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Electrode Materials for Sodium-Ion Batteries

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Electrode Materials for Sodium-Ion Batteries ( electrode-materials-sodium-ion-batteries )

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Materials 2020, 13, 3453 52 of 58 255. Li,H.;Fei,H.;Liu,X.;Yang,J.;Wei,M.InsitusynthesisofNa2Ti7O15nanotubesonaTinetsubstrateasa high performance anode for Na-ion batteries. Chem. Commun. 2015, 51, 9298–9300. [CrossRef] [PubMed] 256. Jiang,Y.;Hu,M.;Zhang,D.;Yuan,T.;Sun,W.;Xu,B.;Yan,M.Transitionmetaloxidesforhighperformance sodium ion battery anodes. Nano Energy 2014, 5, 60–66. [CrossRef] 257. Ni,J.;Zhu,X.;Yuan,Y.;Wang,Z.;Li,Y.;Ma,L.;Dai,A.;Li,M.;Wu,T.;Shahbazian-Yassar,R.;etal.Rooting binder-free tin nanoarrays into copper substrate via tin-copper alloying for robust energy storage. Nat. Commun. 2020, 11, 1212. [CrossRef] [PubMed] 258. Zhang, H.; Hasa, I.; Passerini, S. Beyond insertion for Na-ion batteries: Nanostructured alloying and conversion anode materials. Adv. Energy Mater. 2018, 8, 1702582. [CrossRef] 259. Liu, S.; Wang, Y.; Dong, Y.; Zhao, Z.; Wang, Z.; Qiu, J. Ultrafine Fe3O4 quantum dots on hybrid carbon nanosheets for long-life, high-rate alkali-metal storage. ChemElectroChem 2016, 3, 38–44. [CrossRef] 260. Zhao,Y.;Wang,F.;Wang,C.;Wang,S.;Wang,C.;Zhao,Z.;Duan,L.;Liu,Y.;Wu,Y.;Li,W.;etal.Encapsulating highly crystallized mesoporous Fe3O4 in hollow N-doped carbon nanospheres for high-capacity long-life sodium-ion batteries. Nano Energy 2019, 56, 426–433. [CrossRef] 261. Liu,X.;Chen,T.;Chu,H.;Niu,L.;Sun,Z.;Pan,L.;Sun,C.Q.Fe2O3-reducedgrapheneoxidecomposites synthesized via microwave-assisted method for sodium ion batteries. Electrochim. Acta 2015, 166, 12–16. [CrossRef] 262. Zhang, N.; Han, X.; Liu, Y.; Hu, X.; Zhao, Q.; Chen, J. 3D porous γ-Fe2O3@C nanocomposite as high-performance anode material of Na-ion batteries. Adv. Energy Mater. 2015, 5, 1401123. [CrossRef] 263. Guo,T.;Liao,H.;Ge,P.;Zhang,Y.;Tian,Y.;Hong,W.;Shi,Z.;Shao,C.;Hou,H.;Ji,X.Fe2O3embeddedin the nitrogen-doped carbon matrix with strong C-O-Fe oxygen-bridge bonds for enhanced sodium storages. Mater. Chem. Phys. 2018, 216, 58–63. [CrossRef] 264. Qi,S.;Wu,D.;Dong,Y.;Liao,J.;Foster,C.W.;O’Dwyer,C.;Feng,Y.;Liu,C.;Ma,J.Cobalt-basedelectrode materials for sodium-ion batteries. Chem. Eng. J. 2019, 370, 185–207. [CrossRef] 265. Wen, J.W.; Zhang, D.W.; Zang, Y.; Sun, X.; Cheng, B.; Ding, C.X.; Yu, Y.; Chen, C.H. Li and Na storage behavior of bowl-like hollow Co3O4 microspheres as an anode material for lithium-ion and sodium-ion batteries. Electrochim. Acta 2014, 132, 193–199. [CrossRef] 266. Deng,Q.;Wang,L.;Li,J.ElectrochemicalcharacterizationofCo3O4/MCNTscompositeanodematerialsfor sodium-ion batteries. J. Mater. Sci. 2015, 50, 4142–4148. [CrossRef] 267. Klavetter,K.C.;Garcia,S.;Dahal,N.;Snider,J.L.;PedrodeSouza,J.;Cell,T.H.;Cassara,M.A.;Heller,A.; Humphrey, S.M.; Mullins, C.B. Li- and Na-reduction products of meso-Co3O4 form high-rate, stably cycling battery anode materials. J. Mater. Chem. A 2014, 2, 14209–14221. [CrossRef] 268. Yang,J.;Zhou,T.;Zhu,R.;Chen,X.;Guo,Z.;Fan,J.;Liu,H.K.;Zhang,W.X.Highlyordereddualporosity mesoporous cobalt oxide for sodium-ion batteries. Adv. Mater. Interfaces 2015, 3, 1500464. [CrossRef] 269. Li,Q.;Wu,J.;Xu,J.;Dravid,V.P.Synergisticsodiationofcobaltoxidenanoparticlesandconductivecarbon nanotubes (CNTs) for sodium-ion batteries. J. Mater. Chem. A 2016, 4, 8669–8675. [CrossRef] 270. Rahman, M.M.; Sultana, I.; Chen, Z.; Srikanth, M.; Li, L.H.; Dai, X.J.; Chen, Y. Ex situ electrochemical sodiation/desodiation observation of Co3O4 anchored carbon nanotubes: A high performance sodium-ion battery anode produced by pulsed plasma in a liquid. Nanoscale 2015, 7, 13088–13095. [CrossRef] 271. Liu, Y.; Cheng, Z.; Sun, H.; Arandiyan, H.; Li, J.; Ahmad, M. Mesoporous Co3O4 sheets/3D graphene networks nanohybrids for high-performance sodium-ion battery anode. J. Power Sources 2015, 273, 878–884. [CrossRef] 272. Xu, H.; Zhu, G.; Hao, B. Metal-organic frameworks derived flower-like Co3O4/nitrogen doped graphite carbon hybrid for high-performance sodium-ion batteries. J. Mater. Sci. Technol. 2019, 35, 100–108. [CrossRef] 273. Kang,W.;Zhang,Y.;Fan,L.;Zhang,L.;Dai,F.;Wang,R.;Sun,D.Metal-organicframeworkderivedporous hollow Co3O4/N-C polyhedron composite with excellent energy storage capability. ACS Appl. Mater. Interfaces 2017, 9, 10602–10609. [CrossRef] 274. Chen,D.;Peng,L.;Yuan,Y.;Zhu,Y.;Fang,Z.;Yan,C.;Chen,G.;Shahbazian-Yassar,R.;Lu,J.;Amine,K.; et al. Two-dimensional holey Co3O4 nanosheets for high-rate alkali-ion batteries: From rational synthesis to in situ probing. Nano Lett. 2017, 17, 3907–3913. [CrossRef] [PubMed] 275. Xin, D.; Dai, J.; Liu, J.; Wang, Q.; Li, W. Mesocrystal hexagonal Co3O4 nanosheets for high performance lithium and sodium-ion batteries. Mater. Lett. 2017, 209, 388–391. [CrossRef]

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