Related Experiment Video
Updated: Jan 20, 2026

Strain Sensing Based on Multiscale Composite Materials Reinforced with Graphene Nanoplatelets
Published on: November 7, 2016
Room-Temperature Ammonia Gas Sensing Using Mixed-Valent CuCo2O4 Nanoplatelets: Performance Enhancement through
Srashti Jain1, Apurva Patrike1, Satish S Badadhe1
1Department of Physics and Centre for Energy Science, Indian Institute of Science Education and Research, Pune 411008, India.
Abstract:
We report the sensing properties of an interesting ternary oxide CuCo2O4 (CCO) which comprises two earth-abundant transition elements, both capable of supporting multiple valence states. We have used a synthesis protocol, which renders unique nanoplatelet-type morphology but with a degree of biphasic character (CuO as a secondary phase in addition to the defect-spinel Cu1- Co2O4). This sample constitution can be controlled through the use of cation off-stoichiometry, and the same also influence the sensing response significantly. In particular, a Co 10 at. % excess CCO (CCO-Co(10)) case exhibits a good response (∼7.9% at 400 ppm) for NH3 gas with a complete recovery at room temperature (23 °C, ±1 °C) in 57% RH. The material performance was investigated for other gases such as H2S, NO2, and CO. A good response is observed for H2S and NO2 gases but without a recovery; however, for CO, a poor response is noted. Herein, we discuss the specific results for ammonia sensing for the CCO-Co(10) case in detail via the use of different characterizations and outline the difference between the cases of the single-phase defect-stabilized material versus nonpercolating biphasic material.
Related Concept Videos
Reaction Stoichiometry
09:38Strain Sensing Based on Multiscale Composite Materials Reinforced with Graphene Nanoplatelets
Chemical Stoichiometry and Gases: Using Ideal Gas Law to Determine Moles
10:42Infrared Degenerate Four-wave Mixing with Upconversion Detection for Quantitative Gas Sensing
08:14Ammonia Synthesis at Low Pressure
12:05Preparation of Hydrophobic Metal-Organic Frameworks via Plasma Enhanced Chemical Vapor Deposition of Perfluoroalkanes for the Removal of Ammonia
