Systematic Study of the Structure-Property Relationships of Branched Hierarchical TiO2/ZnO Nanostructures

被引:59
作者
Athauda, Thushara J. [1 ]
Neff, Jonathan G. [1 ]
Sutherlin, Logan [1 ]
Butt, Umaiz [1 ]
Ozer, Ruya R. [1 ]
机构
[1] Univ Tulsa, Dept Chem & Biochem, Tulsa, OK 74104 USA
关键词
electrospinning; nanofibers; nanorods; metal-oxide; TiO2; ZnO; hydrothermal growth; PHOTOCATALYTIC ACTIVITY; ELECTROSPUN NANOFIBERS; POLYMER NANOFIBERS; RATIONAL GROWTH; CORE-SHELL; NANOPARTICLES; FABRICATION; NANOMATERIALS; MORPHOLOGY; NANOWIRES;
D O I
10.1021/am302061z
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
We report a simple and effective route for fabricating branched hierarchical nanostructures of TiO2/ZnO by combining electrospinning and the low-temperature hydrothermal growth technique. First, TiO2 nanofibers were prepared by electrospinning polystyrene (PS)/titanium tetraisopropoxide (Ti(OiPr)(4)) solutions onto glass substrates followed by calcination at 500 degrees C. The electrospun TiO2 nanofibers served as a 3D primary platform upon which the branched, highly uniform, and dense secondary ZnO nanorods were hydrothermally grown. We observed that the concentration of Ti(OiPr)(4) in the polystyrene solution has a significant effect on the surface roughness and areal material ratio of the electrospun fibers. Most significantly, the morphology of the branched secondary ZnO nanorods and the overall charge transfer capacity of the nanoheterostructured systems are controlled by the density of the TiO2 platform. This study demonstrates that, by properly choosing the synthesis parameters, it is possible to fine-tune the microscopic and macroscopic properties of branched hierarchical metal-oxide systems. The presented approach can be applied to the development of controlled, reproducible, miniaturized, and robust high-performance metal-oxide photovoltaic and photocatalytic systems.
引用
收藏
页码:6916 / 6925
页数:10
相关论文
共 77 条
[21]   Functionalization of electrospun TiO2 nanofibers with Pt nanoparticles and nanowires for catalytic applications [J].
Formo, Eric ;
Lee, Eric ;
Campbell, Dean ;
Xia, Younan .
NANO LETTERS, 2008, 8 (02) :668-672
[22]   Polymer nanofibers assembled by electrospinning [J].
Frenot, A ;
Chronakis, IS .
CURRENT OPINION IN COLLOID & INTERFACE SCIENCE, 2003, 8 (01) :64-75
[23]   Photocatalytic superhydrophilic TiO2 coating on glass by electrospinning [J].
Ganesh, V. Anand ;
Nair, A. Sreekumaran ;
Raut, Hemant Kumar ;
Walsh, Timothy Michael ;
Ramakrishna, Seeram .
RSC ADVANCES, 2012, 2 (05) :2067-2072
[24]   General route to vertical ZnO nanowire arrays using textured ZnO seeds [J].
Greene, LE ;
Law, M ;
Tan, DH ;
Montano, M ;
Goldberger, J ;
Somorjai, G ;
Yang, PD .
NANO LETTERS, 2005, 5 (07) :1231-1236
[25]   Solution-grown zinc oxide nanowires [J].
Greene, Lori E. ;
Yuhas, Benjamin D. ;
Law, Matt ;
Zitoun, David ;
Yang, Peidong .
INORGANIC CHEMISTRY, 2006, 45 (19) :7535-7543
[26]   Electrospinning: A fascinating method for the preparation of ultrathin fibres [J].
Greiner, Andreas ;
Wendorff, Joachim H. .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2007, 46 (30) :5670-5703
[27]   Cobalt doping, etching, and attachment of gold nanoparticles and quantum dots on ZnO nanorods [J].
Hari, Parameswar ;
Spencer, Daryl ;
Hor, Amy ;
Liang, Huan ;
Roberts, Ken ;
Teeters, Dale .
PHYSICA STATUS SOLIDI C: CURRENT TOPICS IN SOLID STATE PHYSICS, VOL 8, NO 9, 2011, 8 (09) :2814-2817
[28]   Surface morphology of zinc oxide nanorods grown by hydrothermal deposition technique [J].
Hari, Parameswar ;
Spencer, Daryl .
PHYSICA STATUS SOLIDI C: CURRENT TOPICS IN SOLID STATE PHYSICS, VOL 6, SUPPL 1, 2009, 6 :S150-S153
[29]   Semiconductor nanowire devices [J].
Hayden, Oliver ;
Agarwal, Ritesh ;
Lu, Wei .
NANO TODAY, 2008, 3 (5-6) :12-22
[30]   A review on polymer nanofibers by electrospinning and their applications in nanocomposites [J].
Huang, ZM ;
Zhang, YZ ;
Kotaki, M ;
Ramakrishna, S .
COMPOSITES SCIENCE AND TECHNOLOGY, 2003, 63 (15) :2223-2253