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体外生命系统工程系列讲座(第九期)
【图书馆系列讲座】“水木搜索”等新平台的使用方法
【图书馆系列讲座】图书馆资源与服务导览
Low-energy effective theory for 3-dimensional topological orders
报告题目:
From Nanogenerators to Nano-Piezotronics
 报告人:
王中林
School of Materials Science and Engineering
Georgia Institute of Technology,  Atlanta USA
报告时间:
2007-06-02 15:30
报告地点:
富士康纳米科技研究中心四楼报告厅(南门往北四百米左右)
主办单位:
  简介:
清华大学材料科学与工程研究院《材料科学论坛》
 
学术报告
 
 
 
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联系人:方慧 62773997
 

From Nanogenerators to Nano-Piezotronics
 
Zhong Lin Wang
 
School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta USA
 
Developing novel technologies for wireless nanodevices and nanosystems are of critical importance for in-situ, real-time and implantable biosensing, biomedical monitoring and biodetection. It is highly desired for wireless devices and even required for implanted biomedical devices to be self-powered without using battery. Therefore, it is essential to explore innovative nanotechnologies for converting mechanical energy (such as body movement, muscle stretching), vibration energy (such as acoustic/ultrasonic wave), and hydraulic energy (such as body fluid and blood flow) into electric energy that will be used to power nanodevices without using battery. We have demonstrated an innovative approach for converting nano-scale mechanical energy into electric energy by piezoelectric zinc oxide nanowire (NW) arrays [1-3]. We have recently developed DC nanogenerator driven by ultrasonic wave [4], which is a gigantic step towards application in practice.
 
The operation mechanism of the electric generator relies on the unique coupling of piezoelectric and semiconducting dual properties of ZnO as well as the elegant rectifying function of the Schottky barrier formed between the metal tip and the NW. Based on this principle, piezoelectric-field effect transistor [5], piezoelectric gated diode [6], sensors and resonators have been fabricated, which are the fundamental components of nano-piezotronics. Piezotronics is a field of using piezoelectric-semiconducting coupled property for fabricating novel and unique electronic devices and components [7].
 
[1] Z.L. Wang and J.H. Song  “Piezoelectric Nanogenerators Based on Zinc Oxide Nanowire Arrays”, Science, 312 (2006) 242-246.
[2] P.X. Gao, J.H. Song, J. Liu and Z.L. Wang “Nanowire Nanogenerators on Plastic Substrates as Flexible Power Source”, Adv. Mater., 19 (2007) 67-72.
[3] J.H. Song, J. Zhou, Z.L. Wang ”Piezoelectric and semiconducting dual-property coupled power generating process of a single ZnO belt/wire ? a technology for harvesting electricity from the environment”, Nano Letters, 6 (2006) 1656-1662.
[4] X.D. Wang, J.H. Song J. Liu, N.S. Xu and Z.L. Wang “Direct current nanogenerator driven by ultrasonic wave”, Science, 316 (2007) 102-105.
[5] X.D. Wang, J. Zhou, J.H. Song J. Liu, N.S. Xu and Z.L. Wang “Piezoelectric-Field Effect Transistor and Nano-Force-Sensor Based on a Single ZnO Nanowire”, Nano Letters, 6 (2006) 2768-2772.
[6] J. H. He, C.H. Hsin, L.J. Chen, Z.L. Wang ”Piezoelectric Gated Diode of a Single ZnO Nanowire”, Adv. Mater., 19 (2007) 781.
[7] Z.L. Wang “Nano-piezotronics”, Adv. Mater., 19 (2007) 889.
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