TY - JOUR
T1 - Nanostructured bilayered vanadium oxide electrodes for rechargeable sodium-ion batteries
AU - Tepavcevic, Sanja
AU - Xiong, Hui
AU - Stamenkovic, Vojislav R.
AU - Zuo, Xiaobing
AU - Balasubramanian, Mahalingam
AU - Prakapenka, Vitali B.
AU - Johnson, Christopher S.
AU - Rajh, Tijana
PY - 2012/1/24
Y1 - 2012/1/24
N2 - Figure Persented: Tailoring nanoarchitecture of materials offers unprecedented opportunities in utilization of their functional properties. Nanostructures of vanadium oxide, synthesized by electrochemical deposition, are studied as a cathode material for rechargeable Na-ion batteries. Ex situ and in situ synchrotron characterizations revealed the presence of an electrochemically responsive bilayered structure with adjustable intralayer spacing that accommodates intercalation of Na + ions. Sodium intake induces organization of overall structure with appearance of both long- and short-range order, while deintercalation is accompanied with the loss of long-range order, whereas short-range order is preserved. Nanostructured electrodes achieve theoretical reversible capacity for Na 2V 2O 5 stochiometry of 250 mAh/g. The stability evaluation during charge-discharge cycles at room temperature revealed an efficient 3 V cathode material with superb performance: energy density of ∼760 Wh/kg and power density of 1200 W/kg. These results demonstrate feasibility of development of the ambient temperature Na-ion rechargeable batteries by employment of electrodes with tailored nanoarchitectures.
AB - Figure Persented: Tailoring nanoarchitecture of materials offers unprecedented opportunities in utilization of their functional properties. Nanostructures of vanadium oxide, synthesized by electrochemical deposition, are studied as a cathode material for rechargeable Na-ion batteries. Ex situ and in situ synchrotron characterizations revealed the presence of an electrochemically responsive bilayered structure with adjustable intralayer spacing that accommodates intercalation of Na + ions. Sodium intake induces organization of overall structure with appearance of both long- and short-range order, while deintercalation is accompanied with the loss of long-range order, whereas short-range order is preserved. Nanostructured electrodes achieve theoretical reversible capacity for Na 2V 2O 5 stochiometry of 250 mAh/g. The stability evaluation during charge-discharge cycles at room temperature revealed an efficient 3 V cathode material with superb performance: energy density of ∼760 Wh/kg and power density of 1200 W/kg. These results demonstrate feasibility of development of the ambient temperature Na-ion rechargeable batteries by employment of electrodes with tailored nanoarchitectures.
KW - bilayered V O
KW - electrochemical deposition
KW - nanostructured electrodes
KW - sodium-ion battery
UR - http://www.scopus.com/inward/record.url?scp=84856182093&partnerID=8YFLogxK
U2 - 10.1021/nn203869a
DO - 10.1021/nn203869a
M3 - Article
C2 - 22148185
AN - SCOPUS:84856182093
SN - 1936-0851
VL - 6
SP - 530
EP - 538
JO - ACS Nano
JF - ACS Nano
IS - 1
ER -