Electro-assisted assembly of conductive polymer and soft hydrogel into core-shell hybrids

Aruã Clayton Da Silva , Thomas Edward Paterson , Ivan Rusev Minev

Soft Science ›› 2023, Vol. 3 ›› Issue (1) : 3

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Soft Science ›› 2023, Vol. 3 ›› Issue (1) :3 DOI: 10.20517/ss.2022.25
Research Article

Electro-assisted assembly of conductive polymer and soft hydrogel into core-shell hybrids

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Abstract

Soft hydrogels have become an important class of materials for mimicking and interfacing biological soft tissues with potential applications in drug delivery, tissue engineering and bioelectronics. Creative methods for integrating hydrogels with other materials such as organic conductors are highly desired. Here, we describe the single-step electrosynthesis of PEDOT/alginate into core-shell hybrid structures via an electrochemical-chemical-chemical mechanism. Using a pulsed electropolymerisation protocol, we generated PEDOT in either oxidized or reduced form. By-products of this electrochemical step trigger the chemical reactions for the concomitant assembly of alginate hydrogels. Characterization evidences that PEDOT (core) and alginate (shell) compartments form an electrochemically integrated interface. During growth, both can be loaded with useful cargo. We loaded a negatively charged small molecule and investigated passive and electroactive release mechanisms from the two compartments. Our electro-assisted assembly/crosslinking of integrated PEDOT/alginate hybrids contributes a promising approach to the design of functional interfaces for applications in controlled release and soft electronics.

Keywords

Conducting polymer / soft hydrogel / bioelectronics / hybrid materials

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Aruã Clayton Da Silva, Thomas Edward Paterson, Ivan Rusev Minev. Electro-assisted assembly of conductive polymer and soft hydrogel into core-shell hybrids. Soft Science, 2023, 3(1): 3 DOI:10.20517/ss.2022.25

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References

[1]

Tringides CM,Khalil A,Jaenisch R.Tunable conductive hydrogel scaffolds for neural cell differentiation.Adv Healthc Mater2022;e2202221

[2]

Freudenberg U,Limasale YDP.Charge-tuning of glycosaminoglycan-based hydrogels to program cytokine sequestration.Faraday Discuss2019;219:244-51

[3]

Simpliciano C,Asi B.Cross-linked alginate film pore size determination using atomic force microscopy and validation using diffusivity determinations.J Surf Eng Mater Adv Technol2013;03:1-12

[4]

Rastogi P.Review of alginate-based hydrogel bioprinting for application in tissue engineering.Biofabrication2019;11:042001

[5]

Correa S,Lopez Hernandez H.Translational applications of hydrogels.Chem Rev2021;121:11385-457

[6]

Paulsen BD,Rivnay J.Mixed ionic-electronic transport in polymers.Annu Rev Mater Res2021;51:73-99

[7]

Rong Q,Liu M.Conductive hydrogels as smart materials for flexible electronic devices.Chemistry2018;24:16930-43

[8]

Distler T.3D printing of electrically conductive hydrogels for tissue engineering and biosensors - A review.Acta Biomater2020;101:1-13

[9]

Shur M,Pirondini E.Soft printable electrode coating for neural interfaces.ACS Appl Bio Mater2020;3:4388-97

[10]

Tondera C,Thomas AK.Highly conductive, stretchable, and cell-adhesive hydrogel by nanoclay doping.Small2019;15:e1901406

[11]

Bhat MA,Shalla AH.PEDOT and PEDOT:PSS conducting polymeric hydrogels: a report on their emerging applications.Synth Met2021;273:116709

[12]

Boehler C,Asplund M.Applications of PEDOT in bioelectronic medicine.Bioelectron Med2019;2:89-99

[13]

Heo DN,Timsina R,Castro NJ.Development of 3D printable conductive hydrogel with crystallized PEDOT:PSS for neural tissue engineering.Mater Sci Eng C2019;99:582-90

[14]

Fu F,Yu J.Interpenetrating PAA-PEDOT conductive hydrogels for flexible skin sensors.J Mater Chem C2021;9:11794-800

[15]

Lacour SP,Guck J.Materials and technologies for soft implantable neuroprostheses.Nat Rev Mater2016;1:16063

[16]

Ferlauto L,Vagni P.Development and characterization of PEDOT:PSS/alginate soft microelectrodes for application in neuroprosthetics.Front Neurosci2018;12:648 PMCID:PMC6156361

[17]

Shi H,Jiang Q.Effective approaches to improve the electrical conductivity of PEDOT:PSS: a review.Adv Electron Mater2015;1:1500017

[18]

Liu Y,Chen S.Soft and elastic hydrogel-based microelectronics for localized low-voltage neuromodulation.Nat Biomed Eng2019;3:58-68

[19]

Lu B,Lin S.Pure PEDOT:PSS hydrogels.Nat Commun2019;10:1043 PMCID:PMC6401010

[20]

Li G,Deng J.Highly conducting and stretchable double-network hydrogel for soft bioelectronics.Adv Mater2022;34:e2200261

[21]

Li G.PEDOT:PSS-based intrinsically soft and stretchable bioelectronics.Soft Sci2022;2:7

[22]

Cheng T,Wang S.Conductive hydrogel-based electrodes and electrolytes for stretchable and self-healable supercapacitors.Adv Funct Mater2021;31:2101303

[23]

Wang K,Wang T.Electrodeposition of alginate with PEDOT/PSS coated MWCNTs to make an interpenetrating conducting hydrogel for neural interface.Compos Interfaces2019;26:27-40

[24]

Chikar JA,Richardson-Burns SM,Pfingst BE.The use of a dual PEDOT and RGD-functionalized alginate hydrogel coating to provide sustained drug delivery and improved cochlear implant function.Biomaterials2012;33:1982-90 PMCID:PMC3261353

[25]

Yang B,Ye L.A conductive PEDOT/alginate porous scaffold as a platform to modulate the biological behaviors of brown adipose-derived stem cells.Biomater Sci2020;8:3173-85

[26]

Paradee N.Electrically controlled release of benzoic acid from poly(3,4-ethylenedioxythiophene)/alginate matrix: effect of conductive poly(3,4-ethylenedioxythiophene) morphology.J Phys Chem B2014;118:9263-71

[27]

Babeli I,Puiggalí-jou A,Alemán C.Self-healable and eco-friendly hydrogels for flexible supercapacitors.Adv Sustain Syst2021;5:2000273

[28]

Guo J,Wang H,Zhang X.Conductive polymer hydrogel microfibers from multiflow microfluidics.Small2019;15:e1805162

[29]

Madduma-bandarage USK.Synthetic hydrogels: synthesis, novel trends, and applications.J Appl Polym Sci2021;138:50376

[30]

Ji D,Oh MS.Superstrong, superstiff, and conductive alginate hydrogels.Nat Commun2022;13:3019 PMCID:PMC9156673

[31]

Yuk H,Lin S,Zhao X.Tough bonding of hydrogels to diverse non-porous surfaces.Nat Mater2016;15:190-6 PMCID:PMC4762474

[32]

Feig VR,Lee M.An Electrochemical gelation method for patterning conductive PEDOT:PSS hydrogels.Adv Mater2019;31:e1902869

[33]

Inoue A,Lu B.Strong adhesion of wet conducting polymers on diverse substrates.Sci Adv2020;6:eaay5394 PMCID:PMC7083609

[34]

Yang J,Chen B.Hydrogel adhesion: a supramolecular synergy of chemistry, topology, and mechanics.Adv Funct Mater2020;30:1901693

[35]

Azmi S.Redox activity from the electrolyte and electrode in electrochemical capacitors.Electrochem Commun2022;138:107289

[36]

Silva AC, Wang J, Minev IR. Electro-assisted printing of soft hydrogels via controlled electrochemical reactions.Nat Commun2022;13:1353 PMCID:PMC8924165

[37]

Silva AC, Akbar TF, Paterson TE, Werner C, Tondera C, Minev IR. Electrically controlled click-chemistry for assembly of bioactive hydrogels on diverse micro- and flexible electrodes.Macromol Rapid Commun2022;43:e2200557

[38]

Fernandes R,Chen T.Electrochemically induced deposition of a polysaccharide hydrogel onto a patterned surface.Langmuir2003;19:4058-62

[39]

Cheng Y,Betz J.In situ quantitative visualization and characterization of chitosan electrodeposition with paired sidewall electrodes.Soft Matter2010;6:3177

[40]

Gray KM,Wang Y.Electrodeposition of a biopolymeric hydrogel: potential for one-step protein electroaddressing.Biomacromolecules2012;13:1181-9

[41]

Cheng Y,Betz J,Bentley WE.Mechanism of anodic electrodeposition of calcium alginate.Soft Matter2011;7:5677

[42]

Kim E,Cheng Y.Chitosan to connect biology to electronics: fabricating the bio-device interface and communicating across this interface.Polymers2015;7:1-46

[43]

Liu Y,Gray KM.Electrodeposition of a weak polyelectrolyte hydrogel: remarkable effects of salt on kinetics, structure and properties.Soft Matter2013;9:2703

[44]

Li J,Gray KM.Mediated electrochemistry to mimic biology’s oxidative assembly of functional matrices.Adv Funct Mater2020;30:2001776

[45]

Córdoba-torres P.Relationship between constant-phase element (CPE) parameters and physical properties of films with a distributed resistivity.Electrochim Acta2017;225:592-604

[46]

Hirschorn B,Tribollet B.Determination of effective capacitance and film thickness from constant-phase-element parameters.Electrochim Acta2010;55:6218-27

[47]

Sakmeche N,Fall M.Anionic micelles; a new aqueous medium for electropolymerization of poly(3,4-ethylenedioxythiophene) films on Pt electrodes.Chem Commun1996;2723

[48]

Anastas P.Green chemistry: principles and practice.Chem Soc Rev2010;39:301-12

[49]

Hutton LA,Patel AN,Unwin PR.Electrodeposition of nickel hydroxide nanoparticles on boron-doped diamond electrodes for oxidative electrocatalysis.J Phys Chem C2011;115:1649-58

[50]

Kleber C,Rühe J.Electrochemically Controlled drug release from a conducting polymer hydrogel (PDMAAp/PEDOT) for local therapy and bioelectronics.Adv Healthc Mater2019;8:e1801488

[51]

Bazylevich A,Gellerman G.Exploiting fluorescein based drug conjugates for fluorescent monitoring in drug delivery.Dye Pigment2017;139:460-72

[52]

Jamwal HS.Designing silica-based hybrid polymers and their application in the loading and release of fluorescein as a model drug and diagnostic agent.Adv Polym Technol2018;37:411-8

[53]

Bagheri B,Surwase SS.Self-gelling electroactive hydrogels based on chitosan-aniline oligomers/agarose for neural tissue engineering with on-demand drug release.Colloids Surf B Biointerfaces2019;184:110549

[54]

Liang Y,Hu T.Adhesive hemostatic conducting injectable composite hydrogels with sustained drug release and photothermal antibacterial activity to promote full-thickness skin regeneration during wound healing.Small2019;15:e1900046

[55]

Qu J,Shi M,Gao Y.Biocompatible conductive hydrogels based on dextran and aniline trimer as electro-responsive drug delivery system for localized drug release.Int J Biol Macromol2019;140:255-64

[56]

Qu J,Ma PX.Injectable antibacterial conductive hydrogels with dual response to an electric field and pH for localized “smart” drug release.Acta Biomater2018;72:55-69

[57]

Bansal M,Aqrawe Z,Wu Z.Conducting polymer hydrogels for electrically responsive drug delivery.J Control Release2020;328:192-209

[58]

Park Y,Chang M.Research progress on conducting polymer-based biomedical applications.Appl Sci2019;9:1070

[59]

Cao Y,Bernards DA.Recent advances in intraocular sustained-release drug delivery devices.Drug Discov Today2019;24:1694-700 PMCID:PMC6708500

[60]

Lowinger MB,Zhang F.Sustained release drug delivery applications of polyurethanes.Pharmaceutics2018;10:55 PMCID:PMC6027189

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