Three-Dimensional Kelvin Probe Microscopy for Characterizing In-Plane Piezoelectric Potential of Laterally Deflected ZnO Micro-/Nanowires

被引:23
作者
Bayerl, Dylan J. [1 ]
Wang, Xudong [1 ]
机构
[1] Univ Wisconsin, Dept Mat Sci & Engn, Madison, WI 53706 USA
基金
美国国家科学基金会;
关键词
zinc oxide; microwires; nanowires; piezoelectric materials; potential characterization; kelvin probe microscopy; ZINC-OXIDE; NANOGENERATOR; NANOWIRE; ENERGY; CANTILEVER; CONTACT; DEVICES; DRIVEN;
D O I
10.1002/adfm.201102325
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Potential characterization of deflected piezoelectric nanowires (NWs) is of great interest for current development of electromechanical nanogenerators that harvest ambient mechanical energy. In this paper, a Kelvin probe microscopy (KPM) technique hybridizing scanning KPM (SKPM) with atomic force microscope (AFM) surface-approach spectroscopy methods for characterizing in-plane piezoelectric potential of ZnO microwires (MWs) is presented. This technique decouples the scanning motion of the AFM tip from sample topography, and thus effectively eliminates artifacts induced by high topographical variations along the edges of MWs/NWs which make characterization by conventional SKPM inappropriate or impossible. By virtue of the topography/tip motion decoupling approach, the electrical potential can also be mapped in a three-dimensional (3D) spatial volume above the sample surface. Therefore, this technique is named 3DKPM. Through 3DKPM mapping, the piezopotential generated by a laterally deflected ZnO MW was determined by extracting the potential asymmetry from opposite sides of the MW. The measurement results agree well with theoretical predictions. Integrating an external bias to the MW sample allowed direct observation of piezopotential and carrier concentration coupling phenomenon in ZnO, opening a door toward quantitative microscopic investigation of the piezotronic effect. With further positioning refinements, 3DKPM could become a powerful technique for the characterization of piezoelectric potential and related effects in micro/nanostructures of high topographical variations, as well as development of MW/NW-based piezoelectric nanodevices.
引用
收藏
页码:652 / 660
页数:9
相关论文
共 51 条
[1]   Giant Piezoelectric Size Effects in Zinc Oxide and Gallium Nitride Nanowires. A First Principles Investigation [J].
Agrawal, Ravi ;
Espinosa, Horacio D. .
NANO LETTERS, 2011, 11 (02) :786-790
[2]   High-Performance Integrated ZnO Nanowire UV Sensors on Rigid and Flexible Substrates [J].
Bai, Suo ;
Wu, Weiwei ;
Qin, Yong ;
Cui, Nuanyang ;
Bayerl, Dylan J. ;
Wang, Xudong .
ADVANCED FUNCTIONAL MATERIALS, 2011, 21 (23) :4464-4469
[3]   Phase imaging: Deep or superficial? [J].
Behrend, OP ;
Odoni, L ;
Loubet, JL ;
Burnham, NA .
APPLIED PHYSICS LETTERS, 1999, 75 (17) :2551-2553
[4]   A simplified but intuitive analytical model for intermittent-contact-mode force microscopy based on Hertzian mechanics [J].
Bielefeldt, H ;
Giessibl, FJ .
SURFACE SCIENCE, 1999, 440 (03) :L863-L867
[5]   On the deconvolution of Kelvin probe force microscopy data [J].
Bluemel, A. ;
Plank, H. ;
Klug, A. ;
Fisslthaler, E. ;
Sezen, M. ;
Grogger, W. ;
List, E. J. W. .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2010, 81 (05)
[6]   Calculating Kelvin force microscopy signals from static force fields [J].
Borowik, Lukasz ;
Kusiaku, Koku ;
Theron, Didier ;
Melin, Thierry .
APPLIED PHYSICS LETTERS, 2010, 96 (10)
[7]   Direct-Write Piezoelectric Polymeric Nanogenerator with High Energy Conversion Efficiency [J].
Chang, Chieh ;
Tran, Van H. ;
Wang, Junbo ;
Fuh, Yiin-Kuen ;
Lin, Liwei .
NANO LETTERS, 2010, 10 (02) :726-731
[8]   Real versus measured surface potentials in scanning Kelvin probe microscopy [J].
Charrier, Dimitri S. H. ;
Kemerink, Martijn ;
Smalbrugge, Barry E. ;
de Vries, Tjibbe ;
Janssen, Rene A. J. .
ACS NANO, 2008, 2 (04) :622-626
[9]   1.6 V Nanogenerator for Mechanical Energy Harvesting Using PZT Nanofibers [J].
Chen, Xi ;
Xu, Shiyou ;
Yao, Nan ;
Shi, Yong .
NANO LETTERS, 2010, 10 (06) :2133-2137
[10]   Potential measurement from a single lead ziroconate titanate nanofiber using a nanomanipulator [J].
Chen, Xi ;
Xu, Shiyou ;
Yao, Nan ;
Xu, Weihe ;
Shi, Yong .
APPLIED PHYSICS LETTERS, 2009, 94 (25)