Investigation of Gasochromic Rhodium Complexes Towards Their Reactivity to CO and Integration into an Optical Gas Sensor for Fire Gas Detection
Abstract
:1. Introduction
2. Sensing Principles
2.1. Reflection-Based Measurements
2.2. Waveguide-Based Measurements
3. Experimental
3.1. Variation of Binuclear Rhodium Complexes
3.2. Sample Preparation
3.3. Gas-Dependent Measurements
4. Results
4.1. Colorimetric Reaction
4.2. Reflection-Based Measurements
4.3. Waveguide-Based Measurements
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Complex | X= | R= | A= |
---|---|---|---|
1∙(A)2 | 4-OCH3 | CH3 | CH3CO2H |
2∙(A)2 | 3-CH3 | CH3 | CH3CO2H |
3∙(A)2 | 3-F | CH3 | CH3CO2H |
4∙(A)2 | 4-OCH3; 3,5-CH3 | CH3 | CH3CO2H |
5∙(A)2 | 3-CH3 | CF3 | CF3CO2H |
Complex | Max. Negative ΔT | Max. Positive ΔT | ||
---|---|---|---|---|
(%) | (nm) | (%) | (nm) | |
1∙(A)2 | 33.9 | 466 | 9.7 | 597 |
2∙(A)2 | 30.2 | 477 | 12.4 | 566 |
3∙(A)2 | 28.3 | 466 | 8.0 | 592 |
4∙(A)2 | 27.8 | 517 | 14.0 | 800 |
5∙(A)2 | 34.1 | 473 | 10.3 | 572 |
Solution | Solubility (c = 2.5 g/L) | Color | Sensitivity [ΔT @ 100 ppm CO] | Stability |
---|---|---|---|---|
1∙(A)2 in ethanol | <1 min @RT | clear, violet | 16.5% | <30 days |
1∙(A)2 in propane-1,2-diole | 3 h @ 40 °C | clear, blue | 1.4% | <60 days |
1∙(A)2 in toluene | <1 min @RT | clear, bright pink/violet | 7.4% | for month |
1∙(A)2 in chloroform | <1 min @RT | clear, violet | 7.8% | for month |
1∙(A)2 in water | not soluble |
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Pannek, C.; Tarantik, K.R.; Schmitt, K.; Wöllenstein, J. Investigation of Gasochromic Rhodium Complexes Towards Their Reactivity to CO and Integration into an Optical Gas Sensor for Fire Gas Detection. Sensors 2018, 18, 1994. https://doi.org/10.3390/s18071994
Pannek C, Tarantik KR, Schmitt K, Wöllenstein J. Investigation of Gasochromic Rhodium Complexes Towards Their Reactivity to CO and Integration into an Optical Gas Sensor for Fire Gas Detection. Sensors. 2018; 18(7):1994. https://doi.org/10.3390/s18071994
Chicago/Turabian StylePannek, Carolin, Karina R. Tarantik, Katrin Schmitt, and Jürgen Wöllenstein. 2018. "Investigation of Gasochromic Rhodium Complexes Towards Their Reactivity to CO and Integration into an Optical Gas Sensor for Fire Gas Detection" Sensors 18, no. 7: 1994. https://doi.org/10.3390/s18071994
APA StylePannek, C., Tarantik, K. R., Schmitt, K., & Wöllenstein, J. (2018). Investigation of Gasochromic Rhodium Complexes Towards Their Reactivity to CO and Integration into an Optical Gas Sensor for Fire Gas Detection. Sensors, 18(7), 1994. https://doi.org/10.3390/s18071994