Zacytuj

K. Byrappa, M. Yoshimura, Handbook of Hydrothermal Technology, Noyes Publications, New Jersey, USA, 200110.1016/B978-081551445-9.50003-9 Search in Google Scholar

T. Siyama, A. Kato, A new detector for gaseous components using semiconductor thin film, Anal. Chem. 34 (1962) pp.1502–1503. Search in Google Scholar

J.Q. Xu, Q.Y. Pan, Y.A. Shun, Z. Li, Emulsion synthesis structure and gas sensing properties of nanometer ZnO, J. Inorg. Chem. 14 (1998) pp.355–359. Search in Google Scholar

A.A. Tomchenko, G.P. Harmer, B.T. Marquis, J.W. Allen, Semiconducting metal oxide sensor array for the selective detection of combustion gases, Sens. Actuators B 93 (2003) pp.126–134. Search in Google Scholar

M. Law, H. Kind, F. Kim, B. Messer, P. Yang, Photochemical sensing of NO2 with SnO2 nanoribbon nanosensors at room temperature, Angwe. Chem. Int. Ed. 41 (2002) pp.2405– 2408. Search in Google Scholar

C. Li, D.H. Zhang, X.L. Liu, S. Han, T. Tang, J. Han, C.W. Zhou, In2O3 nanowires as chemical sensors, Appl. Phys. Lett. 82 (2003) pp.1613–1615. Search in Google Scholar

A. Kolmakov, Y.X. Zhang, G.S. Cheng, M. Moskovits, Detection of CO and O2 using tin oxide nanowire sensors, Adv. Mater. 15 (2003) pp.997–1000. Search in Google Scholar

N. Yamazoe, G. Sakai, K. Shimanoe, Oxide semiconductor gas sensors, Catal. Surveys Asia 1 (2003) pp.63–75. Search in Google Scholar

X.M. Sun, X. Chen, Z.X. Deng, Y.D. Li, A CTAB-assisted hydrothermal orientation growth of ZnO nanorods, Mater. Chem. Phys. 78 (2002) pp.99–104. Search in Google Scholar

Z.Q. Li, Y.J. Xiong, Y. Xie, Selected-control synthesis of ZnO nanowires and nanorods via a PEG-assisted route, Inorg. Chem. 42 (2003) pp.8105–8109. Search in Google Scholar

H.J. Zhai, W.H. Wu, F. Lu, H.S. Wang, Effects of ammonia and CTAB on morphologiesof ZnO nano-and micromaterials under solvothermal process, Mater. Chem. Phys. 112 (2008) pp.1024–1028. Search in Google Scholar

D.F. Zhang, L.D. Sun, J.L. Yin, C.H. Yan, Attachment-driven morphology enhancement of regular ZnO nanowires, J. Phys. Chem. B 109 (2005) pp.8786–8790. Search in Google Scholar

R.C. Singh, O. Singh, M.P. Singh, P.S. Chandi, Synthesis of zinc oxide nanorods and nanoparticles by chemical route and their comparative study as ethanol sensors, Sens. Actuators B 135 (2008) pp.352–357. Search in Google Scholar

Z. Yang, Y. Huang, G. Chen, Ethanol gas sensor based on Al-doped ZnO nanomaterial with many gas diffusing channels, Sens. Actuators B 140 (2009) pp.549–556. Search in Google Scholar

N. Hongsith, C. Viriyaworasakul, P. Mangkorntong, N. Mangkorntong, S. Choopun, Ethanol sensor based on ZnO and Au-doped ZnO nanowires, Ceramics Int. 34 (2008) pp.823-826. Search in Google Scholar

O. Lupan, G. Chai, L. Chow, Novel hydrogen gas sensor based on single ZnO nanorod, Microelectron. Eng. 85 (2008) pp.2220–2225. Search in Google Scholar

Y.L. Cao, P.F. Hu, W.Y. Pan, Y.D. Huang, D.Z. Jia, Methanal and xylene sensors based on ZnO nanoparticles and nanorods prepared by room-temperature solid-state chemical reaction, Sens. Actuators B 134 (2008) pp.462–466. Search in Google Scholar

G. H. Jain, L. A. Patil, M. S. Wagh, D. R. Patil, S. A. Patil, D. P. Amalnerkar, Surface modified BaTiO3 thick film resistors as H2S gas sensors, Sensors and Actuators B: Chemical 117 (2006) pp.159-165. Search in Google Scholar

G. H. Jain, MOS gas sensors: What determines our choice?, Proceedings of the Fifth International Conference on Sensing Technology 2011, Palmerston North, New Zealand, Nov. 28 – Dec, 1, 2011, pp. 71-77.10.1109/ICSensT.2011.6137067 Search in Google Scholar

E. W. Shi, W.B.G. Wang, Z. Zhong, Understanding and Controlling the Morphology of ZnO Crystallites under Hydrothermal Conditions, Cryst. Res. Technol. 32 (1997) pp.659. Search in Google Scholar

X. M. Sun, X. Chen, Z.X. Deng, Y.D. Li, CTAB-assisted hydrothermal orientation growth of. ZnO nanorods, Mater. Chem. Phy. 78 pp. (2002) 99.10.1016/S0254-0584(02)00310-3 Search in Google Scholar

O. Wan, Q.H. Li, J.Y. Chen, H.T. Wang, X.L. He, J.P. Li, C.L. Lin, Fabrication and ethanol sensing characteristics of ZnO nanowire gas sensors, Appl. Phys. Lett. 84 (2004) 3654–3656.10.1063/1.1738932 Search in Google Scholar

J.A. Dean, Lange’s Handbook of Chemistry, Chinese ed., Science Press, 2003, pp. 43–54 (Chapter 4).10.1142/9789812564863_0002 Search in Google Scholar

T. Zhang, Y. Zeng, H.T. Fan, L.J. Wang, R. Wang, W.Y. Fu, H.B. Yang, Synthesis, optical and gas sensitive properties of large-scale aggregative flowerlike ZnO nanostructures via simple route hydrothermal process, J. Phys. D: Appl. Phys. 42 (2009) 045103. Search in Google Scholar

eISSN:
1178-5608
Język:
Angielski
Częstotliwość wydawania:
Volume Open
Dziedziny czasopisma:
Engineering, Introductions and Overviews, other