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Water-in-Salt Eutectic Solvent-Based Liquid Electrolytes

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Water-in-Salt Eutectic Solvent-Based Liquid Electrolytes ( water-in-salt-eutectic-solvent-based-liquid-electrolytes )

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Nanomaterials 2023, 13, 1257 20 of 20 106. Long,C.;Miao,L.;Zhu,D.;Duan,H.;Lv,Y.;Li,L.;Liu,M.;Gan,L.AdaptingaKinetics-EnhancedCarbonNanostructureto Li/Na Hybrid Water-in-Salt Electrolyte for High-Energy Aqueous Supercapacitors. ACS Appl. Energy Mater. 2021, 4, 5727–5737. [CrossRef] 107. Tsai,H.-Y.;Kumar,M.S.;Vedhanarayanan,B.;Shen,H.-H.;Lin,T.-W.Urea-BasedDeepEutecticSolventwithMagnesium/Lithium Dual Ions as an Aqueous Electrolyte for High-Performance Battery-Supercapacitor Hybrid Devices. Batteries 2023, 9, 69. [CrossRef] 108. Song,X.F.;Hu,J.Two-dimensionalsemiconductors:Recentprogressandfutureperspectives.J.Mater.Chem.C2013,1,2952–2969. [CrossRef] 109. Lai,L.;Chen,L.;Zhan,D.;Sun,L.;Liu,J.;Lim,S.H.;Poh,C.K.;Shen,Z.;Lin,J.One-stepsynthesisofNH2-graphenefrominsitu graphene-oxide reduction and its improved electrochemical properties. Carbon N. Y. 2011, 49, 3250–3257. [CrossRef] 110. Chen,Z.;Ren,W.;Gao,L.;Liu,B.;Pei,S.;Cheng,H.M.Three-dimensionalflexibleandconductiveinterconnectedgraphene networks grown by chemical vapour deposition. Nat. Mater. 2011, 10, 424–428. [CrossRef] 111. Ossonon,B.D.;Bélanger,D.Synthesisandcharacterizationofsulfophenyl-functionalizedreducedgrapheneoxidesheets.RSC Adv. 2017, 7, 27224–27234. [CrossRef] 112. Jayasena,B.;Subbiah,S.Anovelmechanicalcleavagemethodforsynthesizingfew-layergraphenes.NanoscaleRes.Lett.2011,6, 95. [CrossRef] [PubMed] 113. Štengl, V.; Henych, J.; Bludská, J.; Ecorchard, P.; Kormunda, M. A green method of graphene preparation in an alkaline environment. Ultrason. Sonochem. 2015, 24, 65–71. [CrossRef] [PubMed] 114. Konios,D.;Stylianakis,M.M.;Stratakis,E.;Kymakis,E.Dispersionbehaviourofgrapheneoxideandreducedgrapheneoxide.J. Colloid Interface Sci. 2014, 430, 108–112. [CrossRef] 115. Tkachev,S.V.;Buslaeva,E.Y.;Naumkin,A.V.;Kotova,S.L.;Laure,I.V.;Gubin,S.P.ReducedGrapheneOxide.Inorg.Mater.2012, 48, 796–802. [CrossRef] 116. Sun,Z.;Yan,Z.;Yao,J.;Beitler,E.;Zhu,Y.;Tour,J.M.Growthofgraphenefromsolidcarbonsources.Nature2010,468,549–552. [CrossRef] 117. Narula,U.;Tan,C.M.Determiningtheparametersofimportanceofagraphenesynthesisprocessusingdesign-of-experiments method. Appl. Sci. 2016, 6, 204. [CrossRef] 118. Tan,Y.B.;Lee,J.M.Grapheneforsupercapacitorapplications.J.Mater.Chem.A2013,1,14814–14843.[CrossRef] 119. Chhowalla, M.; Shin, H.S.; Eda, G.; Li, L.J.; Loh, K.P.; Zhang, H. The chemistry of two-dimensional layered transition metal dichalcogenide nanosheets. Nat. Chem. 2013, 5, 263–275. [CrossRef] 120. Tanwar,S.;Arya,A.;Gaur,A.;Sharma,A.L.Transitionmetaldichalcogenide(TMDs)electrodesforsupercapacitors:Acompre- hensive review. J. Phys. Condens. Matter 2021, 33, 303002. [CrossRef] 121. Hu,M.;Zhang,H.;Hu,T.;Fan,B.;Wang,X.;Li,Z.Emerging2DMXenesforsupercapacitors:Status,challengesandprospects. Chem. Soc. Rev. 2020, 49, 6666–6693. [CrossRef] [PubMed] 122. Panda,S.;Deshmukh,K.;KhadheerPasha,S.K.;Theerthagiri,J.;Manickam,S.;Choi,M.Y.MXenebasedemergingmaterials for supercapacitor applications: Recent advances, challenges, and future perspectives. Coord. Chem. Rev. 2022, 462, 214518. [CrossRef] Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content.

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