>
Fa   |   Ar   |   En
   a wide potential window aqueous supercapacitor based on limn2o4–rgo nanocomposite  
   
نویسنده azari s. rasool ,rahmanifar mohammad s. ,el-kady maher f. ,noori abolhassan ,mousavi mir f. ,kaner richard b.
منبع journal of the iranian chemical society - 2017 - دوره : 14 - شماره : 12 - صفحه:2579 -2590
چکیده    Aqueous supercapacitors based on neutral solutions have the advantages of high-ionic conductivity, being environmentally friendly, safe, and low cost. however, the operating potential window for most aqueous electrolytes is far lower than that of organic electrolytes that are commonly used in commercial supercapacitors. in this work, we report on the fabrication of a wide potential window, high-energy aqueous asymmetric supercapacitor, without sacrificing power, by using a nanostructured limn2o4/reduced graphene oxide (lmo–rgo) nanocomposite. we synthesized the uniformly distributed lmo in the lmo–rgo nanocomposite using a co-precipitation route followed by a low-temperature hydrothermal treatment. in a three-electrode cell setup, the specific capacitance of the lmo–rgo nanocomposite electrode at 1 a/g (1.2 ma/cm2) is 268.75 f/g (258 mf/cm2), which shows a dramatic improvement over the sum of the specific capacitances of pristine lmo (162.5 f/g) and pure rgo (29.94 f/g) electrodes in their relative ratios, when used alone. this finding suggests a synergistic coupling of lmo and rgo in the nanocomposite. we also assembled the lmo–rgo nanocomposite, as the positive electrode, with activated carbon, as the negative electrode, into an asymmetric cell configuration. the device shows an ultra-wide potential window of 2.0 v in a neutral aqueous li2so4 electrolyte, with a maximum energy density of 29.6 wh/kg (which approaches the commercial lead-acid batteries), power density of up to 7408 w/kg, and an excellent cycle life (5% loss after 6000 cycles). these findings confirm that an lmo–rgo nanocomposite is a promising material to meet the demands of real world energy storage.
کلیدواژه limn2o4 ,nanocomposite ,graphene ,supercapacitor ,hydrothermal synthesis ,energy storage
آدرس tarbiat modares university, department of chemistry, iran, shahed university, faculty of basic sciences, iran, university of california, department of chemistry and biochemistry and california nanosystems institute, usa. cairo university, faculty of science, department of chemistry, egypt, tarbiat modares university, department of chemistry, iran, tarbiat modares university, department of chemistry, iran. university of california, department of chemistry and biochemistry and california nanosystems institute, usa, university of california, department of chemistry and biochemistry and california nanosystems institute, usa. department of materials science and engineering, usa
 
     
   
Authors
  
 
 

Copyright 2023
Islamic World Science Citation Center
All Rights Reserved