Xin Yu, Nie Shuqing, Pan Shi, Miao Chang, Mou Haoyi, Wen Minyue, Xiao Wei
College of Chemistry and Environmental Engineering, Yangtze University, Jingzhou 434023, PR China.
College of Chemistry and Environmental Engineering, Yangtze University, Jingzhou 434023, PR China.
J Colloid Interface Sci. 2023 Jan 15;630(Pt B):403-414. doi: 10.1016/j.jcis.2022.10.112. Epub 2022 Oct 28.
The SnSb and TiO nanoparticles uniformly embedded into continuous and conductive carbon nanofibers (CNFs) are successfully fabricated through facile electrospinning combined with calcination treatments. The characterization results of the targeted composite nanofibers (Sb-SnSb/TiO@CNFs-2) confirm that the presence of TiO is of significant importance to construct the elaborately designed and intact fiber structure, in which the optimal dosage of the TiO precursor is precisely controlled at 2 mmol. Moreover, high theoretical specific capacity of SnSb, available inhibitory effect of TiO, and great electronic conductivity of CNFs are cooperatively integrated into the Sb-SnSb/TiO@CNFs-2 composite nanofibers, guaranteeing the enhanced lithium storage capacity and cycling performance when being employed as the anode electrodes. Specifically, the Sb-SnSb/TiO@CNFs-2 electrode can not only deliver initial discharge specific capacity of 1146.6 mAh/g at 100 mA/g and reversible discharge specific capacity of 580.4 mAh/g after 100 cycles, but also retain discharge specific capacity of 561.3 mAh/g after rate cycles along with recovering the current density to 100 mA/g. Importantly, the Sb-SnSb/TiO@CNFs-2 electrode is also endowed with prominent advantages in the pseudocapacitive contribution of 66.89 % at 0.8 mV/s. Those investigations and findings of the Sb-SnSb/TiO@CNFs-2 composite electrodes with facile fabrication process and excellent electrochemical performance can contribute to the practical application of the alloy anodes in the field of the energy storage.
通过简便的静电纺丝结合煅烧处理,成功制备出均匀嵌入连续导电碳纳米纤维(CNF)中的SnSb和TiO纳米颗粒。目标复合纳米纤维(Sb-SnSb/TiO@CNFs-2)的表征结果证实,TiO的存在对于构建精心设计的完整纤维结构至关重要,其中TiO前驱体的最佳用量精确控制在2 mmol。此外,SnSb的高理论比容量、TiO的有效抑制作用以及CNF的高电子导电性协同整合到Sb-SnSb/TiO@CNFs-2复合纳米纤维中,确保其作为阳极电极时具有增强的储锂容量和循环性能。具体而言,Sb-SnSb/TiO@CNFs-2电极不仅在100 mA/g时可提供1146.6 mAh/g的初始放电比容量,100次循环后可逆放电比容量为580.4 mAh/g,而且在倍率循环后,当电流密度恢复到100 mA/g时,仍保留561.3 mAh/g的放电比容量。重要的是,Sb-SnSb/TiO@CNFs-2电极在0.8 mV/s时的赝电容贡献也具有66.89%的突出优势。Sb-SnSb/TiO@CNFs-2复合电极的这些研究结果,其制备工艺简便且具有优异的电化学性能,有助于合金阳极在储能领域的实际应用。