Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin,...

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Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601

Transcript of Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin,...

Page 1: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

Microfibre–nanowire hybrid structure for energyscavenging

Kiarash Kiantaj04/07/08

Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601

Page 2: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

Harvesting energy from environment Solar Thermal Mechanical (wind, friction, body

movement or any environment disturbance)

Foot steps Heartbeat Air flow

Low frequency

Page 3: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

piezoelectric zinc oxide nanowires

Kevlar fibres coated with ZnO nanowires

Hydrothermal growth TEOS (Tetraethoxysilane )

Page 4: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

Characteristics

Single crystalline nanowires hexagonal cross-section diameter in the range ,50–200 nm length of 3.5 um Distance of few hundred nm

Page 5: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

double-fibre model systemas nanogenerator

Page 6: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

300 nm gold layer Schottky barrier at

Au-ZnO interface +V( reverse biased) -V (forward biased)

Page 7: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

switching polarity testing

Ri<250Mohm Two peaks 0.2 s delay

Page 8: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

friction-inducedelectrostatic charges

Only Au coated ZnO nanowire fibers Only ZnO nanowire fibers

Page 9: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

Frequency range: 80-240 rpm

Page 10: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

Improvements: Reducing the inner resistance of the fiber

Deposition of a conductive layer directly onto the fiber reduction of inner resistance to 1 k-ohm

surface contact area single yarn made of 6 fibers average current of 0.2 nA 30–50 times larger than single-fiber

Series and parallel setup

Page 11: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

Life time

Page 12: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

Estimation of optimum output power density from textile fabrics:20–80mW per square meter

Page 13: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.

The end

Page 14: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.
Page 15: Microfibre–nanowire hybrid structure for energy scavenging Kiarash Kiantaj 04/07/08 Yong Qin, Xudong Wang & Zhong Lin Wang-10.1038/nature06601.
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“I-V characteristic of ZnO NW coated fiber measured using the circuit as presented at the right-hand side, where silver was used as the electrodes. The inner resistance of the 4 mm fiber used here is ~ 250 MΩ.”