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dc.contributor.authorNorhisham, Ismail
dc.contributor.authorMohd Azli, Salim
dc.contributor.authorAzmi, Naroh
dc.contributor.authorNor Azmmi, Masripan
dc.contributor.authorAdzni, Md. Saad
dc.contributor.authorMohd Nizam, Sudin
dc.contributor.authorCaridi, Francesco
dc.date.accessioned2020-12-03T03:37:20Z
dc.date.available2020-12-03T03:37:20Z
dc.date.issued2020-05
dc.identifier.citationInternational Journal of Nanoelectronics and Materials, vol.13(Special Issue), 2020, pages 315-326en_US
dc.identifier.issn1985-5761 (Printed)
dc.identifier.issn1997-4434 (Online)
dc.identifier.urihttp://dspace.unimap.edu.my:80/xmlui/handle/123456789/68801
dc.descriptionLink to publisher's homepage at http://ijneam.unimap.edu.myen_US
dc.description.abstractNanotechnology has gained a lot of focus in recent years due to its application in multi-disciplinary fields such as chemistry, electronics energy, and biology. Wearable electronic consists of nanocomposites liquid-solid conductive ink and flexible substrate. This study characterizes the electrical characteristic of the conductive ink with unloaded condition. The conductive ink was printed with four patterns; straight, curve, square and zig-zag patterns. Sheet and bulk resistivity results indicated the decrement of resistivity of all four patterns with the increase of the conductive ink width. From the result, it showed that the resistivity inside the conductive ink increased such as constriction resistance, tunnelling resistance and the number of squares of the meandering trace as compared to similar lengths of a straight-line trace. Size of the particle also affected the contact area and electrical flow between the conductive ink particles. Meanwhile, individual results for each pattern had its own function inside the circuit track.en_US
dc.language.isoenen_US
dc.publisherUniversiti Malaysia Perlis (UniMAP)en_US
dc.relation.ispartofseriesInternational Symposium on Science, Technology and Engineering (ISSTE 2019);
dc.subjectLiquid-solid conductive inken_US
dc.subjectPolyethylene terephthalateen_US
dc.subjectStencil printing methoden_US
dc.subjectWearable electronicsen_US
dc.titleResistivity characterization for carbon based conductive nanocomposite on polyethylene terephthalate and thermoplastic polyurethane substratesen_US
dc.typeArticleen_US
dc.identifier.urlhttp://ijneam.unimap.edu.my
dc.contributor.urlazli@utem.edu.myen_US


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