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Nanofibrous composites for sodium-ion batteries                   357

           [23] Hyun Y, Choi J-Y, Park H-K, Lee C-S. Synthesis and electrochemical performance of
               ruthenium oxide-coated carbon nanofibers as anode materials for lithium secondary
               batteries. Appl Surf Sci 2016;388:274–80. Part A.
           [24] Jiang X, Yang L, Ding B, Qu B, Ji G, Lee JY. Extending the cycle life of Na 3 V 2 (PO 4 ) 3
               cathodes in sodium-ion batteries through interdigitated carbon scaffolding. J Mater Chem
               A 2016;4:14669–74.
           [25] Ren W, Zheng Z, Xu C, Niu C, Wei Q, An Q, et al. Self-sacrificed synthesis of three-
               dimensional Na 3 V 2 (PO 4 ) 3 nanofiber network for high-rate sodium–ion full batteries. Nano
               Energy 2016;25:145–53.
           [26] Jin J, Shi Z, Wang C. Electrochemical performance of electrospun carbon nanofibers as
               free-standing and binder-free anodes for sodium-ion and lithium-ion batteries. Elec-
               trochim Acta 2014;141:302–10.
           [27] Chen T, Liu Y, Pan L, Lu T, Yao Y, Sun Z, et al. Electrospun carbon nanofibers as anode
               materials for sodium ion batteries with excellent cycle performance. J Mater Chem A
               2014;2:4117–21.
           [28] Li W, Zeng L, Yang Z, Gu L, Wang J, Liu X, et al. Free-standing and binder-free sodium-
               ion electrodes with ultralong cycle life and high rate performance based on porous carbon
               nanofibers. Nano 2013;6:693–8.
           [29] Luo W, Schardt J, Bommier C, Wang B, Raznik J, Simonsen J, et al. Carbon nanofibers
               derived from cellulose nanofibers as a long-life anode material for rechargeable sodium-
               ion batteries. J Mater Chem A 2013;1:10662–6.
           [30] Jin J, Yu B, Shi Z, Wang C-Y, Chong C-B. Lignin-based electrospun carbon nanofibrous
               webs as free-standing and binder-free electrodes for sodium ion batteries. J Power Sources
               2014;272:800–7.
           [31] Jiang Q, Zhang Z, Yin S, Guo Z, Wang S, Feng C. Biomass carbon micro/nano-structures
               derived from ramie fibers and corncobs as anode materials for lithium-ion and sodium-ion
               batteries. Appl Surf Sci 2016;379:73–82.
           [32] Zhang Z, Zhang J, Zhao X, Yang F. Core-sheath structured porous carbon nanofiber com-
               posite anode material derived from bacterial cellulose/polypyrrole as an anode for sodium-
               ion batteries. Carbon 2015;95:552–9.
           [33] Wang S, Xia L, Yu L, Zhang L, Wang H, Lou XW. Free-standing nitrogen-doped carbon
               nanofiber films: integrated electrodes for sodium-ion batteries with ultralong cycle life and
               superior rate capability. Adv Energy Mater 2016;6:1502217.
           [34] Zeng L, Li W, Cheng J, Wang J, Liu X, Yu Y. N-doped porous hollow carbon nanofibers
               fabricated using electrospun polymer templates and their sodium storage properties.
               RSC Adv 2014;4:16920–7.
           [35] Qu Y, Deng Y, Li Q, Zhang Z, Zeng F, Yang Y, et al. Core–shell-structured hollow carbon
               nanofiber@nitrogen-doped porous carbon composite materials as anodes for advanced
               sodium-ion batteries. J Mater Sci 2016;1–10.
           [36] Li M, Carter R, Cohn AP, Pint CL. Interconnected foams of helical carbon nanofibers
               grown with ultrahigh yield for high capacity sodium ion battery anodes. Carbon
               2016;107:109–15.
           [37] Dirican M, Lu Y, Ge Y, Yildiz O, Zhang X. Carbon-confined SnO 2 -electrodeposited
               porous carbon nanofiber composite as high-capacity sodium-ion battery anode material.
               ACS Appl Mater Interfaces 2015;7:18387–96.
           [38] Liu Z, Song T, Kim JH, Li Z, Xiang J, Lu T, et al. Partially reduced SnO 2 nanoparticles
               anchored on carbon nanofibers for high performance sodium-ion batteries. Electrochem
               Commun 2016;72:91–5.
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