TY - JOUR
T1 - Long-life lithium-O2 battery achieved by integrating quasi-solid electrolyte and highly active Pt3Co nanowires catalyst
AU - Xing, Yi
AU - Chen, Nan
AU - Luo, Mingchuan
AU - Sun, Yingjun
AU - Yang, Yong
AU - Qian, Ji
AU - Li, Li
AU - Guo, Shaojun
AU - Chen, Renjie
AU - Wu, Feng
N1 - Publisher Copyright:
© 2019
PY - 2020/1
Y1 - 2020/1
N2 - To achieve a long-cycle-life lithium-air battery, the catalyst, electrolyte and lithium anode should be optimized synergistically. Herein, we achieve a super-long cycle-life lithium-O2 battery by integrating the synergistic effect of highly active Pt3Co nanowires (PtCo NWs) cathode catalyst and stable quasi-solid SiO2-ionic liquid (IL) electrolyte. The PtCo NWs can effectively reduce the charge voltage below 3.2 V, but have to induce the decomposition of the conventional liquid electrolyte. The SiO2-IL electrolyte has a high ionic conductivity, but it still cannot match with carbonaceous oxygen electrode, due to its large charge overpotential. By combining the PtCo NWs cathode catalyst with quasi-solid electrolyte, the lithium-O2 battery can reversibly discharge and charge above 300 cycles (>3000 h). When the battery is disassembled, the lithium metal anode is preserved well, which is closely covered by a layer of SiO2 nanoparticles containing IL. By contrast, the lithium anode completely changes to the white powders for the one with ether-based electrolyte stored under the same condition, demonstrating the lithium anode is perfectly protected by the SiO2-IL electrolyte, which is a critical factor for achieving the long-life performance of lithium-O2 battery. Even under the air atmosphere, the battery can still cycle very well.
AB - To achieve a long-cycle-life lithium-air battery, the catalyst, electrolyte and lithium anode should be optimized synergistically. Herein, we achieve a super-long cycle-life lithium-O2 battery by integrating the synergistic effect of highly active Pt3Co nanowires (PtCo NWs) cathode catalyst and stable quasi-solid SiO2-ionic liquid (IL) electrolyte. The PtCo NWs can effectively reduce the charge voltage below 3.2 V, but have to induce the decomposition of the conventional liquid electrolyte. The SiO2-IL electrolyte has a high ionic conductivity, but it still cannot match with carbonaceous oxygen electrode, due to its large charge overpotential. By combining the PtCo NWs cathode catalyst with quasi-solid electrolyte, the lithium-O2 battery can reversibly discharge and charge above 300 cycles (>3000 h). When the battery is disassembled, the lithium metal anode is preserved well, which is closely covered by a layer of SiO2 nanoparticles containing IL. By contrast, the lithium anode completely changes to the white powders for the one with ether-based electrolyte stored under the same condition, demonstrating the lithium anode is perfectly protected by the SiO2-IL electrolyte, which is a critical factor for achieving the long-life performance of lithium-O2 battery. Even under the air atmosphere, the battery can still cycle very well.
KW - Cycle life
KW - Lithium metal anode
KW - Lithium-air battery
KW - PtCo nanowires
KW - Quasi-solid electrolyte
UR - http://www.scopus.com/inward/record.url?scp=85067178232&partnerID=8YFLogxK
U2 - 10.1016/j.ensm.2019.06.008
DO - 10.1016/j.ensm.2019.06.008
M3 - Article
AN - SCOPUS:85067178232
SN - 2405-8297
VL - 24
SP - 707
EP - 713
JO - Energy Storage Materials
JF - Energy Storage Materials
ER -