperatures and using machine learning algorithms (PCA, SVM, LDA), the device can distinguish methanol from ethanol in a wide range of concentrations (1–100 ppm) in both dry air and under different humidity conditions (25–75% RH). The proposed sensor, which is small and inexpensive, demonstrates the ability to distinguish methanol from ethanol at different concentrations and could be developed both to detect the adulteration of alcoholic beverages and to quickly recognize methanol poisoning.
resistive sensor, TP1-1185, Article, gas sensor, Machine Learning, tin oxide, methanol, Metal oxide, Resistive sensor, Ethanol, Nanowires, Chemical technology, Alcoholic Beverages, Methanol, ethanol; gas sensor; metal oxide; methanol; nanowires; resistive sensor; tin oxide; Alcoholic Beverages; Ethanol; Machine Learning; Methanol; Nanowires, metal oxide, 540, 543, Tin oxide, Settore AGR/15 - SCIENZE E TECNOLOGIE ALIMENTARI, metal oxide; tin oxide; gas sensor; resistive sensor; nanowires; methanol; ethanol, nanowires, Ethanol; Gas sensor; Metal oxide; Methanol; Nanowires; Resistive sensor; Tin oxide, Gas sensor
resistive sensor, TP1-1185, Article, gas sensor, Machine Learning, tin oxide, methanol, Metal oxide, Resistive sensor, Ethanol, Nanowires, Chemical technology, Alcoholic Beverages, Methanol, ethanol; gas sensor; metal oxide; methanol; nanowires; resistive sensor; tin oxide; Alcoholic Beverages; Ethanol; Machine Learning; Methanol; Nanowires, metal oxide, 540, 543, Tin oxide, Settore AGR/15 - SCIENZE E TECNOLOGIE ALIMENTARI, metal oxide; tin oxide; gas sensor; resistive sensor; nanowires; methanol; ethanol, nanowires, Ethanol; Gas sensor; Metal oxide; Methanol; Nanowires; Resistive sensor; Tin oxide, Gas sensor
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