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Microwave assisted biosynthesis of rice shaped ZnO nanoparticles using Amorphophallus konjac tuber extract and its application in dye sensitized solar cells

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Karthikeyan B., Pandiyarajan T., Mangalaraja R.V., Spectrochim. Acta A, 152 (2016), 485.KarthikeyanB.PandiyarajanT.MangalarajaR.V.Spectrochim. Acta A152201648510.1016/j.saa.2015.07.05326254601Search in Google Scholar

Pan Y.J., Chen J., Huang Q., Khan Q., Liu X., Tao Z., ACS Photonics, 3 (2) (2016), 215.PanY.J.ChenJ.HuangQ.KhanQ.LiuX.TaoZ.ACS Photonics32201621510.1021/acsphotonics.5b00267Search in Google Scholar

Shan W., Walukiewicz W., Ager J.W., Yu K.M., Yuan H.B., Xin H.P., Cantwell G., Song J., Appl. Phys. Lett., 86 (2004), 19111.ShanW.WalukiewiczW.AgerJ.W.YuK.M.YuanH.B.XinH.P.CantwellG.SongJ.Appl. Phys. Lett.8620041911110.1063/1.1923757Search in Google Scholar

Ümit Ö., Hofstetter D., Morkoc H., P. IEEE, 98 (2010), 1255.ÜmitÖ.HofstetterD.MorkocH.P. IEEE982010125510.1109/JPROC.2010.2044550Search in Google Scholar

Çakar S., Özacar M., Spectrochim. Acta A, 163 (2016), 79.ÇakarS.ÖzacarM.Spectrochim. Acta A16320167910.1016/j.saa.2016.03.03127043871Search in Google Scholar

Liu X., Li X., Li Y., Song C., Zhu L., Zhang W., Wang H., Fang J., Adv. Mater., 28 (34) (2016), 7405.LiuX.LiX.LiY.SongC.ZhuL.ZhangW.WangH.FangJ.Adv. Mater.28342016740510.1002/adma.20160181427309840Search in Google Scholar

Gopi C V.V.M., Haritha M.V., Lee Y.S., Kim H.J., J. Mater. Chem. A, 4 (2016), 8161.GopiC V.V.M.HarithaM.V.LeeY.S.KimH.J.J. Mater. Chem. A42016816110.1039/C6TA02415GSearch in Google Scholar

Yuan L., Lu K., Xia B., Zhang J., Wang Z., Wang Z., Deng D., Fang J., Zhu L., Wei Z., Adv. Mater., 28 (28) (2016), 5980.YuanL.LuK.XiaB.ZhangJ.WangZ.WangZ.DengD.FangJ.ZhuL.WeiZ.Adv. Mater.28282016598010.1002/adma.20160051227172541Search in Google Scholar

Liu S., Jiang R.,You P., Zhu X.,Wang J., Yan F., Energ. Environ. Sci., 9 (2016), 898.LiuS.JiangR.YouP.ZhuX.WangJ.YanF.Energ. Environ. Sci.9201689810.1039/C5EE03779DSearch in Google Scholar

Bella F., Nair J.R., Gerbaldi C., RSC Adv., 3 (2013), 15993.BellaF.NairJ.R.GerbaldiC.RSC Adv.320131599310.1039/c3ra41267aSearch in Google Scholar

Chiappone A., Bella F., Nair J., Meligrana G., Bongiovanni R., Gerbaldi C., Chemelectrochem, 1 (2014), 1350.ChiapponeA.BellaF.NairJ.MeligranaG.BongiovanniR.GerbaldiC.Chemelectrochem12014135010.1002/celc.201402051Search in Google Scholar

El-Ghamri H., El-Agez T.M., Taya S.A., Abdel-Latif M.S., Batniji A.Y., Mater. Sci.-Poland., 32 (2014), 547.El-GhamriH.El-AgezT.M.TayaS.A.Abdel-LatifM.S.BatnijiA.Y.Mater. Sci.-Poland.32201454710.2478/s13536-014-0231-zSearch in Google Scholar

Kumar P.N., Sakthivel K., J. Ovonic. Res., 11 (2015), 169.KumarP.N.SakthivelK.J. Ovonic. Res.11201516910.1504/IJICBM.2015.070257Search in Google Scholar

Zhang H., Feng J., Wang J., Zhang M., Mater. Lett., 61 (2007), 5202.ZhangH.FengJ.WangJ.ZhangM.Mater. Lett.612007520210.1016/j.matlet.2007.04.030Search in Google Scholar

Xing Y.J., Xi Z.H., Xue Z.Q., Zhang X.D., Song J.H., Wang R.M., Appl. Phys. Lett., 83 (2003), 1689.XingY.J.XiZ.H.XueZ.Q.ZhangX.D.SongJ.H.WangR.M.Appl. Phys. Lett.832003168910.1063/1.1605808Search in Google Scholar

Polsongkram D., Chamninok P., Pukird S., Chow L., Lupan O., Chai G., Physica B, 403 (2008), 3713.PolsongkramD.ChamninokP.PukirdS.ChowL.LupanO.ChaiG.Physica B4032008371310.1016/j.physb.2008.06.020Search in Google Scholar

Sepulveda-Guzman S., Reeja-Jayan B., Rosa de la E., Torres-Castro A., Gonzalez-Gonzalez V., Jose-Yacaman M., Mater. Chem. Phys., 115 (2009), 172.Sepulveda-GuzmanS.Reeja-JayanB.Rosa De LaE.Torres-CastroA.Gonzalez-GonzalezV.Jose-YacamanM.Mater. Chem. Phys.115200917210.1016/j.matchemphys.2008.11.030Search in Google Scholar

Iwan A., Palewicz M., Tazbir I., Boharewicz B., Pietruszka R., Filapek M., Wojtkiewicz J., Witkowski, B., Granek F., Godlewski M., Electrochim. Acta, 191 (2016), 784.IwanA.PalewiczM.TazbirI.BoharewiczB.PietruszkaR.FilapekM.WojtkiewiczJ.WitkowskiB.GranekF.GodlewskiM.Electrochim. Acta191201678410.1016/j.electacta.2016.01.107Search in Google Scholar

Jung S.-H., Oh E., Lee K.-H., Park W., Jeong S.-H., Adv. Mater., 19 (2007), 749.JungS.-H.OhE.LeeK.-H.ParkW.JeongS.-H.Adv. Mater.19200774910.1002/adma.200601859Search in Google Scholar

Diallo A., Ngom B.D., Park E., Maaza M., J. Alloy. Compd., 646 (2015), 425.DialloA.NgomB.D.ParkE.MaazaM.J. Alloy. Compd.646201542510.1016/j.jallcom.2015.05.242Search in Google Scholar

Sawle B.D., Salimath B., Deshpande R., Bedre M.D., Prabhakar B.K., Venkataraman A., Sci. Technol. Adv. Mat., 9 (3) (2008), 035012.SawleB.D.SalimathB.DeshpandeR.BedreM.D.PrabhakarB.K.VenkataramanA.Sci. Technol. Adv. Mat.93200803501210.1088/1468-6996/9/3/035012509966627878009Search in Google Scholar

Singh P., Kim Y.-J., Zhang D., Yang D.-C., Trends Biotechnol., 34 (7) (2016), 588.SinghP.KimY.-J.ZhangD.YangD.-C.Trends Biotechnol.347201658810.1016/j.tibtech.2016.02.00626944794Search in Google Scholar

Shanthi S., Jayaseelan B.D., Velusamy P., Vijayakumar S., Chih C.T., Vaseeharan B., Microb. Pathogenesis, 93 (2016), 70.ShanthiS.JayaseelanB.D.VelusamyP.VijayakumarS.ChihC.T.VaseeharanB.Microb. Pathogenesis9320167010.1016/j.micpath.2016.01.01426802520Search in Google Scholar

Iravani S., Green Chem., 13 (2011), 2638.IravaniS.Green Chem.132011263810.1039/c1gc15386bSearch in Google Scholar

Mishra A., Tripathy S.K., Yun S.-I., Process Biochem., 47 (2012), 701.MishraA.TripathyS.K.YunS.-I.Process Biochem47201270110.1016/j.procbio.2012.01.017Search in Google Scholar

Wang F., Cao B., Mao C., Chem. Mater., 22 (2010), 3630.WangF.CaoB.MaoC.Chem. Mater.222010363010.1021/cm902727s292698920802794Search in Google Scholar

Dameron C.T., Reese R.N., Mehra R.K., Kortan A.R., Carroll P.J., Steigerwald M L., Nature, 338 (1989), 596.DameronC.T.ReeseR.N.MehraR.K.KortanA.R.CarrollP.J.SteigerwaldM L.Nature338198959610.1038/338596a0Search in Google Scholar

Poinern G.E.J., Chapman P., Shah M., Fawcett D., Nano B., 2 (2013), 130101.PoinernG.E.J.ChapmanP.ShahM.FawcettD.Nano B.22013130101Search in Google Scholar

Chandran S.P., Chaudhary M., Pasricha R., Ahmad A., Sastry M., Biotechnol. Prog., 22 (2006), 577.ChandranS.P.ChaudharyM.PasrichaR.AhmadA.SastryM.Biotechnol. Prog.22200657710.1021/bp050142316599579Search in Google Scholar

Edison T.N.J.I., Lee Y.R., Sethuraman M.G., Spectrochim. Acta A, 161 (2016), 122.EdisonT.N.J.I.LeeY.R.SethuramanM.G.Spectrochim. Acta A161201612210.1016/j.saa.2016.02.04426967513Search in Google Scholar

Mishra P., Ray S., Sinha S., Das B., Khan M.I., Behera S.K., Biochem. Eng. J., 105 (2016), 264.MishraP.RayS.SinhaS.DasB.KhanM.I.BeheraS.K.Biochem. Eng. J.105201626410.1016/j.bej.2015.09.021Search in Google Scholar

Lee H.J., Lee G., Jang N.R., Yun J.H., Song J.Y., Kim B.S., Nanotechnology, 13 (2016), 15.LeeH.J.LeeG.JangN.R.YunJ.H.SongJ.Y.KimB.S.Nanotechnology13201615Search in Google Scholar

Mishra V., Sharma R., IJPRHS, 3 (2015), 694.MishraV.SharmaR.IJPRHS3201569410.5005/jp/books/12648_28Search in Google Scholar

http://www.konjacfoods.com/health/index.html.http://www.konjacfoods.com/health/index.htmlSearch in Google Scholar

Nataraj H.N., Murthy R.L., Setty S.R., Int. J. ChemTech Res., 1 (2009), 1063.NatarajH.N.MurthyR.L.SettyS.R.Int. J. ChemTech Res.120091063Search in Google Scholar

Huang J., Xia C., Cao L., Zeng X., Mater. Sci. Eng. B-Adv., 150 (2008), 187.HuangJ.XiaC.CaoL.ZengX.Mater. Sci. Eng. B-Adv.150200818710.1016/j.mseb.2008.05.014Search in Google Scholar

Sharma D., Sharma S., Kaith B.S., Rajput J., Kaur M., Appl. Surf. Sci., 257 (2011), 9661.SharmaD.SharmaS.KaithB.S.RajputJ.KaurM.Appl. Surf. Sci.2572011966110.1016/j.apsusc.2011.06.094Search in Google Scholar

Al-Gaashani R., Radiman S., Tabet N., Daud A.R., Mater. Chem. Phys., 125 (2011), 846.Al-GaashaniR.RadimanS.TabetN.DaudA.R.Mater. Chem. Phys.125201184610.1016/j.matchemphys.2010.09.038Search in Google Scholar

Theivasanthi T., Alagar M., Studies of Copper Nanoparticles Effects on Micro-organisms, arXiv:1110.1372.TheivasanthiT.AlagarM.Studies of Copper Nanoparticles Effects on Micro-organismsarXiv:1110.1372Search in Google Scholar

Ito S., Zakeeruddin S.M., Humphry-Baker R., Liska P., Charvet R., Comte P., Adv. Mater., 18 (2006), 1202.ItoS.ZakeeruddinS.M.Humphry-BakerR.LiskaP.CharvetR.ComteP.Adv. Mater.182006120210.1002/adma.200502540Search in Google Scholar

Fu L., Fu Z., Ceram. Int., 41 (2015), 2492.FuL.FuZ.Ceram. Int.412015249210.1016/j.ceramint.2014.10.069Search in Google Scholar

Dikshit M., Samudrasok R.K., Int. J. Food Sci. Nutr., 62 (2011), 47.DikshitM.SamudrasokR.K.Int. J. Food Sci. Nutr.6220114710.3109/09637486.2010.50061020707766Search in Google Scholar

Yamazaki E., Murayama M., Nishikawa N., Hashimoto N., Shoyama M., Kurita O., Sol. Energy, 81 (2007), 512.YamazakiE.MurayamaM.NishikawaN.HashimotoN.ShoyamaM.KuritaO.Sol. Energy81200751210.1016/j.solener.2006.08.003Search in Google Scholar

Lee K.M., Suryanarayanan V., Ho K.C., Sol. Energ. Mat. Sol. C., 90 (2006), 2398.LeeK.M.SuryanarayananV.HoK.C.Sol. Energ. Mat. Sol. C.902006239810.1016/j.solmat.2006.03.034Search in Google Scholar

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