Influence of Synthesis Route on the Radiation Sensing Properties of ZnO Nanostructures

Joint Authors

Silva, R. A.
Orlandi, M. O.

Source

Journal of Nanomaterials

Issue

Vol. 2016, Issue 2016 (31 Dec. 2016), pp.1-9, 9 p.

Publisher

Hindawi Publishing Corporation

Publication Date

2016-01-26

Country of Publication

Egypt

No. of Pages

9

Main Subjects

Chemistry
Civil Engineering

Abstract EN

ZnO nanostructures were synthesized using two different routes and the light sensor response of structures was studied.

The synthesis by carbothermal reduction resulted in ZnO tetrapods while the synthesis by microwave assisted hydrothermal method produced multipoint stars structures.

Characterization by scanning and transmission electron microscopy confirmed that both structures consist of one-dimensional crystals with a hexagonal cross section and [001] growth direction.

Under a simulated solar radiation spectrum, it was observed that tetrapods display a light sensor response of approximately 5000.

For the multipoint stars, a maximum in the sensor signal value of 3400 was achieved, which also represents a substantial variation in the conductivity of the material.

A model based on the surface oxygen presence is proposed to explain the observed results.

American Psychological Association (APA)

Silva, R. A.& Orlandi, M. O.. 2016. Influence of Synthesis Route on the Radiation Sensing Properties of ZnO Nanostructures. Journal of Nanomaterials،Vol. 2016, no. 2016, pp.1-9.
https://search.emarefa.net/detail/BIM-1109150

Modern Language Association (MLA)

Silva, R. A.& Orlandi, M. O.. Influence of Synthesis Route on the Radiation Sensing Properties of ZnO Nanostructures. Journal of Nanomaterials No. 2016 (2016), pp.1-9.
https://search.emarefa.net/detail/BIM-1109150

American Medical Association (AMA)

Silva, R. A.& Orlandi, M. O.. Influence of Synthesis Route on the Radiation Sensing Properties of ZnO Nanostructures. Journal of Nanomaterials. 2016. Vol. 2016, no. 2016, pp.1-9.
https://search.emarefa.net/detail/BIM-1109150

Data Type

Journal Articles

Language

English

Notes

Includes bibliographical references

Record ID

BIM-1109150