Metal–Organic Framework (MOF)-Derived Materials for Triethylamine Gas Sensing Application for Environmental Monitoring: Recent Advances and Future Perspectives
Abstract
1. Introduction
2. Triethylamine Gas Sensors
2.1. MOF/MXene-Based Materials
2.2. Doped and Surface-Modified MOF-Based Materials
2.3. MOF-Derived Fe2O3 Materials
2.4. MOF-Derived Co3O4 Materials
2.5. Fe, Zn, and In-Based Mixed-Oxide Materials
2.6. Ni, V, and Zr Based Mixed Oxides
2.7. MOF-Derived Oxide/Carbon Composites
2.8. MOF-Derived In2O3 Based Materials
2.9. MOF-Derived In2O3-Based Materials
2.10. ZIF Based Materials



2.11. Mo Based Metal Oxides
2.12. Others
3. Conclusions, Limitations, and Perspectives
3.1. Current Limitations
3.2. Emerging Directions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Materials | Response | Concentration (ppm) | Response Time (s) | Recovery Time (s) | Limit of Detection (LOD) (ppm) | Stability | Temperature (°C) | Ref. |
|---|---|---|---|---|---|---|---|---|
| Cr2O3/TiO2-X | 450.01 | 100 | 26 | 112 | - | 30 days | [61] | |
| Ti3C2Tx/Co-BDC | 71 | 50 | 11 | 20 | 0.085 | 7 week | 100 | [62] |
| SnO2/TiO2 | 3525.2 | 10 | 1175 | - | 10 ppb | 14 days | 61 | [63] |
| 5 at % Fe-doped Co3O4 | 21 | 100 | 32 | 34 | 5 | - | 220 | [64] |
| Co-MOF | 1.14 | 400 | 85 | 70 | 4 | 40 days | 25 | [65] |
| α-Fe2O3 | 527 | 50 | 20 | 8 | 45.05 ppb | 20 days | 180 | [67] |
| Se/α-Fe2O3 | 20.8 | 100 | 4 | 94 | 0.2 | - | 275 | [68] |
| Bow-like Ga-doped Co3O4 structure | 108 | 50 | 3 | 15 | 0.1 | 35 days | 180 | [69] |
| Flower-like Mo-doped Co3O4 | 92 | 50 | 92 | 33 | - | 30 days | 180 | [70] |
| Al/Mo-doped Co3O4 tetrahedrons | 132 | 100 | 4 | 36 | 0.5 | 35 days | 160 | [72] |
| Ru/Mo co-doped Co3O4 hollow microtubes | 126 | 100 | 5 | 7 | - | 30 days | 160 | [73] |
| Co3O4/Fe2O3 | 21.2 | 100 | 13 | 15 | 1 | - | 199 | [74] |
| In2O3/ZnO | 44.6 | 100 | 14 | 36 | - | - | 100 | [75] |
| Mesoporous flower-like ZnO/NiO heterostructure | 49.8 | 200 | 11 | 130 | - | 70 days | 200 | [76] |
| Hierarchical kiwifruit-like ZnO/ZnFe2O4 | 40.15 | 100 | 32 | 41 | - | 30 days | 200 | [77] |
| GaFeO3 | 7.4 | 200 | 9 | 49 | - | 31 days | 200 | [78] |
| In2O3-NiO hollow sphere | 33.9 | 100 | - | - | 0.5 | 26 days | 200 | [79] |
| Nd2O3-ZnO nanocages | 360.09 | 100 | 1 | 628 | 150 ppb | 45 days | 157 | [80] |
| MOF-ZnO/ZnFe2O4 | 7.6 | 100 | 1 | 9 | - | 30 days | 170 | [82] |
| NV@NiO-2 | 43.7 | 100 | 88 | 127 | 4.5 ppb | 13 days | 240 | [83] |
| NiO/ZrO2-2 | 32.3 | 100 | 55 | 83 | 7.2 ppb | 13 days | 240 | [84] |
| Bimetallic MOF-derived Ni/SnO2 composites | 124 | 50 | - | - | 128 ppb | 30 days | 170 | [85] |
| Cu/C-ZnO | 225 | 100 | 17 | 38 | - | 25 days | 280 | [86] |
| g-C3N4/Co3O4 | 48.52 | 100 | 47 | 339 | 1 | 45 days | 119 | [87] |
| In2O3 nanocubes | 21.6 | 100 | 1 | 28 | 100 ppb | 30 days | 350 | [88] |
| Porous lacunaris In2O3 | 226 | 5 | 9 | 36 | - | 40 days | 120 | [89] |
| Ag-ZnO | 430 | 100 | 9 | 49 | 1 | 30 days | 225 | [92] |
| PdO-Co3O4-SnO2-3 | 11 | 20 | 21 | 64 | 21 days | 240 | [94] | |
| PdO-ZnO-In2O3 nanofibers | 386 | 50 | 1 | 740 | 0.1 | 30 days | 250 | [95] |
| Pd/PdO@ZnO-ZnO | 258 | 50 | 1 | 234 | 3 | 30 days | 275 | [96] |
| ZnO/Ag | 293.8 | 10 | 64 | 28 | 46.5 ppb | 15 days | 200 | [97] |
| Au/In2O3 | 476.3 | 100 | 32 | 279 | 12 ppb | 30 days | 200 | [98] |
| CDs@DZIF-8(In) | 374.6 | 100 | 16 | 90 | 1 | 15 days | 160 | [99] |
| Au-ZnO/ZIF-8 | 1012.5 | 100 | 7 | 163 | 2.78 ppb | - | 235 | [100] |
| Porous Co3O4 fibers | 34.5 | 100 | - | - | 100 ppb | 30 days | 160 | [102] |
| Amorphous ZIF-67 derivative | 74.8 | 100 | 125 | 88 | - | 30 days | 100 | [103] |
| α-MoO3 nanoplates | 121.1 | 100 | 3 | 715 | 0.2 | 15 days | 250 | [105] |
| SnO2/Co3O4 bilayer films | 150% a | 100 | 11 | 16 | 84 ppb | - | 25 | [110] |
| MOF-drived hollow mesoporous LaFeO3/La2O3 | 150 | 100 | 31 | 41 | 0.5 | 30 days | 240 | [111] |
| ZSnO2-60 composites | 142.6 | 50 | - | - | - | 30 days | 170 | [112] |
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Ahmad, K.; Rajkumar, C.; Oh, T.H. Metal–Organic Framework (MOF)-Derived Materials for Triethylamine Gas Sensing Application for Environmental Monitoring: Recent Advances and Future Perspectives. Sensors 2026, 26, 4587. https://doi.org/10.3390/s26144587
Ahmad K, Rajkumar C, Oh TH. Metal–Organic Framework (MOF)-Derived Materials for Triethylamine Gas Sensing Application for Environmental Monitoring: Recent Advances and Future Perspectives. Sensors. 2026; 26(14):4587. https://doi.org/10.3390/s26144587
Chicago/Turabian StyleAhmad, Khursheed, Chellakannu Rajkumar, and Tae Hwan Oh. 2026. "Metal–Organic Framework (MOF)-Derived Materials for Triethylamine Gas Sensing Application for Environmental Monitoring: Recent Advances and Future Perspectives" Sensors 26, no. 14: 4587. https://doi.org/10.3390/s26144587
APA StyleAhmad, K., Rajkumar, C., & Oh, T. H. (2026). Metal–Organic Framework (MOF)-Derived Materials for Triethylamine Gas Sensing Application for Environmental Monitoring: Recent Advances and Future Perspectives. Sensors, 26(14), 4587. https://doi.org/10.3390/s26144587

