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<dublin_core schema="dc">
<dcvalue element="contributor" qualifier="author">Kim,&#x20;Min&#x20;Jeong</dcvalue>
<dcvalue element="contributor" qualifier="author">Cho,&#x20;Sung&#x20;Ho</dcvalue>
<dcvalue element="contributor" qualifier="author">Oh,&#x20;Soong&#x20;Ju</dcvalue>
<dcvalue element="contributor" qualifier="author">Kim,&#x20;Sang&#x20;Woo</dcvalue>
<dcvalue element="date" qualifier="accessioned">2025-08-19T08:05:20Z</dcvalue>
<dcvalue element="date" qualifier="available">2025-08-19T08:05:20Z</dcvalue>
<dcvalue element="date" qualifier="created">2025-08-12</dcvalue>
<dcvalue element="date" qualifier="issued">2025-08</dcvalue>
<dcvalue element="identifier" qualifier="issn">2522-0128</dcvalue>
<dcvalue element="identifier" qualifier="uri">https:&#x2F;&#x2F;pubs.kist.re.kr&#x2F;handle&#x2F;201004&#x2F;152951</dcvalue>
<dcvalue element="description" qualifier="abstract">Wearable&#x20;healthcare&#x20;and&#x20;IoT&#x20;systems&#x20;require&#x20;conductors&#x20;that&#x20;are&#x20;highly&#x20;stretchable,&#x20;skin-conformal,&#x20;and&#x20;capable&#x20;of&#x20;stable&#x20;sensing&#x20;under&#x20;dynamic&#x20;mechanical&#x20;stress.&#x20;However,&#x20;conventional&#x20;ionic&#x20;conductors―such&#x20;as&#x20;hydrogels&#x20;and&#x20;eutectogels―often&#x20;suffer&#x20;from&#x20;low&#x20;ionic&#x20;conductivity,&#x20;poor&#x20;fatigue&#x20;resistance,&#x20;and&#x20;mechanical&#x20;fragility&#x20;due&#x20;to&#x20;inherent&#x20;trade-offs&#x20;between&#x20;electrical&#x20;and&#x20;mechanical&#x20;properties.&#x20;Here,&#x20;we&#x20;present&#x20;an&#x20;ultrastretchable,&#x20;fatigue-resistant&#x20;organic&#x20;mixed&#x20;ionic？electronic&#x20;conductor&#x20;(OMIEC)&#x20;eutectogel,&#x20;engineered&#x20;via&#x20;a&#x20;hierarchical&#x20;bonding&#x20;architecture.&#x20;This&#x20;design&#x20;integrates&#x20;dynamic&#x20;hydrogen&#x20;bonding&#x20;within&#x20;a&#x20;polymerizable&#x20;deep&#x20;eutectic&#x20;solvent&#x20;(PDES)&#x20;matrix&#x20;and&#x20;hydrophobic&#x20;interactions&#x20;from&#x20;embedded&#x20;PEDOT-based&#x20;conductive&#x20;domains.&#x20;The&#x20;synergistic&#x20;interplay&#x20;between&#x20;these&#x20;networks&#x20;significantly&#x20;enhances&#x20;mechanical&#x20;toughness,&#x20;fracture&#x20;resistance,&#x20;electrical&#x20;conductivity,&#x20;and&#x20;electromechanical&#x20;sensitivity.&#x20;The&#x20;eutectogel&#x20;demonstrates&#x20;a&#x20;66-fold&#x20;increase&#x20;in&#x20;conductivity,&#x20;a&#x20;6.2-fold&#x20;enhancement&#x20;in&#x20;fracture&#x20;energy,&#x20;and&#x20;a&#x20;4.5-fold&#x20;improvement&#x20;in&#x20;toughness&#x20;compared&#x20;to&#x20;conventional&#x20;ionic&#x20;conductors,&#x20;while&#x20;maintaining&#x20;ultralow&#x20;electromechanical&#x20;hysteresis&#x20;(≤？1%)&#x20;under&#x20;strains&#x20;of&#x20;up&#x20;to&#x20;1,500%.&#x20;Furthermore,&#x20;the&#x20;material&#x20;exhibits&#x20;autonomous&#x20;self-healing&#x20;and&#x20;retains&#x20;its&#x20;functionality&#x20;more&#x20;than&#x20;100,000&#x20;stretch？release&#x20;cycles.&#x20;These&#x20;multifunctional&#x20;properties&#x20;enable&#x20;precise&#x20;and&#x20;robust&#x20;monitoring&#x20;of&#x20;physiological&#x20;motion,&#x20;temperature&#x20;variation,&#x20;and&#x20;complex&#x20;human&#x20;gestures&#x20;under&#x20;diverse&#x20;mechanical&#x20;stimuli&#x20;and&#x20;dynamic&#x20;environmental&#x20;conditions.&#x20;The&#x20;proposed&#x20;OMIEC&#x20;eutectogel&#x20;thus&#x20;represents&#x20;a&#x20;promising&#x20;platform&#x20;for&#x20;next-generation&#x20;wearable&#x20;electronics&#x20;in&#x20;healthcare,&#x20;soft&#x20;robotics,&#x20;and&#x20;IoT&#x20;applications.</dcvalue>
<dcvalue element="language" qualifier="none">English</dcvalue>
<dcvalue element="publisher" qualifier="none">SPRINGER&#x20;NATURE</dcvalue>
<dcvalue element="title" qualifier="none">Ultrastretchable,&#x20;fatigue-resistant&#x20;eutectogel&#x20;with&#x20;hierarchical&#x20;bonding&#x20;for&#x20;advanced&#x20;wearable&#x20;monitoring</dcvalue>
<dcvalue element="type" qualifier="none">Article</dcvalue>
<dcvalue element="identifier" qualifier="doi">10.1007&#x2F;s42114-025-01395-x</dcvalue>
<dcvalue element="description" qualifier="journalClass">1</dcvalue>
<dcvalue element="identifier" qualifier="bibliographicCitation">Advanced&#x20;Composites&#x20;and&#x20;Hybrid&#x20;Materials,&#x20;v.8</dcvalue>
<dcvalue element="citation" qualifier="title">Advanced&#x20;Composites&#x20;and&#x20;Hybrid&#x20;Materials</dcvalue>
<dcvalue element="citation" qualifier="volume">8</dcvalue>
<dcvalue element="description" qualifier="isOpenAccess">Y</dcvalue>
<dcvalue element="description" qualifier="journalRegisteredClass">scie</dcvalue>
<dcvalue element="description" qualifier="journalRegisteredClass">scopus</dcvalue>
<dcvalue element="identifier" qualifier="wosid">001549206600001</dcvalue>
<dcvalue element="relation" qualifier="journalWebOfScienceCategory">Nanoscience&#x20;&amp;&#x20;Nanotechnology</dcvalue>
<dcvalue element="relation" qualifier="journalWebOfScienceCategory">Materials&#x20;Science,&#x20;Composites</dcvalue>
<dcvalue element="relation" qualifier="journalResearchArea">Science&#x20;&amp;&#x20;Technology&#x20;-&#x20;Other&#x20;Topics</dcvalue>
<dcvalue element="relation" qualifier="journalResearchArea">Materials&#x20;Science</dcvalue>
<dcvalue element="type" qualifier="docType">Article</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">DOUBLE-NETWORK&#x20;HYDROGEL</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">STRAIN&#x20;SENSOR</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">PEDOTPSS&#x20;FILMS</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">Wearable&#x20;sensor</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">Conductive&#x20;eutectogel</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">Organic&#x20;mixed&#x20;ionic-electronic&#x20;conductor</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">Fatigue&#x20;resistance</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">Physiological&#x20;motion&#x20;and&#x20;temperature&#x20;sensing</dcvalue>
</dublin_core>
