Mobile QR Code QR CODE

REFERENCES

1 
Conrad R., 1996, Soil microorganisms as controllers of atmospheric trace gases (H2, CO, CH4, OCS, N2O, and NO), Microbiological Reviews, Vol. 60, No. 4, pp. 609-640DOI
2 
Aldhafeeri T., Tran M.-K., Vrolyk R., Pope M., Fowler M., 2020, A review of methane gas detection sensors: Recent developments and future perspectives, Inventions, Vol. 5, No. 3, pp. 28DOI
3 
Aresta M., Dibenedetto A., Angelini A., 2013, The changing paradigm in CO2 utilization, Journal of CO2 Utilization, Vol. 3-4, pp. 65-73DOI
4 
Zhang L., Yang L., Wang J., Zhao J., Dong H., Yong M., Liu Y., Song Y., 2017, Enhanced CH4 recovery and CO2 storage via thermal stimulation in the CH4/CO2 replacement of methane hydrate, Chemical Engineering Journal, Vol. 308, pp. 40-49DOI
5 
Wang C., Yin L., Zhang L., Xiang D., Gao R., 2010, Metal oxide gas sensors: Sensitivity and influencing factors, Sensors, Vol. 10, No. 3, pp. 2088-2106DOI
6 
Dey A., 2018, Semiconductor metal oxide gas sensors: A review, Materials Science and Engineering: B, Vol. 229, pp. 206-217DOI
7 
Miller D. R., Akbar S. A., P. A. Morris , 2014, Nanoscale metal oxide-based heterojunctions for Gas Sensing: A Review, Sensors and Actuators B: Chemical, Vol. 204, pp. 250-272DOI
8 
Battie Y., Ducloux O., Thobois P., Dorval N., Lauret J. S., Attal-Tréout B., Loiseau A., 2011, Gas sensors based on thick films of semi-conducting single walled carbon nanotubes, Carbon, Vol. 49, No. 11, pp. 3544-3552DOI
9 
Shooshtari M., Salehi A., Vollebregt S., 2021, Effect of humidity on gas sensing performance of Carbon nanotube gas sensors operated at room temperature, IEEE Sensors Journal, Vol. 21, No. 5, pp. 5763-5770DOI
10 
Yoo K.-P., Lim L.-T., Min N.-K., Lee M. J., Lee C. J., Park C.-W., 2010, Novel resistive-type humidity sensor based on multiwall carbon nanotube/polyimide composite films, Sensors and Actuators B: Chemical, Vol. 145, No. 1, pp. 120-125DOI
11 
Zhang X., Turkani V. S., Hajian S., Bose A. K., Maddipatla D., Hanson A. J., Narakathu B. B., Atashbar M. Z., 2019, Novel printed carbon nanotubes based resistive humidity sensors, Proc. of IEEE International Conference on Flexible and Printable Sensors and Systems (FLEPS), pp. 1-3DOI
12 
Xiang Z., Hu Z., Xao D., Yang W., Lu J., Han B., Wang W., 2011, Metal-organic frameworks with incorporated carbon nanotubes: Improving carbon dioxide and methane storage capacities by lithium doping, Angewandte Chemie International Edition, Vol. 50, No. 2, pp. 491-494DOI
13 
Makal T. A., Li J.-R., Lu W., Zhou H.-C., 2012, Methane storage in advanced porous materials, Chemical Society Reviews, Vol. 41, No. 23, pp. 7761-7779DOI
14 
Eranna G., Joshi B. C., Runthala D., Gupta R. P., 2004, Oxide materials for development of integrated gas sensors - A comprehensive review, Critical Reviews in Solid State and Materials Sciences, Vol. 29, No. 3-4, pp. 111-188DOI
15 
Tomchenko A. A., Harmer G. P., Marquis B. T., Allen J. W., 2003, Semiconducting metal oxide sensor array for the selective detection of combustion gases, Sensors and Actuators B: Chemical, Vol. 93, No. 1-3, pp. 126-134DOI
16 
Chen X., Huang Z., Li J., Wu C., Wang Z., Cui Y., 2018, Methane gas sensing behavior of lithium ion doped carbon nanotubes sensor, Vacuum, Vol. 154, pp. 120-128DOI