500
Views
8
CrossRef citations to date
0
Altmetric
Original Article

Liquefied petroleum gas sensing by Al-doped TiO2 nanoparticles synthesized by chemical and solid-state diffusion routesFootnote

, &

References

  • N.VermaS.SinghR.SrivastavaB.C.YadavFabrication of iron titanium oxide thin film and its application as opto-electronic humidity and liquefied petroleum gas sensorsOpt. Laser Technol.572014181188
  • A.ParveenA.KoppalkarA.S.RoyLiquefied petroleum gas sensing of polyaniline–titanium dioxide nanocompositesSens. Lett.112012242248
  • B.C.YadavA.YadavT.ShuklaS.SinghSolid-state titania-based gas sensor for liquefied petroleum gas detection at room temperatureBull. Mater. Sci.34201116391644
  • A.SinghS.SinghB.D.JoshiA.ShuklaB.C.YadavP.TandonSynthesis, characterization, magnetic properties and gas sensing applications of ZnxCu1−xFe2O4 (0.0 ≤ x ≤ 0.8) nanocompositesMater. Sci. Semicond. Process.272014934949
  • A.SinghA.SinghS.SinghP.TandonB.C.YadavR.R.YadavSynthesis, characterization and performance of zinc ferrite nanorods for room temperature sensing applicationsJ. Alloys Compd.6182015475483
  • A.K.JaiswalS.SinghA.SinghR.R.YadavP.TandonB.C.YadavFabrication of Cu/Pd bimetallic nanostructures with high gas sorption ability towards development of LPG sensorMater. Chem. Phys.15420151621
  • C.TsaiH.HsiH.BaiK.S.FanH.SunSingle-step synthesis of Al-doped TiO2 nanoparticles using non-transferred thermal plasma torchJpn. J. Appl. Phys.512012 01AL01–01AL06
  • C.TsaiT.KuoH.HisFabrication of Al-doped TiO2 visible-light photocatalyst for low-concentration mercury removalInt. J. Photoenergy20122012874509874517
  • S.LiuG.LiuQ.FengAl-doped TiO2 mesoporous materials: synthesis and photodegradation propertiesJ. Porous Mater.172010197206
  • S.KumarN.K.VermaM.L.SinglaStudy on reflectivity and photostability of Al-doped titania nanoparticles and their reflectorsJ. Mater. Res.282013521528
  • Z.LiD.DingC.NingNi-doped TiO2 nanotubes for wide-range hydrogen sensingNanoscale Res. Lett.92013118127
  • K.R.NemadeS.A.WaghuleyChemiresistive gas sensing by few-layered grapheneJ. Electron. Mater.42201328572866
  • K.R.NemadeS.A.WaghuleyLow operable temperature chemiresistive gas sensing by graphene–zinc oxide quantum dots compositesSci. Adv. Mater.62014128134
  • K.R.NemadeS.A.WaghuleyLPG sensing application of graphene/Bi2O3 quantum dots compositesSolid State Sci.2220132732
  • K.R.NemadeS.A.WaghuleyLPG sensing application of graphene/CeO2 quantum dots compositeAIP Conf. Proc.1536201312581259
  • A.GaberM.A.Abdel-RahimA.Y.Abdel-LatiefM.N.Abdel-SalamInfluence of calcination temperature on the structure and porosity of nanocrystalline SnO2 synthesized by a conventional precipitation methodInt. J. Electrochem. Sci.920148195
  • L.XuM.P.GarrettB.HuDoping effects on internally coupled seebeck coefficient, electrical, and thermal conductivities in aluminum-doped TiO2J. Phys. Chem. C11620121302013025
  • K.R.NemadeS.A.WaghuleyUV–VIS spectroscopic study of one pot synthesized strontium oxide quantum dotsResults Phys.320135254
  • K.R.NemadeS.A.WaghuleyLow temperature synthesis of semiconducting α-Al2O3 quantum dotsCeram. Int.40201461096113
  • V.R.ShindeT.P.GujarC.D.LokhandeEnhanced response of porous ZnO nanobeads towards LPG: effect of Pd sensitizationSens. Actuators B1232007701706
  • K.V.GuravP.R.DeshmukhC.D.LokhandeLPG sensing properties of Pd-sensitized vertically aligned ZnO nanorodsSens. Actuators B1512011365369