报告题目:Electrochemical
Engineering of Graphene Oxide for Wearable Smart Devices
报告人:Yulin Zhong 高级讲师
邀请人:李 盛 副教授
报告时间:6月3日(星期一)9:30
报告地点:科技创新大楼5楼学术报告厅
Abstract
Although
graphene oxide (GO) has shown enduring popularity in the research community,
its synthesis remains cost prohibitive for many of its demonstrated
applications. While significant progress has been made on developing an
electrochemical route to GO, existing methods have key limitations regarding
their cost and scalability. To overcome these challenges, we employ a
combination of highly robust boron-doped diamond (BDD) with a wide
electrochemical potential window and commercially available fused deposition modelling (FDM) 3D printing to fabricate a
scalable packed-bed electrochemical reactor (PBER)
for GO production. The scalability of the reactor along the vertical and
lateral dimensions was systematically demonstrated to facilitate its eventual
industrial application. Our current reactor is cost-effective and capable of
producing electrochemically derived graphene oxide (EGO) on a multiple-gram
scale. The as-produced EGO is dispersible in water and other polar organic
solvents (e.g. ethanol and DMF) and can be exfoliated down to predominantly single-layer graphene oxide. The simplicity,
cost-effectiveness and unique EGO properties make our current method a viable
contender for large-scale synthesis of graphene oxide.Subsequently, wehave demonstrated a new efficient
technique for 3D printing ofconductive PDMS/graphene ink by using an emulsion method to form a uniform dispersion of PDMS nanobeads, EGOand
PDMS precursor binder. The formulated
nanocomposite ink exhibits high storage moduli and yield stress that can
be employed for Direct Ink Writing (DIW) 3D printing. Due to the unique hybrid
structure of PDMS and EGO sheet, the 3D printed EGO/PDMS nanocomposite possesseshigh, linear and reproducible
sensitivity that is suitable for
application as skin-attachable wearable health monitoring device.
Reference
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Lowe,
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Production of Graphene Oxide Using a 3D-Printed Packed-Bed Electrochemical
Reactor with a Boron-Doped Diamond Electrode. ACS Appl. Nano Mater. (2019) DOI:
10.1021/acsanm.8b02126
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Tian,
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Biography
Dr Yulin
Zhong completed his PhD in Chemistry at
the National University of Singapore (NUS) and did his post-doctoral training
at Princeton University (2009) and Massachusetts Institute of Technology
(2011). After spending three years in the USA,
he worked as a Research Scientist at the Institute of Bioengineering and
Nanotechnology, A*STAR Singapore, (2012) and thereafter, as an ARC DECRA Fellow
at Monash University (2013). He is currently a Senior Lecturer at the School of
Environment and Science, Griffith University (Gold Coast campus) and a full
research member of the Centre for Clean Environment
and Energy (CCEE).