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Original Articles

Titania Prepared by Ball Milling: Its Characterization and Application as Liquefied Petroleum Gas Sensor

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Pages 487-494 | Received 05 Feb 2012, Accepted 10 Nov 2012, Published online: 24 Oct 2014

References

  • Nartowski, A.M.; Atkinson, A. Sol-gel synthesis of sub-micron titanium doped chromia powders for gas sensing. J. Sol Gel Sci. Technol. 2003, 45, 793–797.
  • Mosely, P.T. Solid-state gas sensors. Meas. Sci. Tech. 1997, 8, 223–237.
  • Kersen, U.; Sundberg, M.R. The reactive surface sites and the H2S sensing potential for the SnO2 produced by a mechanochemical milling. J. Electrochem. Soc. 2003, 150, H129–H133.
  • Azad, A.M.; Akbar, S.A.; Mhaisalkar, S.G.; Birkefeld, L.D.; Goto, K.S. Solid-state gas sensors: a review. J. Electrochem. Soc. 1992, 139, 3690–3704.
  • Yin, H.; Wada, Y.; Kitamura, T., et al. Hydrothermal synthesis of nanosized anatase and rutile TiO2 using amorphous phase TiO2. J. Mater. Chem. 2001, 11, 1694–1703.
  • Yadav, B.C.; Singh, S.; Yadav, A.; Shukla, T. Experimental investigations on nano-sized ferric oxide and its LPG sensing. Int. J. Nanosci. 2010, 10, 135–139.
  • Patil, S.A.; Patil, L.A. Surface modified ITO thick film resistors for NH3 gas sensing. Sens. Trans. J. 2006, 71, 721–728.
  • Birkefeld, L.D.; Azad, A.M.; Akbar, S.A. CO and hydrogen detection by anatase modification of TiO2. J. Am. Ceram. Soc. 1992, 75, 2964–2968.
  • Wagh, M.S.; Patil, L.A.; Seth, T.; Amalnerkar, D.P. Surface cupricated SnO2-ZnO thick films as a H2S gas sensor. Mater. Chem. Phys. 2004, 84, 228–233.
  • Jayaraman, V.; Gnanasekar, K.I.; Prabhu, E.; Gnanasekaran, T.; Periaswami, G. Preparation and characterization of Cr2−xTixO3−δ and its sensor properties. Sens. Actuators B. 1999, 55, 175–179.
  • Manno, D.; Microcci, G.; Rella, R.; Serra, A.; Taurino, A.; Tepore, A. Titanium oxide thin films for NH3 monitoring: structural and physical characterization. J. Appl. Phys. 1997, 82, 54–59.
  • Le, D.T.T.; Vuong, D.D.; Chien, N.D. Synthesis and LPG sensing properties of TiO2 nanowires. J. Phys: Confer. Ser. 2009, 187, 12086–12090.
  • More, A.M.; Gunjakar, J.L.; Lokhande, C.D. Liquefied petroleum gas (LPG) sensor properties of interconnected web-like structured sprayed TiO2 films. Sens. Act. B. 2008, 129, 671–677.
  • Yadav, B.C.; Yadav, A.; Shukla, T.; Singh, S. Experimental investigations on solid state conductivity of cobaltzincate nanocomposite for liquefied petroleum gas sensing. Sens. Lett. 2009, 7, 1119–1123.
  • Yadav, B.C.; Srivastava, R.; Yadav, A. Nanostructured zinc oxide synthesized via hydroxide route as liquid petroleum gas sensor. Sens. Mater. 2009, 21, 87–94.
  • Srivastava, A.; Jain, K.; Rashmi; Srivastava, A.K.; Lakshmikumar, S.T. Study of structural and microstructural properties of SnO2 powder for LPG and CNG gas sensor. Mater. Chem. Phys. 2006, 97, 85–90.
  • Williams, D.E. Semiconducting oxides as gas-sensitive resistors. Sens. Actuators B. 1999, 57, 1–16.
  • Holt, A.; Kofstad, P. Electrical conductivity of Cr2O3 doped with TiO2. Solid State Ionics 1999, 117, 21–25.
  • Manno, D.; Microcci, G.; Rella, R.; Serra, A.; Taurino, A.; Tepore, A. Titanium oxide thin films for NH3 monitoring; structural and physical characterization. J. Appl. Phys. 1997, 82, 54–59.
  • Karunagaran, B.; Uthirakumar, P.; Chung, S.J.; Velumani, S.; Suh, E.K. TiO2 thin film gas sensor for monitoring ammonia. Mater. Character. 2007, 58, 680–684.
  • Ouyang, X.; Li, X.; Yan, H.; Qu, Y.; Mo, F. Synthesis of TiO2 nanoparticles from sprayed droplets of titanium tetrachloride by the gas-phase detonation method. Combust. Explo. Shock+ 2008, 44, 597–600.
  • Mabrook, M.; Hawkins, P. Benzene sensing using thin films of titanium dioxide operating at room temperature. Sens. Actuators B. 2002, 2, 374–382.
  • Tang, H.; Prasad, K.; Sanjines, R.; Levy, F. TiO2 anatase thin films as gas sensors. Sens. Actuators B. 1995, 26–27, 71–75.
  • Shukla, T.; Yadav, B.C.; Tandon, P. Synthesis of nanostructured cobalt titanate and its application as liquefied petroleum gas sensor at room temperature. Sens. Lett. 2011, 9, 533–540.
  • Anukunprasert, T.; Saiwan, C.; Traversa, E. The development of gas sensor for carbon monoxide monitoring using nanostructure of Nb-TiO2. Sci. Tech. Advan. Mater. 2005, 6, 359–363.
  • Korotcenkov, G. Gas response control through structural and chemical modification of metal oxide films: state of the art and approaches. Sens. Actuators B. 2005, 107, 209–232.
  • Singh, S.; Kaur, H.; Singh, V.N.; Jain, K.; Senguttuvan, T.D. Highly sensitive and pulse-like response toward ethanol of Nb doped TiO2 nanorods based gas sensors. Sens. Actuators B. 2012, 171–172, 899–906.
  • Singh, S.; Yadav, B.C.; Gupta, V.D.; Dwivedi, P.K. Investigations on effects of surface morphologies on response of LPG sensor based on nanostructured copper ferrite system. Mater. Res. Bull. 2012, 47, 3538–3547.
  • Yadav, B.C.; Yadav, A.; Shukla, T.; Singh, S. Solid state titania based gas sensor for liquefied petroleum gas detection at room temperature. Bull. Mater. Sci. 2011, 34, 1639–1644.
  • Yadav, B.C.; Srivastava, R.; Yadav, A.; Srivastava, V. LPG sensing of nanostructured zinc oxide and zincniobate. Sens. Lett. 2008, 6, 714–718.
  • Singh, S.; Verma, N.; Yadav, B.C.; Prakash, R. A comparative study on surface morphological investigations of ferric oxide for LPG and opto-electronic humidity sensors. App. Surf. Sci. 2012, 258, 8780–8789.
  • Singh, S.; Yadav, B.C.; Singh, A.; Dwivedi, P.K. Synthesis of nanostructured iron-antimonate and its application as liquefied petroleum gas sensor. Advan. Mater. Lett. 2012, 3, 154–160.

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