INFORMAZIONI SU QUESTO ARTICOLO

Cita

Pal B., Singh I., Angrish K., Aminedi R., Das N., Mater. Chem. Phys., (2012), 21.PalB.SinghI.AngrishK.AminediR.DasN.Mater. Chem. Phys20122110.1016/j.matchemphys.2012.06.001Search in Google Scholar

Yu B., Leung K.M., Guo Q., Lau W.M., Yang J., Nanotechnology, 22 (2011), 1.YuB.LeungK.M.GuoQ.LauW.M.YangJ.Nanotechnology222011110.1088/0957-4484/22/11/11560321387845Search in Google Scholar

Hou X., Ma H., Liu F., Deng J., Ai Y., Zhao X., Mao D., Li D., Liao B., J. Hazard. Mater., 299 (2015), 59.HouX.MaH.LiuF.DengJ.AiY.ZhaoX.MaoD.LiD.LiaoB.J. Hazard. Mater29920155910.1016/j.jhazmat.2015.05.01426093355Search in Google Scholar

Yeung K.L., Leung W.K., Yao N., Cao S., Catal. Today 143 (2009), 218.YeungK.L.LeungW.K.YaoN.CaoS.Catal. Today143200921810.1016/j.cattod.2008.09.036Search in Google Scholar

Mathews S., Hans M., Mucklich F., Solioza M., Appl. Environ. Microbiol., (2013), 1.MathewsS.HansM.MucklichF.SoliozaM.Appl. Environ. Microbiol20131Search in Google Scholar

Santo C. E., Lam E. W., Elowsky C. E., Quaranta D., Domaille D. W., Chang J., Grass G., App. En. Microbiol., 77 (2011), 794.SantoC. E.LamE. W.ElowskyC. E.QuarantaD.DomailleD. W.ChangJ.GrassG.App. En. Microbiol77201179410.1128/AEM.01599-10302869921148701Search in Google Scholar

Xi B., Verma L. K., Bhatia C. S., Danner A. J., Yang H., Zeng H. C., ACS Appl. Mater. Interfaces, (2012), 1093.XiB.VermaL. K.BhatiaC. S.DannerA. J.YangH.ZengH. C.ACS Appl. Mater. Interfaces2012109310.1021/am201721e22260264Search in Google Scholar

Maness P., Smolinski S., Blake D.M., Huang Z., Wolfrum E.J., Jacoby W.A., App. En. Microbiol., 65 (1999), 4094.ManessP.SmolinskiS.BlakeD.M.HuangZ.WolfrumE.J.JacobyW.A.App. En. Microbiol651999409410.1128/AEM.65.9.4094-4098.19999974610473421Search in Google Scholar

Markowska-Szczupak A., Ulfig K., Morawski A.W., Catal. Today 169 (2011), 249.Markowska-SzczupakA.UlfigK.MorawskiA.W.Catal. Today169201124910.1016/j.cattod.2010.11.055Search in Google Scholar

Fujishima A., Zhang X., Tryk D., Surf. Sci. Rep., 63 (2008), 515.FujishimaA.ZhangX.TrykD.Surf. Sci. Rep63200851510.1016/j.surfrep.2008.10.001Search in Google Scholar

Carp O., Huisman C.L., Reller A., Prog. Solid State Ch., 32 (2004), 33.CarpO.HuismanC.L.RellerA.Prog. Solid State Ch3220043310.1016/j.progsolidstchem.2004.08.001Search in Google Scholar

Yu J.C., Ho W., Yu J., Yip H., Wong P.K., Zhao J., Sci. Tech., 39 (2005), 1175.YuJ.C.HoW.YuJ.YipH.WongP.K.ZhaoJ.Sci. Tech392005117510.1021/es035374hSearch in Google Scholar

Ohtani B., Ogawa Y., Nishimoto S., J. Phys. Chem., 101 (1997), 3746.OhtaniB.OgawaY.NishimotoS.J. Phys. Chem1011997374610.1021/jp962702+Search in Google Scholar

Fujishima A., Rao T.N., Tryk D.A., J. Photoch. Photobio. C 1 (2000), 1.FujishimaA.RaoT.N.TrykD.A.J. Photoch. Photobio12000110.1016/S1389-5567(00)00002-2Search in Google Scholar

Choi J., Kim K., Choy K., Oh K., Kim K., Wiley InterScience, (2006), 353.ChoiJ.KimK.ChoyK.OhK.KimK.Wiley InterScience200635310.1002/jbm.b.3060416850466Search in Google Scholar

Liu L., Zhao H., Andino J.M., Li Y., ACS Catalysis 2 (2012), 1817.LiuL.ZhaoH.AndinoJ.M.LiY.ACS Catalysis22012181710.1021/cs300273qSearch in Google Scholar

Linsebigler A.L., Lu G., Yates J.T., Chem. Rev. 95 (1995), 735.LinsebiglerA.L.LuG.YatesJ.T.Chem. Rev95199573510.1021/cr00035a013Search in Google Scholar

Kaczmarek D., Domaradzki J., Wojcieszak D., Prociow E., Mazur M., Placido F., Lapp S., J. Nano Res. 18/19 (2012), 195.KaczmarekD.DomaradzkiJ.WojcieszakD.ProciowE.MazurM.PlacidoF.LappS.J. Nano Res18/19201219510.4028/www.scientific.net/JNanoR.18-19.195Search in Google Scholar

Daviosdottira S., Shabadib R., Galcac A.C., Andersend I.H., Dirscherle K., Ambata R., Appl. Surf. Sci. 313 (2014), 677.DaviosdottiraS.ShabadibR.GalcacA.C.AndersendI.H.DirscherleK.AmbataR.Appl. Surf. Sci313201467710.1016/j.apsusc.2014.06.047Search in Google Scholar

Weber M., Weber M., Kleine-Boymann M., Ullmann’s Encyclopedia of Industrial Chemistry (2004).WeberM.WeberM.Kleine-BoymannM.Ullmann’s Encyclopedia of Industrial Chemistry2004Search in Google Scholar

Lin T.M., Lee S.S., Lai C.S., Lin S.D., Burns: J. of Int. Soc. for Burn Inj. 32 (2006), 517.LinT.M.LeeS.S.LaiC.S.LinS.D.Burns: J. of Int. Soc. for Burn Inj32200651710.1016/j.burns.2005.12.01616621299Search in Google Scholar

Sharfin E., Zisman W.A., J. Phys. Chem. 64 (1960), 519.SharfinE.ZismanW.A.J. Phys. Chem64196051910.1021/j100834a002Search in Google Scholar

Kwok D.Y., Neumann A.W., Adv. Coll. Interfac. 81 (1999), 167.KwokD.Y.NeumannA.W.Adv. Coll. Interfac81199916710.1016/S0001-8686(98)00087-6Search in Google Scholar

Powder Diffraction File, Joint Committee on Powder Diffraction Standards ASTM, (1967). Philadelphia, PA, Card 21-1272.Powder Diffraction File, Joint Committee on Powder Diffraction Standards ASTM, (1967). Philadelphia, PA, Card 21-1272Search in Google Scholar

Powder Diffraction File, Joint Committee on Powder Diffraction Standards ASTM, (1967). Philadelphia, PA, Card 21-1276.Powder Diffraction File, Joint Committee on Powder Diffraction Standards ASTM, (1967). Philadelphia, PA, Card 21-1276Search in Google Scholar

eISSN:
2083-134X
Lingua:
Inglese
Frequenza di pubblicazione:
4 volte all'anno
Argomenti della rivista:
Materials Sciences, other, Nanomaterials, Functional and Smart Materials, Materials Characterization and Properties