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References

1 
L. Liao, J. Zhang, G. Guo, Y. Yu, X. Yang, and L. Gu, ``Review of metal oxide semiconductor materials for gas sensors,'' Journal of Materials Chemistry A, vol. 8, no. 47, pp. 24556-24580, 2020.URL
2 
D. S. Lee, S. D. Han, H. G. Kim, K. Y. Jung, and C. S. Lee, ``Recent advances in metal-oxide semiconductor gas sensors for hydrogen detection,'' Sensors and Actuators B: Chemical, vol. 320, no. 1, 128471, 2020.URL
3 
M. G. Gouma and P. S. Hervol, ``Selective detection of hydrogen gas using nanosensor arrays,'' Sensors and Actuators B: Chemical, vol. 194, pp. 26-31, 2014.URL
4 
R. Kumar, N. Goel, and M. Kumar, ``H$_2$S sensors using reduced graphene oxide and metal oxide nanocomposites,'' Sensors and Actuators B: Chemical, vol. 233, pp. 684-704, 2016.URL
5 
J. M. Baik, Y. S. Kim, J. W. Park, and S. J. Yoon, ``Surface modifications to mitigate silicon contamination in metal-oxide gas sensors,'' Journal of Sensor Science and Technology, vol. 31, no. 1, pp. 23-30, 2021.URL
6 
Y. M. Kwon, H. J. Kim, B. Ye, H. D. Kim, Y.S. Lee, H. Shin, J. M. Baik, ’Ce oxide nanoparticles on porous reduced graphene oxides for stable hydrogen detection in air/HMDSO environment,'' Sensors and Actuators: B. Chemical, vol. 321 128529, 2020.DOI
7 
H. Yang, H. Wang, X. Zhao, and L. Li, ``Pd/ZnO nanowire hydrogen sensors with enhanced anti-poisoning properties,'' ACS Applied Materials & Interfaces, vol. 11, no. 28, pp. 25371-25379, 2019.URL
8 
U. R. Gandra, R. Courjaret, K. Machaca, M. Al-Hashimi, and H. S. Bazzi, ``Multifunctional rhodamine B appended ROMP derived fluorescent probe detects Al(3+) and selectively labels lysosomes in live cells,'' Scientific Reports, vol. 10, 19519, 2020.DOI
9 
T. T. Tung, N. S. Hieu, A. M. Nguyen, and H. K. Kim, ``ZnO-based gas sensors: A review on mechanisms, enhancements, and applications,'' Sensors and Actuators B: Chemical, vol. 286, pp. 53-68, 2019.URL
10 
J. S. Lee, Y. H. Ko, and K. J. Ahn, ``Reduced graphene oxide and cerium dioxide nanocomposite for enhancing hydrogen sensing performance,'' Sensors and Actuators B: Chemical, vol. 303, 127254, 2020.URL
11 
U. R. Gandra, S. K. Podiyanachari, H. S. Bazzi, and M. Al-Hashimi, ``Recent advances in drug release, sensing, and cellular uptake of ring-opening metathesis polymerization (ROMP) derived poly(olefins),'' ACS Omega, vol. 8, pp. 1724–1738, 2023.DOI
12 
Y. M. Kwon, S. H. Kim, J. H. Kim, and K. H. Lee, ``Enhanced anti-poisoning characteristics in Pd/ZnO nanowire sensors using CeO2-rGO composites,'' Sensors and Actuators B: Chemical, vol. 302, 127200, 2020.URL
13 
M. D. Esfahani, S. A. Mousavi, and M. R. Vaezi, ``Recent advances in anti-poisoning gas sensors: A review,'' Sensors and Actuators B: Chemical, vol. 328, 128973, 2021.URL
14 
Y. S. Kim, J. W. Park, and S. J. Yoon, ``Surface modification techniques for improving the durability of metal-oxide gas sensors,'' Applied Surface Science, vol. 481, pp. 128-136, 2019.URL
15 
Chinese National Standard GB 15322.2-2019, ``Gas sensor performance and testing methods,'' Standard Press of China, 2019.URL
16 
L. Zhang, Z. Tian, Q. Liang, X. Li, and J. Wang, ``Design and application of CeO$_2$-modified metal-oxide gas sensors,'' Journal of Alloys and Compounds, vol. 827, 154222, 2020.URL
17 
H. Zhang, L. Liu, and G. Zhang, ``Graphene and metal oxide composite nanomaterials for gas sensing,'' Journal of Materials Chemistry C, vol. 8, no. 5, pp. 1604-1617, 2020.URL
18 
T. Y. Yang, C. W. Wu, and Y. K. Hsu, ``Graphene-based gas sensors with enhanced sensitivity: A review,'' Sensors and Actuators B: Chemical, vol. 321, 128521, 2020.URL
19 
Y. M. Kwon, H. W. Choi, and S. Y. Kim, ``Hydrogen sensing performance of Pd/ZnO nanowire sensors in an HMDSO environment,'' IEEE Sensors Journal, vol. 19, no. 6, pp. 2303-2310, 2019.URL
20 
S. B. Wang, J. M. Baik, and H. W. Kim, ``ZnO-based nanowire gas sensors with enhanced resistance to silicon contamination,'' ACS Sensors, vol. 5, no. 4, pp. 1201-1208, 2020.URL
21 
A. Dey, ``Semiconductor metal oxide gas sensors: A review,'' Materials Science and Engineering: B, vol. 229, pp. 206-217, 2018.DOI
22 
X. D. Wang, J. Song, and Y. J. Liu, ``Hydrogen gas sensors based on Pd/ZnO nanostructures,'' Nano Letters, vol. 5, no. 2, pp. 202-205, 2015.URL
23 
J. M. Baik, S. J. Yoon, ``Hydrolysis and condensation mechanisms of organosilicon compounds in metal-oxide sensors,'' The Journal of Physical Chemistry C, vol. 120, no. 17, pp. 9214-9221, 2016.URL
24 
U. R. Gandra, S. K. Podiyanachari, H. S. Bazzi, and M. Al-Hashimi, ``Recent advances in drug release, sensing, and cellular uptake of ring-opening metathesis polymerization (ROMP) derived poly (olefins), ACS Omega, vol. 8, pp. 1724–1738, 2023.DOI
25 
X. Nie, R. Zhang, Z. Tang, H. Wang, P. Deng, and Y. Tang, ``Facile fabrication of CeO2/electrochemically reduced graphene oxide nanocomposites for vanillin detection in commercial food products,'' Nanomaterials, vol. 10, 1356, 2020.DOI