Facile synthesis of ultrafine TiO2 nanowires with large aspect ratio and its photoactivity
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G. S. Anjusree
, A. M. Asha , K. R. V. Subramanian , N. Sivakumar , A. Sreekumaran Nair , Shantikumar V. Nair and Avinash Balakrishnan
Abstract
In the present study, ultrafine TiO2 nanowires (∼80 nm in diameter) exhibiting large aspect ratio in the order of 103 were synthesized hydrothermally. Phase and morphological analysis of the nanowires was carried out using X-ray diffractometry, X-ray photoelectron spectroscopy and scanning electron microscopy. High resolution transmission electron microscopy revealed the wire exhibiting growth in (101). A Tauc plot derived from UV analysis showed the average band gap values for nanowires to be less than for nanoparticles of similar diameter. It was observed that nanowires exhibited a high degree of photoactivity in an eosin-based dye system which was found to be 20 – 30 % more than that of nanoparticles. This high photoactivity in nanowires was attributed to the longer charge retention which was observed during lifetime measurements, resulting in easy radical formation and dye degradation. Lifetime measurements on the nanowires showed the recombination time to be 54 ns as compared to 43 ns for nanoparticles.
References
[1] R.Sasikala, A.R.Shirole, V.Sudarsan, V.S.Kamble, C.Sudakar, R.Naik, R.Rao, S.R.Bharadwaj: Appl. Catal. B: Gen.390 (2010) 245. 10.1016/j.apcata.2010.10.016Search in Google Scholar
[2] S.Pavasupree, J.Jitputti, J.Ngamsinlapasathian, S.Yoshikawa: Mater. Res. Bull, 43 (2008) 149. 10.1016/j.materresbull.2007.02.028Search in Google Scholar
[3] L.Amy, A.Linsebigler, G.Lu, J.T.Yates: Chem. Rev.95 (1995) 735. 10.1021/cr00035a013Search in Google Scholar
[4] A.Ashkarran, E.Mahmoudi: J. Theo. Appl. Phys, 3 (2010) 19.Search in Google Scholar
[5] W.Li, C.Liu, Y.Zhou, Y.Bai, X.Feng, Z.Yang, L.Lu, X.Lu, K.Y.Chan: J. Phys. Chem. C112 (2008) 20539. 10.1021/jp0762727Search in Google Scholar
[6] K.Nagaveni, M.S.Hegde, N.Ravishankar, G.N.Subbanna, Giridhar: Langmuir, 20 (2004) 2900. PMid: 15835170; 10.1021/la035777vSearch in Google Scholar PubMed
[7] N.Bao, Y.Li, Z.Wei, G.Yin, J.Niu: J. Phys. Chem. C115 (2011) 5708. 10.1021/jp1100939Search in Google Scholar
[8] D.Yang, H.Liu, Z.Zheng, Y.Yuan, J.Zhao, E.R.Waclawik, X.Ke, H.Zhu: J. Am. Chem. Soc.131(2009) 17885. 10.1021/ja808790pSearch in Google Scholar PubMed
[9] H.S.Hafez: Mater. Lett.63 (2009) 1471. 10.1016/j.matlet.2009.03.057Search in Google Scholar
[10] D.Li, Y.Xia: Nano Lett.3 (2003) 555. 10.1021/nl034039oSearch in Google Scholar
[11] S.H.Nam, H.S.Shim, Y.S.Kim, M.A.Dar, J.G.Kim, W.B.Kim: Appl. Mater. Interfaces2 (2010) 2046. 10.1021/am100319uSearch in Google Scholar
[12] C.Wessel, R.Ostermann, R.Dersch, B.M.Smarsly: J. Phys. Chem. C115 (2011) 362. 10.1021/jp108202bSearch in Google Scholar
[13] L.Cai, Z.Liao, B.Shi: Langmuir, 49 (2010) 3194.Search in Google Scholar
[14] J.S.Chen, L.A.Archer, X.W.Lou: J. Mater. Chem.21 (2011) 9912. 10.1039/c0jm02487bSearch in Google Scholar
[15] C.Wang, X.Zhang, C.Shao, Y.Zhang, G.Yang, P.Sun, X.Liu, H.Liu, Y.Liu, T.Xie, D.Wang: J. Coll. Int. Sci.363 (2011) 157. PMid: 21820128; 10.1016/j.jcis.2011.07.035Search in Google Scholar PubMed
[16] Q.Wei, K.Hirota, K.Tajima, K.Hashimoto: Chem. Mater.18 (2006) 5080. 10.1021/cm051074iSearch in Google Scholar
[17] H.Kaper, S.Sallard, I.Djerdj, M.Antonietti, B.M.Smarsly: Chem. Mater.22 (2010) 3502. 10.1021/cm100627gSearch in Google Scholar
[18] L.Yu, H.Yu, B.Cheng, X.Zhao, O.Zhang: J. Photochem. Photobiol. A: Chem.182 (2006) 121. 10.1016/j.jphotochem.2006.01.022Search in Google Scholar
[19] S.Zhang, Z.Chenb, Y.Li, Q.Wang, L.Wan, Y.You: Mater. Chem. Phys.107 (2008) 1. 10.1016/j.matchemphys.2007.06.066Search in Google Scholar
[20] S.Kalluri, A.M.Asha, P.Anjali, N.Sivakumar, K.R V.Subramanian, S.V.Nair and A.Balakrishnan: Mater. Lett.67 (2011) 376.Search in Google Scholar
[21] S.Kalluri, B.P.Arun., A.M.Asha, R.Vani, P.Anjali, N.Sivakumar, K.R V.Subramanian, S.V.Nair, A.Balakrishnan: Sci. Adv. Mater. (2012) (Accepted, Article in Press).Search in Google Scholar
[22] S.Pavasupree, S.Ngamsinlapasathian, M.Nakajima, Y.Suzuki, S.Yoshikawa: J. Photochem. Photobiol. A: Chem.184 (2006) 163. 10.1016/j.jphotochem.2006.04.010Search in Google Scholar
[23] S.Pavasupree, Y.Suzuki, S.Yoshikawa, R.Kawahata: J. Solidstate. Chem.178 (2005) 3110. 10.1016/j.jssc.2004.10.028Search in Google Scholar
[24] Y.Suzuki, S.Pavasupree. S.Yoshikawa: J. Mater. Res.20 (2005) 1063. 10.1557/JMR.2005.0135Search in Google Scholar
[25] S.K.Padmanabhan, A.Balakrishnan, M.C.Chu, J.J.Lee, T.M.Kim, S. J.Cho: Particuology, 7 (2009) 466. 10.1016/j.partic.2009.06.008Search in Google Scholar
[26] S.Y.Bae, J.Lee, H.Jung, J.Park, J.P.Ahn: J. Am. Chem. Soc.127 (2005) 10802. 10.1021/ja0432968Search in Google Scholar
[27] J.R.Lakowicz: Principles of Fluorescent spectroscopy, Springer (2006). 10.1007/978-0-387-46312-4Search in Google Scholar
[28] J.R.Jennings, A.Ghicov, L.M.Peter, P.Schmuki, A.B.Walker: J. Am. Chem. Soc.130 (2008) 13364. PMid: 18774820; 10.1021/ja804852zSearch in Google Scholar
[29] A.Fujishima, M.Rao, D.A.Tryk: J. Photochem. Photobiol. A: Chem, 1 (2000) 1. 10.1016/S1389-5567(00)00002-2Search in Google Scholar
[30] D.A.Tryk, A.Fujishima, K.Honda: Electrochimica Acta45 (2000) 2363. 10.1016/S0013-4686(00)00337-6Search in Google Scholar
[31] M.N.Rashed, A.A.El-Amin: Int. J. Phys. Sci.2(2007) 73.Search in Google Scholar
© 2013, Carl Hanser Verlag, München
Articles in the same Issue
- Contents
- Contents
- Original Contributions
- Analysis of V(C, N) nanoparticles in a medium carbon bainitic microalloyed steel and their influence on strengthening
- Experimental and numerical investigation of the microstructural influence on the deformation behavior of notched cp-titanium specimens
- Interfacial study of Si–Ge multilayers grown using ultrahigh-vacuum chemical vapor deposition
- Age-hardenability related to precipitation and lamellar-forming grain boundary reaction in dental low-carat gold alloy
- Calorimetric study and phase diagram investigation of the Au–Ga system
- Roles of iron and copper salts for controlling morphology of silver nanostructures
- Hydrothermal synthesis of nanowires, nanobelts, and nanotubes of vanadium oxides from one reaction system
- Facile synthesis of ultrafine TiO2 nanowires with large aspect ratio and its photoactivity
- Kinetics of thermal dehydration of sol-gel derived MgO–ZrO2 composite hydrogel
- Synthesis and reaction process of β-Si3N4 by means of carbothermal nitridation of serpentine
- Analysis of size effect and anisotropy of 6H – SiC thermal conductivity
- Effects of molecular polarity on nanofluidic behavior in a silicalite
- Vertical static compression performance of honeycomb paperboard
- Short Communications
- Synthesis of phase purity V2AlC via self-propagation high temperature sintering
- Densification and microwave properties of low-temperature co-fired CaO–B2O3–SiO2 glass-ceramic with La–B–Si additions
- DGM News
- DGM News
Articles in the same Issue
- Contents
- Contents
- Original Contributions
- Analysis of V(C, N) nanoparticles in a medium carbon bainitic microalloyed steel and their influence on strengthening
- Experimental and numerical investigation of the microstructural influence on the deformation behavior of notched cp-titanium specimens
- Interfacial study of Si–Ge multilayers grown using ultrahigh-vacuum chemical vapor deposition
- Age-hardenability related to precipitation and lamellar-forming grain boundary reaction in dental low-carat gold alloy
- Calorimetric study and phase diagram investigation of the Au–Ga system
- Roles of iron and copper salts for controlling morphology of silver nanostructures
- Hydrothermal synthesis of nanowires, nanobelts, and nanotubes of vanadium oxides from one reaction system
- Facile synthesis of ultrafine TiO2 nanowires with large aspect ratio and its photoactivity
- Kinetics of thermal dehydration of sol-gel derived MgO–ZrO2 composite hydrogel
- Synthesis and reaction process of β-Si3N4 by means of carbothermal nitridation of serpentine
- Analysis of size effect and anisotropy of 6H – SiC thermal conductivity
- Effects of molecular polarity on nanofluidic behavior in a silicalite
- Vertical static compression performance of honeycomb paperboard
- Short Communications
- Synthesis of phase purity V2AlC via self-propagation high temperature sintering
- Densification and microwave properties of low-temperature co-fired CaO–B2O3–SiO2 glass-ceramic with La–B–Si additions
- DGM News
- DGM News