dc.contributor.author | Stamenov, Plamen | en |
dc.contributor.author | Coleman, Jonathan | en |
dc.contributor.author | Nicolosi, Valeria | en |
dc.contributor.author | Moebius, Matthias | en |
dc.date.accessioned | 2023-05-08T10:36:57Z | |
dc.date.available | 2023-05-08T10:36:57Z | |
dc.date.issued | 2021 | en |
dc.date.submitted | 2021 | en |
dc.identifier.citation | Liu J., Mckeon L., Garcia J., Pinilla S., Barwich S., Mobius M., Stamenov P., Coleman J.N., Nicolosi V., Additive Manufacturing of Ti3C2-MXene-Functionalized Conductive Polymer Hydrogels for Electromagnetic-Interference Shielding, Advanced Materials, 2021 | en |
dc.identifier.issn | 15214095 09359648 | en |
dc.identifier.other | Y | en |
dc.description | PUBLISHED | en |
dc.description.abstract | The ongoing miniaturization of devices and development of wireless and
implantable technologies demand electromagnetic interference
(EMI)shielding materials with customizability. Additive manufacturing of
conductive polymer hydrogels with favorable conductivity and
biocompatibility can offer new opportunities for EMI-shielding applications.
However, simultaneously achieving high conductivity, design freedom, and
shape fidelity in 3D printing of conductive polymer hydrogels is still very
challenging. Here, an aqueous Ti3C2-MXene-functionalized poly(3,4-
ethylenedioxythiophene):polystyrene sulfonate ink is developed for
extrusion printing to create 3D objects with arbitrary geometries, and a
freeze–thawing protocol is proposed to transform the printed objects
directly into highly conductive and robust hydrogels with high shape fidelity
on both the macro- and microscale. The as-obtained hydrogel exhibits a
high conductivity of 1525.8 S m–1 at water content up to 96.6 wt% and also
satisfactory mechanical properties with flexibility, stretchability, and
fatigue resistance. Furthermore, the use of the printed hydrogel for
customizable EMI-shielding applications is demonstrated. The proposed
easy-to-manufacture approach, along with the highlighted superior
properties, expands the potential of conductive polymer hydrogels in future
customizable applications and represents a real breakthrough from the
current state of the art | en |
dc.language.iso | en | en |
dc.relation.ispartofseries | Advanced Materials | en |
dc.rights | Y | en |
dc.subject | EMI-shielding applications | en |
dc.subject | electromagnetic interference (EMI) | en |
dc.subject | 3D printing | en |
dc.subject.lcsh | EMI-shielding applications | en |
dc.subject.lcsh | electromagnetic interference (EMI) | en |
dc.subject.lcsh | 3D printing | en |
dc.title | Additive Manufacturing of Ti3C2-MXene-Functionalized Conductive Polymer Hydrogels for Electromagnetic-Interference Shielding | en |
dc.type | Journal Article | en |
dc.type.supercollection | scholarly_publications | en |
dc.type.supercollection | refereed_publications | en |
dc.identifier.peoplefinderurl | http://people.tcd.ie/stamenp | en |
dc.identifier.peoplefinderurl | http://people.tcd.ie/mobiusm | en |
dc.identifier.peoplefinderurl | http://people.tcd.ie/nicolov | en |
dc.identifier.peoplefinderurl | http://people.tcd.ie/colemaj | en |
dc.identifier.rssinternalid | 237047 | en |
dc.identifier.doi | http://dx.doi.org/10.1002/adma.202106253 | en |
dc.rights.ecaccessrights | openAccess | |
dc.identifier.orcid_id | 0000-0002-8132-3033 | en |
dc.contributor.sponsor | Science Foundation Ireland (SFI) | en |
dc.contributor.sponsorGrantNumber | SFI 17/CDA/4704 | en |
dc.contributor.sponsor | Science Foundation Ireland (SFI) | en |
dc.contributor.sponsorGrantNumber | 12/RC/2278_P2 | en |
dc.identifier.uri | http://hdl.handle.net/2262/102594 | |