<?xml version='1.0' encoding='UTF-8'?><codeBook xmlns="ddi:codebook:2_5" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="ddi:codebook:2_5 https://ddialliance.org/Specification/DDI-Codebook/2.5/XMLSchema/codebook.xsd" version="2.5"><docDscr><citation><titlStmt><titl>Highly Transparent and Integrable Surface Texture Change Device for Localized Tactile Feedback - Raw Data</titl><IDNo agency="DOI">doi:10.21979/N9/FNJPVD</IDNo></titlStmt><distStmt><distrbtr source="archive">DR-NTU (Data)</distrbtr><distDate>2020-04-23</distDate></distStmt><verStmt source="archive"><version date="2020-04-23" type="RELEASED">2</version></verStmt><biblCit>Ankit, 2020, "Highly Transparent and Integrable Surface Texture Change Device for Localized Tactile Feedback - Raw Data", https://doi.org/10.21979/N9/FNJPVD, DR-NTU (Data), V2</biblCit></citation></docDscr><stdyDscr><citation><titlStmt><titl>Highly Transparent and Integrable Surface Texture Change Device for Localized Tactile Feedback - Raw Data</titl><IDNo agency="DOI">doi:10.21979/N9/FNJPVD</IDNo></titlStmt><rspStmt><AuthEnty affiliation="Nanyang Technological University">Ankit</AuthEnty></rspStmt><prodStmt><software version="2016">Origin</software><grantNo agency="Agency for Science, Technology and Research (NTU‐A*STAR), Silicon Technologies Centre of Excellence">112 3510 0003</grantNo><grantNo agency="Ministry of Education (MOE)">Tier 1 grant RG184/14</grantNo><grantNo agency="Ministry of Education (MOE)">RG166/16</grantNo><grantNo agency="Ministry of Education (MOE)">MOE Tier 2 grant MOE2016-T2-1-100</grantNo></prodStmt><distStmt><distrbtr source="archive">DR-NTU (Data)</distrbtr><contact affiliation="Nanyang Technological University">Ankit</contact><depositr>Ankit</depositr><depDate>2020-04-23</depDate></distStmt><holdings URI="https://doi.org/10.21979/N9/FNJPVD"/></citation><stdyInfo><subject><keyword xml:lang="en">Engineering</keyword><keyword>haptic interfaces</keyword></subject><abstract>Transparent, and integrable surface texture change devices for tactile and haptic feedback based on thickness mode actuation of dielectric elastomer actuators is demonstrated for enhanced human-machine interaction in displays and touchscreens. Development of such a device provides new architecture for elastomeric actuators and advances next generation haptic devices.</abstract><sumDscr><dataKind>Raw data for graphs</dataKind></sumDscr></stdyInfo><method><dataColl><sources/></dataColl><anlyInfo/></method><dataAccs><setAvail/><useStmt/></dataAccs><othrStdyMat><relPubl><citation><titlStmt><titl>Ankit., Tiwari, N., Rajput, M., Chien, N. A., &amp; Mathews, N. (2018). Highly transparent and integrable surface texture change device for localized tactile feedback. Small, 14(1), 1702312.</titl><IDNo agency="doi">10.1002/smll.201702312</IDNo></titlStmt><biblCit>Ankit., Tiwari, N., Rajput, M., Chien, N. A., &amp; Mathews, N. (2018). Highly transparent and integrable surface texture change device for localized tactile feedback. Small, 14(1), 1702312.</biblCit></citation><ExtLink URI="https://onlinelibrary.wiley.com/doi/abs/10.1002/smll.201702312"/></relPubl><relPubl><citation><titlStmt><titl>Ankit., Tiwari, N., Rajput, M., Chien, N. A., &amp; Mathews, N. (2018). Highly transparent and integrable surface texture change device for localized tactile feedback. Small, 14(1), 1702312.</titl><IDNo agency="handle">10356/138837</IDNo></titlStmt><biblCit>Ankit., Tiwari, N., Rajput, M., Chien, N. A., &amp; Mathews, N. (2018). Highly transparent and integrable surface texture change device for localized tactile feedback. Small, 14(1), 1702312.</biblCit></citation><ExtLink URI="https://hdl.handle.net/10356/138837"/></relPubl></othrStdyMat></stdyDscr><otherMat ID="f26765" URI="https://researchdata.ntu.edu.sg/api/access/datafile/26765" level="datafile"><labl>Figure 3 Sheet resistance versus Concentration of AgNWs.opj</labl><notes level="file" type="DATAVERSE:CONTENTTYPE" subject="Content/MIME Type">application/octet-stream</notes></otherMat><otherMat ID="f26770" URI="https://researchdata.ntu.edu.sg/api/access/datafile/26770" level="datafile"><labl>Figure 3 Sheet resistance versus Strain.opj</labl><notes level="file" type="DATAVERSE:CONTENTTYPE" subject="Content/MIME Type">application/octet-stream</notes></otherMat><otherMat ID="f26763" URI="https://researchdata.ntu.edu.sg/api/access/datafile/26763" level="datafile"><labl>Figure 3 Transparency versus Concentration of AgNWs and Final device transparency.opj</labl><notes level="file" type="DATAVERSE:CONTENTTYPE" subject="Content/MIME Type">application/octet-stream</notes></otherMat><otherMat ID="f26769" URI="https://researchdata.ntu.edu.sg/api/access/datafile/26769" level="datafile"><labl>Figure 4 Blocked force.opj</labl><notes level="file" type="DATAVERSE:CONTENTTYPE" subject="Content/MIME Type">application/octet-stream</notes></otherMat><otherMat ID="f26768" URI="https://researchdata.ntu.edu.sg/api/access/datafile/26768" level="datafile"><labl>Figure 4 Cyclability.opj</labl><notes level="file" type="DATAVERSE:CONTENTTYPE" subject="Content/MIME Type">application/octet-stream</notes></otherMat><otherMat ID="f26766" URI="https://researchdata.ntu.edu.sg/api/access/datafile/26766" level="datafile"><labl>Figure 4 Frequency bandwidth and Device performance at 10 Hz.opj</labl><notes level="file" type="DATAVERSE:CONTENTTYPE" subject="Content/MIME Type">application/octet-stream</notes></otherMat><otherMat ID="f26767" URI="https://researchdata.ntu.edu.sg/api/access/datafile/26767" level="datafile"><labl>Figure 4 Vertical deformation and Surface deformation profile.opj</labl><notes level="file" type="DATAVERSE:CONTENTTYPE" subject="Content/MIME Type">application/octet-stream</notes></otherMat><otherMat ID="f26764" URI="https://researchdata.ntu.edu.sg/api/access/datafile/26764" level="datafile"><labl>Figure 5 Comparison with carbon electrodes.opj</labl><notes level="file" type="DATAVERSE:CONTENTTYPE" subject="Content/MIME Type">application/octet-stream</notes></otherMat></codeBook>