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By Dongfang Yang

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Commun. 11 (2009) 1146. [73] T. H. Wang, Y. M. -S. -S. Seo, J. W. Choi. Electrospun Core−Shell Fibers for Robust Silicon Nanoparticle-Based Lithium Ion Battery Anodes. Nano Lett. 12 (2012) 802. [74] J. Kong, W. A. Yee, Y. Wei, L. Yang, J. M. Ang, S. L. Phua, S. Y. Wong, R. Zhou, Y. Dong, X. Li, X. Lu. Silicon nanoparticles encapsulated in hollow graphitized carbon nanofibers for lithium ion battery anodes. Nanoscale 5 (2013) 2967. 5772/63235 [75] Q. L. Wu, T. Tran, W. Q. Lu, J. Wu. Electrospun silicon/carbon/titanium oxide composite nanofibers for lithium ion batteries.

G. Kim, J. W. Choi. One-Dimensional Carbon– Sulfur Composite Fibers for Na–S Rechargeable Batteries Operating at Room Temper‐ ature. Nano Lett. 13 (2013) 4532. 29 30 Alkali-ion Batteries [141] W. H. Li, L. C. Zeng, Z. Z. Yang, L. Gu, J. Q. Wang, X. W. Liu, J. X. Cheng, Y. Yu. Freestanding and binder-free sodium-ion electrodes with ultralong cycle life and high rate performance based on porous carbon nanofibers. Nanoscale 6 (2014) 693. [142] Y. J. Zhu, X. G. Han, Y. H. Xu, Y. H. Liu, S. Y. Zheng, K.

Porous nitrogen-doped carbon vege‐ table-sponges with enhanced lithium storage performance. Carbon 69 (2014) 515. 23 24 Alkali-ion Batteries [63] P. Han, Y. Yue, L. Zhang, H. Xu, Z. Liu, K. Zhang, C. Zhang, S. Dong, W. Ma, G. Cui. Nitrogen-doping of chemically reduced mesocarbon microbead oxide for the improved performance of lithium ion batteries. Carbon 50 (2012) 1355. [64] W. H. Shin, H. M. Jeong, B. G. Kim, J. K. Kang, J. W. Choi. Nitrogen-Doped Multiwall Carbon Nanotubes for Lithium Storage with Extremely High Capacity.

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