In this paper, the pseudocapacitive performance of nitrogen-doped and undoped reduced graphene oxidetetragonal hausmannite nanohybrids (N-rGO/MnO and rGO/MnO) synthesized using a one-pot hydrothermal method is reported. The nanohybrid electrode materials displayed exceptional electrochemical performance relative to their respective individual precursors (i.e., reduced graphene oxide (rGO), nitrogen-doped reduced graphene oxide (N-rGO), and tetragonal hausmannite (MnO)) for symmetric pseudocapacitors. Among the two nanohybrids, N-rGO/MnO displayed greater performance with a high specific capacitance of 345 F g at a current density of 0.1 A g, excellent specific energy of 12.0 Wh kg (0.1 A g), and a high power density of 22.5 kW kg (10.0 A g), while rGO/MnO demonstrated a high specific capacitance of 264 F g (0.1 A g) with specific energy and power densities of 9.2 Wh kg (0.1 A g) and 23.6 kW kg (10.0 A g), respectively. Furthermore, the N-rGO/MnO nanohybrid exhibited an impressive pseudocapacitive performance when fabricated in an asymmetric configuration, having a stable potential window of 2.0 V in 1.0 M NaSO electrolyte. The nanohybrid showed excellent specific energy and power densities of 34.6 Wh kg (0.1 A g) and 14.01 kW kg (10.0 A g), respectively. These promising results provide a good substance for developing novel carbon-based metal oxide electrode materials in pseudocapacitor applications.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8637592 | PMC |
http://dx.doi.org/10.1021/acsomega.1c02302 | DOI Listing |
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