access icon free Ferrite-based room temperature negative temperature coefficient printed thermistors

Two screen printing inks were developed for the low-temperature fabrication of printed and flexible thick film negative temperature coefficient thermistors able to operate at room temperature. The first of the two screen printing inks developed utilised cobalt ferrite (CoFe2O4) as the temperature sensing material with the second ink incorporating manganese ferrite (MnFe2O4). These were then screen printed onto lithographically printed silver interdigitated electrodes with a 200 µm track and gap using a synthetic paper (Teslin) as the substrate. The inks required a 10 min curing step at 80°C. Pre-annealing of the ferrite powders before ink formulation enabled the avoidance of high-temperature processing post-fabrication typically required in industrial thermistor production. The printed thermistors were tested at a controlled constant humidity between 15 and 50°C. Both materials demonstrated typical natural logarithmic responses with high linearity and sensitivity.

Inspec keywords: thick films; thick film sensors; ferrites; ferrite devices; cobalt compounds; manganese compounds; curing; ink; temperature sensors; annealing; thermistors

Other keywords: ink formulation; high-temperature processing post-fabrication; curing step; screen printing inks; manganese ferrite; CoFe2O4-MnFe2O4; printed thick film negative temperature coefficient thermistors; preannealing; temperature 15.0 degC to 50.0 degC; ferrite powders; synthetic paper; cobalt ferrite; natural logarithmic responses; temperature sensing material; industrial thermistor production; lithographically printed silver interdigitated electrodes; Teslin; controlled constant humidity; time 10.0 min; low-temperature fabrication; ferrite-based room temperature negative temperature coefficient printed thermistors; size 200.0 mum; flexible thick film negative temperature coefficient thermistors; temperature 80.0 degC

Subjects: Thermal variables measurement; Thermometry; Sensing and detecting devices; Resistors; Sensing devices and transducers

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http://iet.metastore.ingenta.com/content/journals/10.1049/el.2020.2158
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