The Structure–Property Investigation of Bi1–xCexFeO3 (x = 0, 0.05)–Li Battery: In Situ XRD and XANES Studies
Posted on 2012-09-27 - 00:00
BiFeO3 and Bi0.95Ce0.05FeO3 were synthesized via a coprecipitation technique.
During
the synthesis process, the phase transitions were monitored via in situ synchrotron X-ray diffraction (XRD). The Ce addition
increased the formation temperature of BiFeO3 phase, while
greatly suppressed the particle size growth. Ce0.05Bi0.95FeO3 was further employed for lithium battery
application, and good electrochemical cycling performance was observed
between 1.15 and 3.0 V. Ce addition not only increased the discharge
capacity but also displayed 0.15 V higher discharge voltage (in the
second cycle), compared with BiFeO3. After 2 Li ions insertion,
Bi ions are reduced to metallic Bi and separated out of the perovskite
lattice. In the following charge process, metallic Bi can be oxidized
back to its ionic state. Elevated discharge voltage was observed in
the second discharge process. a/b-axis lattice parameters are mainly changed by Li intercalation/deintercalation,
and c-axis lattice parameters are heavily affected
by the ionic species in the c-axis. There are two
distinct conduction pathways: one is the ionic conduction along the a/b-plane, and the other is the electronic
conduction along the c-axis.
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Zhang, Xingmin; Gao, Mei; Gu, Yueliang; Bao, Hongliang; Li, Xiaolong; Zhou, Xingtai; et al. (2016). The Structure–Property Investigation of Bi1–xCexFeO3 (x = 0, 0.05)–Li Battery: In Situ XRD and XANES Studies. ACS Publications. Collection. https://doi.org/10.1021/jp3065745