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典型文献
High-performance magnesium ion asymmetric Ppy@FeOOH//Mn3O4 micro-supercapacitor
文献摘要:
Micro-supercapacitors(MSCs)are attractive electrochemical energy storage devices owing to their high power density and extended cycling stability.However,relatively low areal energy density still hinders their practical applications.Here,an asymmetric Mg ion MSC with promising high energy density is fab-ricated.Firstly,indium tin oxide(ITO)NWs were synthesized by chemical vapor deposition as the excel-lent current collector.Subsequently,nanostructured Mn3O4 and Ppy@FeOOH were deposited on the laser-engraved interdigital structure ITO NWs electrodes as the positive and negative electrodes,respec-tively.Beneficial from the hierarchical micro-nano structures of active materials,high conductive elec-tron transport pathways,and charge-balanced asymmetric electrodes,the obtained MSC possesses a high potential window of 2.2 V and a high areal capacitance of 107.3 mF cm-2 at 0.2 mA cm-2.The in-situ XRD,VSM,and ex-situ XPS results reveal that the primary energy storage mechanism of Mg ions in negative FeOOH electrode is Mg ions de-/intercalation and phase transition reaction of FeOOH.Furthermore,the MSC exhibits a high specific energy density of 71.18 μWh cm-2 at a power density of 0.22 mWh cm-2 and capacitance retention of 85%after 5000 cycles with unvaried Coulombic efficiency.These results suggest promising applications of our MSC in miniaturized energy storage devices.
文献关键词:
作者姓名:
Xueliang Lv;Yaxiong Zhang;Xijuan Li;Zhiye Fan;Guo Liu;Wenjian Zhang;Jinyuan Zhou;Erqing Xie;Zhenxing Zhang
作者机构:
Key Laboratory for Magnetism and Magnetic Materials of the Ministry of Education,School of Physical Science and Technology,Lanzhou University,Lanzhou 730000,Gansu,China
文献出处:
引用格式:
[1]Xueliang Lv;Yaxiong Zhang;Xijuan Li;Zhiye Fan;Guo Liu;Wenjian Zhang;Jinyuan Zhou;Erqing Xie;Zhenxing Zhang-.High-performance magnesium ion asymmetric Ppy@FeOOH//Mn3O4 micro-supercapacitor)[J].能源化学,2022(09):352-360
A类:
unvaried
B类:
High,performance,magnesium,asymmetric,Ppy,FeOOH,Mn3O4,micro,Micro,supercapacitors,MSCs,attractive,electrochemical,energy,storage,devices,owing,their,high,power,density,extended,cycling,stability,However,relatively,low,areal,still,hinders,practical,applications,Here,Mg,promising,fab,ricated,Firstly,indium,tin,oxide,ITO,NWs,were,synthesized,by,vapor,deposition,excel,lent,current,collector,Subsequently,nanostructured,deposited,laser,engraved,interdigital,electrodes,positive,negative,respec,Beneficial,from,hierarchical,structures,materials,conductive,tron,transport,pathways,charge,balanced,obtained,possesses,potential,window,capacitance,mF,mA,situ,VSM,XPS,results,reveal,that,primary,mechanism,intercalation,phase,transition,reaction,Furthermore,exhibits,specific,mWh,retention,after,cycles,Coulombic,efficiency,These,suggest,our,miniaturized
AB值:
0.58051
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