Abstract

Magnetic polymer gels are a new promising class of nanocomposite gels. In this work, magnetic PEO/iron oxide nanocomposite hydrogels were synthesized using the one-step γ-irradiation method starting from poly(ethylene oxide) (PEO) and iron(III) precursor alkaline aqueous suspensions followed by simultaneous crosslinking of PEO chains and reduction of Fe(III) precursor. γ-irradiation dose and concentrations of Fe3+, 2-propanol and PEO in the initial suspensions were varied and optimized. With 2-propanol and at high doses magnetic gels with embedded magnetite nanoparticles were obtained, as confirmed by XRD, SEM and Mössbauer spectrometry. The quantitative determination of γ-irradiation generated Fe2+ was performed using the 1,10-phenanthroline method. The maximal Fe2+ molar fraction of 0.55 was achieved at 300 kGy, pH = 12 and initial 5% of Fe3+. The DSC and rheological measurements confirmed the formation of a well-structured network. The thermal and rheological properties of gels depended on the dose, PEO concentration and initial Fe3+ content (amount of nanoparticles synthesized inside gels). More amorphous and stronger gels were formed at higher dose and higher nanoparticle content. The properties of synthesized gels were determined by the presence of magnetic iron oxide nanoparticles, which acted as reinforcing agents and additional crosslinkers of PEO chains thus facilitating the one-step gel formation.

Highlights

  • Magnetic polymer gels are a new and promising class of nanocomposite hydrogels that have the potential to be used as effective absorbents of toxic ions in water, protein immobilization, separation, in soft actuators such as artificial muscles, in tissue engineering, drug delivery and hyperthermia applications [1,2,3,4,5,6,7]

  • Magnetic PEO/iron oxide nanocomposite hydrogels were synthesized using the one-step γ-irradiation method starting from poly(ethylene oxide) (PEO) and iron(III) precursor alkaline aqueous suspensions followed by simultaneous crosslinking of PEO chains and reduction of Fe(III) precursor. γ-irradiation dose and concentrations of Fe3+, 2-propanol and PEO in the initial suspensions were varied and optimized

  • The thermal and rheological properties of gels depended on the dose, PEO concentration and initial Fe3+ content

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Summary

Introduction

Magnetic polymer gels (ferrogels) are a new and promising class of nanocomposite hydrogels that have the potential to be used as effective absorbents of toxic ions in water, protein immobilization, separation, in soft actuators such as artificial muscles, in tissue engineering, drug delivery and hyperthermia applications [1,2,3,4,5,6,7]. Ferrogels combine the elastic properties and the defined structure of gels with the magnetic properties of magnetic nanoparticles (usually magnetite or maghemite) and Nreansopmoatnerdialqs 2u0i1c9,k9l,yx FtOoRtPhEeERexRtEeVrInEWal magnetic field. Apart from their unique magnetic p2roof p29erties, nsuapneodorcireoofmmrinmaepgdeohcssehtimrtaueintceigtc)ueaarllen,sdrochfraeegffosepollosoldgnwisdcitawqhluatiihtnchekdlmeyemlateogcbnttehredietcidceaxelptpdreorromnppaealretgmriteniaseegostnifcteoemti/mcmagfpianeagelrdthei.cdeAmntpoaiantsreoctapfnffraoaromtnlidcoltpeghseaei(lrrustuiswcunliaeitqlhsluyoheumamtvanageagnnneeeoxtitphtiecaibrtiitcelde reinfoprrcoepmeretinets,, bneatnteorcobmiopcoosmitepagteilbislciatyff,ololdws wcyitthoteomxibceitdyd, aedndmdaegmneotintest/mraategdheamnittiebancatneoripaalrptircolepsehrtaivees [1,2,3,4]. Tinypsioclaulltyi,onnainnocthome pporseisteengceelsoaf rperesy-pntrheepsaizreedd bnyantowpoa-srtteipclems e(tNhoPdss): [(1i)2,γ13-i]rroardi(aitii)onin situ γ-irrainddiautcieodncsryonsstlhineksiinsgofofntahneoppoalrytmicelersinwsiotlhuitniotnheinatlhreeapdryespenrecpe aorfepdrep-porlyepmaererdgenlan[1o4p–a1r7ti]c.leOs f(NpaPrst)icular intere[1s2t,1is3]thoer (oiin)ein-sstietpu γγ--iirrrraaddiaiatitoionnsysnytnhtehseissiosfonfannoapnaorctoicmleps owsiittheingethlse.aHlreoawdeyvperre,pthareedonpeo-lsytmepersgyenlthesis has t[h1e4–a1d7v].aOnftapgaertiocfuslaimr inutletarensetoisutshecroonses-lsitnekpiγn-girorafdpiaotliyomn seyrncthaesinissowf niathnothcoemfopromsitaetigoenls.oHf nowetewveorr,k and redutchteioonnoe-fstmepetsaylnstahletssisanhadstthhee faodrvmanattaiogenooffsNimPusl.taTnheeouosncer-osstselpinksyinngthoef spiosliysmfaerstcehraainnsdwsiitmh pthler and resulftosrminaatiosnmoafllnNetwPsorskizaenadnrdednuacrtiroonwofsimzeetdalisstarlitbs uantidonthaesfowrmelaltaiosnhoofmNoPgs.eTnheeouonsed-sistetpribsyuntitohensiosf NPs throuisghfaosutetrthaendposliymmpelerrmanadtrirxe.sOulntsthine aothsmeralhlaNndPs, tshiezeonane-dstneparrsoywnthsiezseisdoisftnriabnuoticoonmapsowsietlel gaesls has beenhpoomoorglyensetouudsieddis,tarisbuittiiosndoiffif NcuPslttthorofiungdhofuavt othreabploelycmonerdmitiaotnrisx.foOrnbtohtehonthaenrohpaanrdt,ictlheesoynnet-hsteespis and polymsfoyrenrbthocetrhsoissnsoalfninnokpanianorgtcio.clme psyonsittheegsieslsahnadspboeleynmpeorocrrloyssstluindkiiendg,.as it is difficult to find favorable conditions

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