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  <title><![CDATA[Phd Defense by Su Liu]]></title>
  <body><![CDATA[<p><strong>Ph.D. Thesis Defense Announcement</strong></p>

<p>OSMOTICALLY&nbsp;DRIVEN&nbsp;MEMBRANE&nbsp;PROCESSES&nbsp;FOR&nbsp;WATER&nbsp;TREATMENT:&nbsp;MEMBRANE&nbsp;SYNTHESIS&nbsp;AND&nbsp;TRANSPORT&nbsp;MECHANISM&nbsp;EXPLORATION</p>

<p>&nbsp;</p>

<p><strong>by</strong></p>

<p>Su Liu</p>

<p>&nbsp;</p>

<p><strong>Advisor(s):</strong></p>

<p>Dr. John Crittenden</p>

<p>&nbsp;</p>

<p><strong>Committee Members:</strong></p>

<p>&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Dr.&nbsp;Yongsheng&nbsp;Chen&nbsp;(CEE);&nbsp;Dr.&nbsp;Xing&nbsp;Xie&nbsp;(CEE);&nbsp;Dr.&nbsp;Sotira&nbsp;Yiacoumi&nbsp;(CEE);&nbsp;Dr.&nbsp;Marta&nbsp;Hatzell&nbsp;(ME)</p>

<p>&nbsp;</p>

<p>Date &amp; Time: Dec. 15 9:00 AM</p>

<p>&nbsp;</p>

<p><strong>Location: </strong><a href="https://bluejeans.com/949477642">https://bluejeans.com/949477642</a></p>

<p>&nbsp;</p>

<p>&nbsp;Complete announcement, with abstract, is attached</p>

<p>Osmotically&nbsp;driven&nbsp;membrane&nbsp;processes&nbsp;are&nbsp;promising&nbsp;technologies&nbsp;for&nbsp;water&nbsp;treatment&nbsp;which&nbsp;use&nbsp;osmotic&nbsp;pressure&nbsp;difference&nbsp;as&nbsp;the&nbsp;driving&nbsp;force.&nbsp;Forward&nbsp;osmosis&nbsp;(FO)&nbsp;is&nbsp;a&nbsp;typical&nbsp;osmotic&nbsp;pressure-driven&nbsp;membrane&nbsp;process.&nbsp;The&nbsp;membrane&nbsp;is&nbsp;the&nbsp;key&nbsp;component&nbsp;of&nbsp;an&nbsp;FO&nbsp;membrane&nbsp;system;&nbsp;however,&nbsp;the&nbsp;lack&nbsp;of&nbsp;high-performance&nbsp;membranes&nbsp;hinders&nbsp;the&nbsp;large-scale&nbsp;applications&nbsp;of&nbsp;FO.&nbsp;The&nbsp;overall&nbsp;objective&nbsp;of&nbsp;this&nbsp;research&nbsp;is&nbsp;to&nbsp;design&nbsp;efficient&nbsp;membranes&nbsp;specifically&nbsp;for&nbsp;osmotically&nbsp;driven&nbsp;membrane&nbsp;processes&nbsp;for&nbsp;water&nbsp;treatment&nbsp;and&nbsp;to&nbsp;understanding&nbsp;the&nbsp;underlying&nbsp;transport&nbsp;mechanisms.&nbsp;<br />
&nbsp;<br />
Specifically,&nbsp;the&nbsp;FO&nbsp;membrane&nbsp;was&nbsp;modified&nbsp;with&nbsp;an&nbsp;innovative&nbsp;organic&nbsp;coating&nbsp;layer.&nbsp;The&nbsp;modified&nbsp;membrane&nbsp;has&nbsp;a&nbsp;more&nbsp;hydrophilic,&nbsp;less&nbsp;rough&nbsp;surface&nbsp;and&nbsp;reduced&nbsp;pore&nbsp;size.&nbsp;The&nbsp;membrane&nbsp;overall&nbsp;performances,&nbsp;including&nbsp;reverse&nbsp;salt&nbsp;selectivity,&nbsp;anti-fouling&nbsp;property,&nbsp;and&nbsp;rejection&nbsp;of&nbsp;the&nbsp;micropollutants,&nbsp;were&nbsp;enhanced&nbsp;with&nbsp;a&nbsp;mild&nbsp;water&nbsp;permeability&nbsp;loss.&nbsp;Graphene&nbsp;oxide&nbsp;membranes&nbsp;(GOMs)&nbsp;are&nbsp;promising&nbsp;separation&nbsp;technologies&nbsp;because&nbsp;of&nbsp;the&nbsp;high&nbsp;water&nbsp;permeability.&nbsp;In&nbsp;addition,&nbsp;the&nbsp;reverse&nbsp;salt&nbsp;flux&nbsp;(salt&nbsp;flux&nbsp;from&nbsp;the&nbsp;draw&nbsp;solution&nbsp;to&nbsp;the&nbsp;feed&nbsp;solution)&nbsp;is&nbsp;low&nbsp;in&nbsp;FO.&nbsp;However,&nbsp;the&nbsp;rejection&nbsp;is&nbsp;low&nbsp;(forward&nbsp;salt&nbsp;flux&nbsp;is&nbsp;high)&nbsp;in&nbsp;the&nbsp;hydraulic&nbsp;pressure&nbsp;driven&nbsp;mode.&nbsp;This&nbsp;counterintuitive&nbsp;phenomenon&nbsp;was&nbsp;studied&nbsp;to&nbsp;understand&nbsp;the&nbsp;transport&nbsp;mechanisms&nbsp;in&nbsp;GOMs.&nbsp;Based&nbsp;on&nbsp;the&nbsp;analysis&nbsp;in&nbsp;this&nbsp;study,&nbsp;the&nbsp;water&nbsp;flux&nbsp;from&nbsp;the&nbsp;feed&nbsp;solution&nbsp;to&nbsp;the&nbsp;draw&nbsp;solution&nbsp;can&nbsp;retard&nbsp;the&nbsp;ion&nbsp;transport&nbsp;from&nbsp;the&nbsp;draw&nbsp;solution&nbsp;to&nbsp;the&nbsp;feed&nbsp;solution.&nbsp;In&nbsp;addition,&nbsp;the&nbsp;extension&nbsp;of&nbsp;electrical&nbsp;double&nbsp;layer&nbsp;(EDL)&nbsp;thickness&nbsp;also&nbsp;has&nbsp;a&nbsp;screening&nbsp;effect&nbsp;on&nbsp;retarding&nbsp;the&nbsp;reverse&nbsp;ion&nbsp;transport.&nbsp;To&nbsp;further&nbsp;explore&nbsp;the&nbsp;potential&nbsp;applications&nbsp;for&nbsp;GOMs&nbsp;to&nbsp;be&nbsp;used&nbsp;in&nbsp;osmotically&nbsp;driven&nbsp;membrane&nbsp;processes&nbsp;for&nbsp;water&nbsp;treatment,&nbsp;the&nbsp;investigation&nbsp;of&nbsp;forward&nbsp;solute&nbsp;transport&nbsp;was&nbsp;initiated&nbsp;with&nbsp;the&nbsp;freestanding&nbsp;GOMs.&nbsp;The&nbsp;freestanding&nbsp;GOM&nbsp;has&nbsp;a&nbsp;better&nbsp;separation&nbsp;performance&nbsp;for&nbsp;multivalent&nbsp;ions&nbsp;than&nbsp;the&nbsp;monovalent&nbsp;ions.&nbsp;The&nbsp;analysis&nbsp;shows&nbsp;the&nbsp;forward&nbsp;solute&nbsp;transport&nbsp;of&nbsp;the&nbsp;charged&nbsp;solute&nbsp;is&nbsp;mainly&nbsp;governed&nbsp;by&nbsp;the&nbsp;steric&nbsp;exclusion,&nbsp;interfacial&nbsp;Donnan&nbsp;exclusion&nbsp;and&nbsp;EDL&nbsp;screening&nbsp;along&nbsp;the&nbsp;nanochannels&nbsp;in&nbsp;the&nbsp;GOMs.&nbsp;The&nbsp;findings&nbsp;in&nbsp;this&nbsp;study&nbsp;can&nbsp;provide&nbsp;a&nbsp;further&nbsp;guidance&nbsp;for&nbsp;the&nbsp;future&nbsp;membrane&nbsp;design&nbsp;and&nbsp;applications&nbsp;exploration&nbsp;for&nbsp;the&nbsp;osmotic&nbsp;pressure&nbsp;driven&nbsp;membrane&nbsp;processes.&nbsp;<br />
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&nbsp;</p>
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