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<dublin_core schema="dc">
<dcvalue element="contributor" qualifier="author">Jung,&#x20;Jae&#x20;Hee</dcvalue>
<dcvalue element="contributor" qualifier="author">Lee,&#x20;Jung&#x20;Eun</dcvalue>
<dcvalue element="contributor" qualifier="author">Bae,&#x20;Gwi-Nam</dcvalue>
<dcvalue element="date" qualifier="accessioned">2024-01-20T14:01:26Z</dcvalue>
<dcvalue element="date" qualifier="available">2024-01-20T14:01:26Z</dcvalue>
<dcvalue element="date" qualifier="created">2021-09-04</dcvalue>
<dcvalue element="date" qualifier="issued">2012-10</dcvalue>
<dcvalue element="identifier" qualifier="issn">1092-8758</dcvalue>
<dcvalue element="identifier" qualifier="uri">https:&#x2F;&#x2F;pubs.kist.re.kr&#x2F;handle&#x2F;201004&#x2F;128834</dcvalue>
<dcvalue element="description" qualifier="abstract">In&#x20;the&#x20;search&#x20;for&#x20;methods&#x20;by&#x20;which&#x20;an&#x20;ambient&#x20;environment&#x20;can&#x20;be&#x20;continuously&#x20;monitored&#x20;for&#x20;potentially&#x20;harmful&#x20;biological&#x20;aerosols,&#x20;particle&#x20;fluorescence&#x20;methods&#x20;have&#x20;received&#x20;considerable&#x20;attention&#x20;over&#x20;the&#x20;past&#x20;decade.&#x20;The&#x20;aerosol&#x20;fluorescence&#x20;sensor&#x20;(AFS)&#x20;is&#x20;a&#x20;monitoring&#x20;device&#x20;for&#x20;continuous,&#x20;real-time&#x20;detection&#x20;of&#x20;airborne&#x20;biological&#x20;particles.&#x20;The&#x20;AFS&#x20;method&#x20;is&#x20;based&#x20;on&#x20;the&#x20;principle&#x20;of&#x20;ultraviolet&#x20;(UV)&#x20;light-induced&#x20;fluorescence&#x20;targeting&#x20;the&#x20;intrinsic&#x20;fluorescence&#x20;of&#x20;common&#x20;amino&#x20;acids&#x20;found&#x20;in&#x20;living&#x20;matter.&#x20;The&#x20;sensor&#x20;uses&#x20;a&#x20;UV&#x20;optical&#x20;excitation&#x20;source&#x20;to&#x20;illuminate&#x20;an&#x20;airstream&#x20;flowing&#x20;continuously&#x20;through&#x20;the&#x20;sensor&#x20;detection&#x20;volume.&#x20;Fluorescence&#x20;from&#x20;all&#x20;particles&#x20;present&#x20;within&#x20;the&#x20;sensing&#x20;volume&#x20;is&#x20;measured&#x20;using&#x20;two&#x20;photomultiplier&#x20;detectors&#x20;optically&#x20;filtered&#x20;to&#x20;detect&#x20;radiation&#x20;in&#x20;the&#x20;UV&#x20;and&#x20;visible&#x20;(Vis)&#x20;bands,&#x20;enabling&#x20;generic&#x20;discrimination&#x20;between&#x20;different&#x20;aerosol&#x20;populations.&#x20;In&#x20;this&#x20;study,&#x20;we&#x20;investigated&#x20;the&#x20;real-time&#x20;fluorescence&#x20;characteristics&#x20;of&#x20;airborne&#x20;bacterial&#x20;particles&#x20;(Escherichia&#x20;coli&#x20;and&#x20;Bacillus&#x20;subtilis)&#x20;and&#x20;nonbacterial&#x20;particles&#x20;(polystyrene&#x20;latex&#x20;[PSL]&#x20;spheres)&#x20;using&#x20;an&#x20;AFS.&#x20;The&#x20;UV&#x20;fluorescence&#x20;intensity&#x20;of&#x20;both&#x20;bacterial&#x20;bioaerosols&#x20;was&#x20;higher&#x20;than&#x20;that&#x20;of&#x20;PSL&#x20;particles&#x20;at&#x20;the&#x20;same&#x20;total&#x20;particle&#x20;concentration.&#x20;In&#x20;particular,&#x20;the&#x20;ratio&#x20;of&#x20;UV-&#x20;to&#x20;Vis-fluorescence,&#x20;which&#x20;can&#x20;differentiate&#x20;between&#x20;bacterial&#x20;bioaerosols&#x20;and&#x20;PSL&#x20;particles,&#x20;was&#x20;significantly&#x20;higher&#x20;for&#x20;bacterial&#x20;bioaerosols&#x20;(E.&#x20;coli:&#x20;5.836;&#x20;B.&#x20;subtilis:&#x20;6.023;&#x20;PSL:&#x20;4.073).&#x20;To&#x20;optimize&#x20;the&#x20;AFS,&#x20;the&#x20;variation&#x20;in&#x20;the&#x20;fluorescence&#x20;intensity&#x20;characteristics&#x20;was&#x20;evaluated&#x20;under&#x20;various&#x20;sensor&#x20;gain&#x20;settings&#x20;for&#x20;the&#x20;two&#x20;fluorescence&#x20;channels&#x20;and&#x20;the&#x20;flash&#x20;frequency&#x20;of&#x20;the&#x20;excitation&#x20;light.&#x20;The&#x20;amplitude&#x20;of&#x20;the&#x20;measured&#x20;fluorescence&#x20;offset&#x20;and&#x20;the&#x20;dynamic&#x20;measurement&#x20;range&#x20;depended&#x20;on&#x20;the&#x20;gain&#x20;of&#x20;the&#x20;system.&#x20;The&#x20;coefficient&#x20;of&#x20;variance&#x20;increased&#x20;with&#x20;decreasing&#x20;flash&#x20;frequency.&#x20;These&#x20;experimental&#x20;results&#x20;provide&#x20;basic&#x20;information&#x20;about&#x20;the&#x20;feasibility&#x20;of&#x20;AFS&#x20;for&#x20;real-time&#x20;detection&#x20;of&#x20;bioaerosols&#x20;and&#x20;may&#x20;contribute&#x20;to&#x20;the&#x20;development&#x20;of&#x20;new&#x20;bioaerosol&#x20;detection&#x20;systems.</dcvalue>
<dcvalue element="language" qualifier="none">English</dcvalue>
<dcvalue element="publisher" qualifier="none">MARY&#x20;ANN&#x20;LIEBERT&#x20;INC</dcvalue>
<dcvalue element="subject" qualifier="none">BIOAEROSOL&#x20;MASS-SPECTROMETRY</dcvalue>
<dcvalue element="subject" qualifier="none">BIOLOGICAL&#x20;PARTICLES</dcvalue>
<dcvalue element="subject" qualifier="none">SPECTRUM&#x20;ANALYZER</dcvalue>
<dcvalue element="subject" qualifier="none">PERFORMANCE&#x20;EVALUATION</dcvalue>
<dcvalue element="subject" qualifier="none">LASER</dcvalue>
<dcvalue element="subject" qualifier="none">MICROORGANISMS</dcvalue>
<dcvalue element="subject" qualifier="none">IDENTIFICATION</dcvalue>
<dcvalue element="subject" qualifier="none">BIOSENSOR</dcvalue>
<dcvalue element="subject" qualifier="none">UVAPS</dcvalue>
<dcvalue element="subject" qualifier="none">SIZE</dcvalue>
<dcvalue element="title" qualifier="none">Real-Time&#x20;Fluorescence&#x20;Measurement&#x20;of&#x20;Airborne&#x20;Bacterial&#x20;Particles&#x20;Using&#x20;an&#x20;Aerosol&#x20;Fluorescence&#x20;Sensor&#x20;with&#x20;Dual&#x20;Ultraviolet-&#x20;and&#x20;Visible-Fluorescence&#x20;Channels</dcvalue>
<dcvalue element="type" qualifier="none">Article</dcvalue>
<dcvalue element="identifier" qualifier="doi">10.1089&#x2F;ees.2011.0449</dcvalue>
<dcvalue element="description" qualifier="journalClass">1</dcvalue>
<dcvalue element="identifier" qualifier="bibliographicCitation">ENVIRONMENTAL&#x20;ENGINEERING&#x20;SCIENCE,&#x20;v.29,&#x20;no.10,&#x20;pp.987&#x20;-&#x20;993</dcvalue>
<dcvalue element="citation" qualifier="title">ENVIRONMENTAL&#x20;ENGINEERING&#x20;SCIENCE</dcvalue>
<dcvalue element="citation" qualifier="volume">29</dcvalue>
<dcvalue element="citation" qualifier="number">10</dcvalue>
<dcvalue element="citation" qualifier="startPage">987</dcvalue>
<dcvalue element="citation" qualifier="endPage">993</dcvalue>
<dcvalue element="description" qualifier="journalRegisteredClass">scie</dcvalue>
<dcvalue element="description" qualifier="journalRegisteredClass">scopus</dcvalue>
<dcvalue element="identifier" qualifier="wosid">000309959100011</dcvalue>
<dcvalue element="identifier" qualifier="scopusid">2-s2.0-84869008247</dcvalue>
<dcvalue element="relation" qualifier="journalWebOfScienceCategory">Engineering,&#x20;Environmental</dcvalue>
<dcvalue element="relation" qualifier="journalWebOfScienceCategory">Environmental&#x20;Sciences</dcvalue>
<dcvalue element="relation" qualifier="journalResearchArea">Engineering</dcvalue>
<dcvalue element="relation" qualifier="journalResearchArea">Environmental&#x20;Sciences&#x20;&amp;&#x20;Ecology</dcvalue>
<dcvalue element="type" qualifier="docType">Article</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">BIOAEROSOL&#x20;MASS-SPECTROMETRY</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">BIOLOGICAL&#x20;PARTICLES</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">SPECTRUM&#x20;ANALYZER</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">PERFORMANCE&#x20;EVALUATION</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">LASER</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">MICROORGANISMS</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">IDENTIFICATION</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">BIOSENSOR</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">UVAPS</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">SIZE</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">aerosol&#x20;fluorescence&#x20;sensor</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">bioaerosol</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">fluorescence</dcvalue>
<dcvalue element="subject" qualifier="keywordAuthor">real-time&#x20;detection</dcvalue>
</dublin_core>
