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Rational La-doped hematite as an anode and hydrous cobalt phosphate as a battery-type electrode for a hybrid supercapacitor. | LitMetric

AI Article Synopsis

  • Modern appliances need high energy density with quick power supply; hybrid supercapacitors offer this without sacrificing performance or stability over many cycles.
  • The study focuses on two optimized hybrid electrodes: lanthanum-doped hematite as the negative electrode and hydrous cobalt phosphate as the positive electrode, both manufactured through simple methods.
  • The hybrid capacitor device shows impressive energy density and power density, making it ideal for use in advanced electrical devices and hybrid vehicles.

Article Abstract

In recent years, modern appliances require high energy density with a burst power supply. Hybrid supercapacitors show high performance based on high energy density without compromising power density and stability over thousands of charge-discharge cycles. In this work, the optimized hybrid electrodes using lanthanum-doped hematite (lanthanum-doped iron oxide) noted as 7.5%La-HMT as a negative electrode and hydrous cobalt phosphate (CoPO) as a battery-type positive electrode have been successfully fabricated a simple hydrothermal method and a facile co-precipitation method, respectively. The 7.5%La-HMT showed excellent electrochemical performance due to doping of rare-earth La metal ions, resulting in improvised active sites and reduction in the equivalent resistance. The 7.5%La-HMT operated at a high potential window (0 to -1.2 V) with an ultra-high specific capacitance () of 1226.7 F g at 1 A g with capacitance retention of 89.3% over 1000 cycles. CoPO could be operated at a high working window (0 to 0.45 V) with a specific capacity of 121.7 mA h g at a current density of 2 A g with capacitance retention of 85.4% over 1000 cycles. The configured CoPO//KOH//10%La-HMT aqueous hybrid capacitor device (Aq-HSC) could be operated at a potential window of 1.6 V and delivered a maximum energy density (E.D) of 83.6 W h kg at a power density (P.D) of 3.2 kW kg with of 235.0 F g at 2 A g and 89.0% retention over 5000 cycles. The simplicity of the synthesis methods for CoPO and 7.5%La-HMT along with their superior super-capacitive properties make them suitable for advanced electrical devices and hybrid vehicles.

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Source
http://dx.doi.org/10.1039/d1dt04164aDOI Listing

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