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Published on: November 10, 2014
Partial Atomic Disordered Ti2Nb10O29 -x Induced by Joule Thermal Shock for Superior Lithium-Ion Storage
Yuwei Zhao1, Wujie Dong1, Shiyu Zhang2
1Key Laboratory of Intelligent Creation for Extreme Energy Materials of the Ministry of Education, School of Materials Science and Engineering, and Zhang jiang Institute for Advanced Study, Shanghai Jiao Tong University, Shanghai, China.
None:
Nb2O5 is a promising anode for high-power lithium-ion battery, but its relatively dense atomic packing limits Li+ migration capacity exertion. Ti2Nb10O29 with Wadsley-Roth phase with more open crystal structure is considered a promising candidate. However, Ti/Nb atoms prefer to form an ordered arrangement to maintain local charge balance, resulting insufficient Li+ migration and suppressing high-rate performance. Herein, defective Ti2Nb10O29- x anode with partial disordered Ti/Nb arrangement is developed by employing an amorphous precursor combined with Joule thermal shock. The random dispersion of Ti and Nb within the amorphous precursor is maintained to a certain extent during ultra-fast Joule thermal heating (≈500°C s-1) and quenching (≈250°C s-1). Compared to traditional Ti2Nb10O29, the Li+ diffusion coefficient and electronic conductivity of Ti/Nb-disordered Ti2Nb10O29- x are enhanced by tenfold and four orders of magnitude, respectively. As the anode of lithium-ion batteries, the optimal Ti2Nb10O29- x shows an ultra-high capacity of 353 mAh g-1 and an excellent rate capability of 112 mAh g-1 at 150 C, an ultra-long cycling lifespan of 5000 cycles, and a wide operating temperature range from 80°C to -40°C. The performance leap caused by the disordered structure may provide new paradigm for battery materials.
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