材料科学
锂(药物)
兴奋剂
空位缺陷
晶体结构
氧气
结晶学
光电子学
化学
医学
内分泌学
有机化学
作者
Cui Pei,Panpan Zhang,Xueli Chen,Xiuli Chen,Tao Wan,Yu Zhou,Mingru Su,Yunjian Liu,Haolan Xu,Dewei Chu
标识
DOI:10.1021/acsami.3c08524
摘要
TiNb2O7 has attracted extensive attention from lithium-ion battery researchers due to its superior specific capacity and safety. However, its poor ion conductivity and electron conductivity hinder its further development. To improve the ion/electron transport of TiNb2O7, we report that chlorine doping and oxygen vacancy engineering regulate the energy band and crystal structure simultaneously through a simple solid-phase method. NH4Cl was used to realize Cl– doping and oxygen vacancy production. A Rietveld refinement demonstrates an effective substitution of Cl in the O sites of Nb–O octahedra, with an enlarged crystal plane spacing. The oxygen vacancies provide more active sites for lithium intercalation. The diffusion coefficient of Li+ is inceased from 2.39 × 10–14 to 1.50 × 10–13 cm2 s–1, which reveals the positive influence of Cl– doping and oxygen vacancies on the promoted Li+ transport behavior. Charge compensation is introduced by the doping of Cl– and the generation of oxygen vacancies, leading to the formation of Ti3+ and Nb4+ and the adjustment of the electronic structure. DFT calculations reveal that TiNb2O7 with Cl– doping and an O vacancy shows a metallic property with a finite value at the Fermi level, which is conducive to electron transfer in the electrode material. Benefiting from these advantages, the modified TiNb2O7 presents superior rate performance with a commendable capacity of 172.82 mAh g–1 at 50 C. This work provides guidance to design high-performance anode materials for high-rate lithium-ion batteries.
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