<?xml version="1.0" encoding="utf-8" standalone="no"?>
<dublin_core schema="dc">
<dcvalue element="contributor" qualifier="author">Kim,&#x20;Minki</dcvalue>
<dcvalue element="contributor" qualifier="author">Kim,&#x20;Yesol</dcvalue>
<dcvalue element="contributor" qualifier="author">Kim,&#x20;Gukbo</dcvalue>
<dcvalue element="contributor" qualifier="author">Jamal,&#x20;Aqil</dcvalue>
<dcvalue element="contributor" qualifier="author">Gereige,&#x20;Issam</dcvalue>
<dcvalue element="contributor" qualifier="author">Jung,&#x20;Hee-Tae</dcvalue>
<dcvalue element="date" qualifier="accessioned">2025-09-17T01:32:36Z</dcvalue>
<dcvalue element="date" qualifier="available">2025-09-17T01:32:36Z</dcvalue>
<dcvalue element="date" qualifier="created">2025-09-16</dcvalue>
<dcvalue element="date" qualifier="issued">2025-11</dcvalue>
<dcvalue element="identifier" qualifier="issn">2366-9608</dcvalue>
<dcvalue element="identifier" qualifier="uri">https:&#x2F;&#x2F;pubs.kist.re.kr&#x2F;handle&#x2F;201004&#x2F;153158</dcvalue>
<dcvalue element="description" qualifier="abstract">Green&#x20;hydrogen&#x20;production&#x20;via&#x20;electrocatalytic&#x20;water&#x20;splitting&#x20;is&#x20;a&#x20;promising&#x20;strategy&#x20;for&#x20;enabling&#x20;renewable&#x20;energy&#x20;technologies.&#x20;To&#x20;improve&#x20;hydrogen&#x20;generation&#x20;efficiency,&#x20;extensive&#x20;efforts&#x20;have&#x20;been&#x20;devoted&#x20;to&#x20;developing&#x20;electrocatalysts&#x20;with&#x20;lower&#x20;energy&#x20;requirements&#x20;and&#x20;higher&#x20;stability.&#x20;Among&#x20;these,&#x20;randomly&#x20;mixed&#x20;alloy&#x20;catalysts&#x20;have&#x20;attracted&#x20;significant&#x20;attention&#x20;due&#x20;to&#x20;their&#x20;ability&#x20;to&#x20;exhibit&#x20;synergistic&#x20;effects&#x20;surpassing&#x20;those&#x20;of&#x20;single-component&#x20;materials.&#x20;Here,&#x20;the&#x20;synthesis&#x20;of&#x20;a&#x20;sulfur-doped&#x20;PtRuNi&#x20;alloy&#x20;catalyst&#x20;for&#x20;efficient&#x20;hydrogen&#x20;evolution&#x20;reaction&#x20;(HER)&#x20;using&#x20;carbothermal&#x20;shock&#x20;(CTS)&#x20;method&#x20;is&#x20;reported.&#x20;This&#x20;rapid,&#x20;high&#x20;temperature&#x20;synthesis&#x20;technique&#x20;enabled&#x20;the&#x20;formation&#x20;of&#x20;PtRuNi&#x2F;S&#x20;alloy&#x20;nanoparticles&#x20;with&#x20;a&#x20;finely&#x20;tuned&#x20;local&#x20;electronic&#x20;structure,&#x20;driven&#x20;by&#x20;sulfur&#x20;incorporation.&#x20;The&#x20;resulting&#x20;catalyst&#x20;exhibited&#x20;outstanding&#x20;HER&#x20;activity&#x20;in&#x20;both&#x20;acidic&#x20;and&#x20;alkaline&#x20;solution,&#x20;with&#x20;overpotentials&#x20;of&#x20;23.3&#x20;and&#x20;23.9&#x20;mV,&#x20;respectively.&#x20;Compared&#x20;to&#x20;Pt&#x20;catalyst&#x20;synthesized&#x20;on&#x20;the&#x20;same&#x20;substrate,&#x20;the&#x20;sulfur-doped&#x20;alloy&#x20;demonstrated&#x20;positive&#x20;overpotential&#x20;shifts&#x20;of&#x20;≈50&#x20;mV&#x20;in&#x20;acidic&#x20;and&#x20;90&#x20;mV&#x20;in&#x20;alkaline&#x20;environment,&#x20;as&#x20;well&#x20;as&#x20;significantly&#x20;enhanced&#x20;kinetics&#x20;and&#x20;electrochemical&#x20;stability.&#x20;This&#x20;work&#x20;not&#x20;only&#x20;presents&#x20;an&#x20;efficient&#x20;and&#x20;scalable&#x20;synthesis&#x20;strategy&#x20;for&#x20;heteroatom-doped&#x20;alloy&#x20;catalysts&#x20;but&#x20;also&#x20;provides&#x20;a&#x20;promising&#x20;platform&#x20;for&#x20;broader&#x20;applications&#x20;in&#x20;other&#x20;fields&#x20;requiring&#x20;tunable&#x20;electronic&#x20;structures&#x20;and&#x20;long-term&#x20;durability.</dcvalue>
<dcvalue element="language" qualifier="none">English</dcvalue>
<dcvalue element="publisher" qualifier="none">WILEY-V&#x20;C&#x20;H&#x20;VERLAG&#x20;GMBH</dcvalue>
<dcvalue element="title" qualifier="none">Synthesis&#x20;of&#x20;Sulfur-Doped&#x20;PtRuNi&#x20;Alloy&#x20;Catalyst&#x20;for&#x20;Efficient&#x20;Hydrogen&#x20;Evolution&#x20;Reaction</dcvalue>
<dcvalue element="type" qualifier="none">Article</dcvalue>
<dcvalue element="identifier" qualifier="doi">10.1002&#x2F;smtd.202501316</dcvalue>
<dcvalue element="description" qualifier="journalClass">1</dcvalue>
<dcvalue element="identifier" qualifier="bibliographicCitation">Small&#x20;Methods,&#x20;v.9,&#x20;no.11</dcvalue>
<dcvalue element="citation" qualifier="title">Small&#x20;Methods</dcvalue>
<dcvalue element="citation" qualifier="volume">9</dcvalue>
<dcvalue element="citation" qualifier="number">11</dcvalue>
<dcvalue element="description" qualifier="isOpenAccess">N</dcvalue>
<dcvalue element="description" qualifier="journalRegisteredClass">scie</dcvalue>
<dcvalue element="description" qualifier="journalRegisteredClass">scopus</dcvalue>
<dcvalue element="identifier" qualifier="wosid">001563601300001</dcvalue>
<dcvalue element="identifier" qualifier="scopusid">2-s2.0-105014749250</dcvalue>
<dcvalue element="relation" qualifier="journalWebOfScienceCategory">Chemistry,&#x20;Physical</dcvalue>
<dcvalue element="relation" qualifier="journalWebOfScienceCategory">Nanoscience&#x20;&amp;&#x20;Nanotechnology</dcvalue>
<dcvalue element="relation" qualifier="journalWebOfScienceCategory">Materials&#x20;Science,&#x20;Multidisciplinary</dcvalue>
<dcvalue element="relation" qualifier="journalResearchArea">Chemistry</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="keywordAuthor">carbothermal&#x20;shock</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">electrocatalyst</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">hydrogen&#x20;evolution&#x20;reaction</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">optimization</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">sulfur-doped&#x20;alloy</dcvalue>
</dublin_core>
