Performance analysis of an integrated piezoelectric ZnO sensor for detection of head–disk contact

Integrated capability for detection of head-disk contact is desired for magnetic sliders with near-contact flying height. At the same time, fabrication of added features should be compatible with the existing slider micromachining process which is highly specialized and cost sensitive. Aimed at meet...

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Main Authors: Yuan, Yanhui, Du, Hejun, Chow, Kun Shyong, Zhang, Mingsheng, Yu, Shengkai, Liu, Bo
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2013
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Online Access:https://hdl.handle.net/10356/101400
http://hdl.handle.net/10220/18361
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1014002023-03-04T17:19:15Z Performance analysis of an integrated piezoelectric ZnO sensor for detection of head–disk contact Yuan, Yanhui Du, Hejun Chow, Kun Shyong Zhang, Mingsheng Yu, Shengkai Liu, Bo School of Mechanical and Aerospace Engineering DRNTU::Engineering::Materials::Microelectronics and semiconductor materials::Thin films Integrated capability for detection of head-disk contact is desired for magnetic sliders with near-contact flying height. At the same time, fabrication of added features should be compatible with the existing slider micromachining process which is highly specialized and cost sensitive. Aimed at meeting the two requirements, a novel sensor configuration is explored in the present study. The new sensor configuration consists of a piezoelectric zinc oxide (ZnO) thin-film sensor sandwiched in the magnetic slider on its trailing side. Coupled structural and piezoelectric finite-element analysis for a sensor-slider- suspension assembly was performed to investigate the dynamic sensing performance. Output voltages on the millivolt level were obtained under typical head-disk interactions. The 2nd in-plane bending mode of the slider was found to be the major contributor to the output voltage. Parametric study showed that a thicker ZnO layer generally generated a larger output, while the thickness of the slider overcoat only had minimal effect. Simulation results from harmonic and transient analyses demonstrated that the piezoelectric thin-film ZnO sensor is sufficiently sensitive for detection of head-disk contact. Accepted version 2013-12-26T03:27:54Z 2019-12-06T20:37:59Z 2013-12-26T03:27:54Z 2019-12-06T20:37:59Z 2013 2013 Journal Article Yuan, Y., Du, H., Chow, K. S., Zhang, M., Yu, S., & Liu, B. (2013). Performance analysis of an integrated piezoelectric ZnO sensor for detection of head–disk contact. Microsystem Technologies, 19(9-10), 1449-1455. 0946-7076 https://hdl.handle.net/10356/101400 http://hdl.handle.net/10220/18361 10.1007/s00542-013-1839-3 en Microsystem technologies © 2013 Springer-Verlag Berlin Heidelberg. This is the author created version of a work that has been peer reviewed and accepted for publication by Microsystem technologies, Springer-Verlag Berlin Heidelberg. It incorporates referee’s comments but changes resulting from the publishing process, such as copyediting, structural formatting, may not be reflected in this document. The published version is available at: [http://dx.doi.org/10.1007/s00542-013-1839-3]. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Materials::Microelectronics and semiconductor materials::Thin films
spellingShingle DRNTU::Engineering::Materials::Microelectronics and semiconductor materials::Thin films
Yuan, Yanhui
Du, Hejun
Chow, Kun Shyong
Zhang, Mingsheng
Yu, Shengkai
Liu, Bo
Performance analysis of an integrated piezoelectric ZnO sensor for detection of head–disk contact
description Integrated capability for detection of head-disk contact is desired for magnetic sliders with near-contact flying height. At the same time, fabrication of added features should be compatible with the existing slider micromachining process which is highly specialized and cost sensitive. Aimed at meeting the two requirements, a novel sensor configuration is explored in the present study. The new sensor configuration consists of a piezoelectric zinc oxide (ZnO) thin-film sensor sandwiched in the magnetic slider on its trailing side. Coupled structural and piezoelectric finite-element analysis for a sensor-slider- suspension assembly was performed to investigate the dynamic sensing performance. Output voltages on the millivolt level were obtained under typical head-disk interactions. The 2nd in-plane bending mode of the slider was found to be the major contributor to the output voltage. Parametric study showed that a thicker ZnO layer generally generated a larger output, while the thickness of the slider overcoat only had minimal effect. Simulation results from harmonic and transient analyses demonstrated that the piezoelectric thin-film ZnO sensor is sufficiently sensitive for detection of head-disk contact.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Yuan, Yanhui
Du, Hejun
Chow, Kun Shyong
Zhang, Mingsheng
Yu, Shengkai
Liu, Bo
format Article
author Yuan, Yanhui
Du, Hejun
Chow, Kun Shyong
Zhang, Mingsheng
Yu, Shengkai
Liu, Bo
author_sort Yuan, Yanhui
title Performance analysis of an integrated piezoelectric ZnO sensor for detection of head–disk contact
title_short Performance analysis of an integrated piezoelectric ZnO sensor for detection of head–disk contact
title_full Performance analysis of an integrated piezoelectric ZnO sensor for detection of head–disk contact
title_fullStr Performance analysis of an integrated piezoelectric ZnO sensor for detection of head–disk contact
title_full_unstemmed Performance analysis of an integrated piezoelectric ZnO sensor for detection of head–disk contact
title_sort performance analysis of an integrated piezoelectric zno sensor for detection of head–disk contact
publishDate 2013
url https://hdl.handle.net/10356/101400
http://hdl.handle.net/10220/18361
_version_ 1759855194979434496