Piezoelectric Potential in Single-Crystalline ZnO Nanohelices Based on Finite Element Analysis
Electric potential produced in deformed piezoelectric nanostructures is of significance for both fundamental study and practical applications. To reveal the piezoelectric property of ZnO nanohelices, the piezoelectric potential in single-crystal nanohelices was simulated by finite element method cal...
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doaj-ad50be4f2560427f8a1d4bca366624ca2020-11-24T21:53:03ZengMDPI AGNanomaterials2079-49912017-12-0171243010.3390/nano7120430nano7120430Piezoelectric Potential in Single-Crystalline ZnO Nanohelices Based on Finite Element AnalysisHuimin Hao0Kory Jenkins1Xiaowen Huang2Yiqian Xu3Jiahai Huang4Rusen Yang5Key Lab of Advanced Transducers and Intelligent Control System, Ministry of Education and Shanxi Province, Taiyuan University of Technology, Taiyuan 030024, ChinaDepartment of Mechanical Engineering, University of Minnesota, Minneapolis, MN 55455, USADepartment of Applied Physics, The Hong Kong Polytechnic University, Hong Kong, ChinaKey Lab of Advanced Transducers and Intelligent Control System, Ministry of Education and Shanxi Province, Taiyuan University of Technology, Taiyuan 030024, ChinaKey Lab of Advanced Transducers and Intelligent Control System, Ministry of Education and Shanxi Province, Taiyuan University of Technology, Taiyuan 030024, ChinaDepartment of Mechanical Engineering, University of Minnesota, Minneapolis, MN 55455, USAElectric potential produced in deformed piezoelectric nanostructures is of significance for both fundamental study and practical applications. To reveal the piezoelectric property of ZnO nanohelices, the piezoelectric potential in single-crystal nanohelices was simulated by finite element method calculations. For a nanohelix with a length of 1200 nm, a mean coil radius of 150 nm, five active coils, and a hexagonal coiled wire with a side length 100 nm, a compressing force of 100 nN results in a potential of 1.85 V. This potential is significantly higher than the potential produced in a straight nanowire with the same length and applied force. Maintaining the length and increasing the number of coils or mean coil radius leads to higher piezoelectric potential in the nanohelix. Appling a force along the axial direction produces higher piezoelectric potential than in other directions. Adding lateral forces to an existing axial force can change the piezoelectric potential distribution in the nanohelix, while the maximum piezoelectric potential remains largely unchanged in some cases. This research demonstrates the promising potential of ZnO nanohelices for applications in sensors, micro-electromechanical systems (MEMS) devices, nanorobotics, and energy sciences.https://www.mdpi.com/2079-4991/7/12/430piezotronicnumerical simulationnanohelixFEM |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Huimin Hao Kory Jenkins Xiaowen Huang Yiqian Xu Jiahai Huang Rusen Yang |
spellingShingle |
Huimin Hao Kory Jenkins Xiaowen Huang Yiqian Xu Jiahai Huang Rusen Yang Piezoelectric Potential in Single-Crystalline ZnO Nanohelices Based on Finite Element Analysis Nanomaterials piezotronic numerical simulation nanohelix FEM |
author_facet |
Huimin Hao Kory Jenkins Xiaowen Huang Yiqian Xu Jiahai Huang Rusen Yang |
author_sort |
Huimin Hao |
title |
Piezoelectric Potential in Single-Crystalline ZnO Nanohelices Based on Finite Element Analysis |
title_short |
Piezoelectric Potential in Single-Crystalline ZnO Nanohelices Based on Finite Element Analysis |
title_full |
Piezoelectric Potential in Single-Crystalline ZnO Nanohelices Based on Finite Element Analysis |
title_fullStr |
Piezoelectric Potential in Single-Crystalline ZnO Nanohelices Based on Finite Element Analysis |
title_full_unstemmed |
Piezoelectric Potential in Single-Crystalline ZnO Nanohelices Based on Finite Element Analysis |
title_sort |
piezoelectric potential in single-crystalline zno nanohelices based on finite element analysis |
publisher |
MDPI AG |
series |
Nanomaterials |
issn |
2079-4991 |
publishDate |
2017-12-01 |
description |
Electric potential produced in deformed piezoelectric nanostructures is of significance for both fundamental study and practical applications. To reveal the piezoelectric property of ZnO nanohelices, the piezoelectric potential in single-crystal nanohelices was simulated by finite element method calculations. For a nanohelix with a length of 1200 nm, a mean coil radius of 150 nm, five active coils, and a hexagonal coiled wire with a side length 100 nm, a compressing force of 100 nN results in a potential of 1.85 V. This potential is significantly higher than the potential produced in a straight nanowire with the same length and applied force. Maintaining the length and increasing the number of coils or mean coil radius leads to higher piezoelectric potential in the nanohelix. Appling a force along the axial direction produces higher piezoelectric potential than in other directions. Adding lateral forces to an existing axial force can change the piezoelectric potential distribution in the nanohelix, while the maximum piezoelectric potential remains largely unchanged in some cases. This research demonstrates the promising potential of ZnO nanohelices for applications in sensors, micro-electromechanical systems (MEMS) devices, nanorobotics, and energy sciences. |
topic |
piezotronic numerical simulation nanohelix FEM |
url |
https://www.mdpi.com/2079-4991/7/12/430 |
work_keys_str_mv |
AT huiminhao piezoelectricpotentialinsinglecrystallineznonanohelicesbasedonfiniteelementanalysis AT koryjenkins piezoelectricpotentialinsinglecrystallineznonanohelicesbasedonfiniteelementanalysis AT xiaowenhuang piezoelectricpotentialinsinglecrystallineznonanohelicesbasedonfiniteelementanalysis AT yiqianxu piezoelectricpotentialinsinglecrystallineznonanohelicesbasedonfiniteelementanalysis AT jiahaihuang piezoelectricpotentialinsinglecrystallineznonanohelicesbasedonfiniteelementanalysis AT rusenyang piezoelectricpotentialinsinglecrystallineznonanohelicesbasedonfiniteelementanalysis |
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