Rational Design of High‐Performance Electrodes Based on Ferric Oxide Nanosheets Deposited on Reduced Graphene Oxide for Advanced Hybrid Supercapacitors

The core strategy for constructing ultra‐high‐performance hybrid supercapacitors is the design of reasonable and effective electrode materials. Herein, a facile solvothermal‐calcination strategy is developed to deposit the phosphate‐functionalized Fe2O3 (P‐Fe2O3) nanosheets on the reduced graphene o...

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Veröffentlicht in:Small (Weinheim an der Bergstrasse, Germany) Germany), 2024-04, Vol.20 (15), p.e2306236-n/a
Hauptverfasser: Ji, Zhenyuan, Chen, Lizhi, Tang, Guanxiang, Zhong, Jiali, Yuan, Aihua, Zhu, Guoxing, Shen, Xiaoping
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Sprache:eng
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Zusammenfassung:The core strategy for constructing ultra‐high‐performance hybrid supercapacitors is the design of reasonable and effective electrode materials. Herein, a facile solvothermal‐calcination strategy is developed to deposit the phosphate‐functionalized Fe2O3 (P‐Fe2O3) nanosheets on the reduced graphene oxide (rGO) framework. Benefiting from the superior conductivity of rGO and the high conductivity and fast charge storage dynamics of phosphate ions, the synthesized P‐Fe2O3/rGO anode exhibits remarkable electrochemical performance with a high capacitance of 586.6 F g−1 at 1 A g−1 and only 4.0% capacitance loss within 10 000 cycles. In addition, the FeMoO4/Fe2O3/rGO nanosheets are fabricated by utilizing Fe2O3/rGO as the precursor. The introduction of molybdates successfully constructs open ion channels between rGO layers and provides abundant active sites, enabling the excellent electrochemical features of FeMoO4/Fe2O3/rGO cathode with a splendid capacity of 475.4 C g−1 at 1 A g−1. By matching P‐Fe2O3/rGO with FeMoO4/Fe2O3/rGO, the constructed hybrid supercapacitor presents an admirable energy density of 82.0 Wh kg−1 and an extremely long working life of 95.0% after 20 000 cycles. Furthermore, the continuous operation of the red light‐emitting diode for up to 30 min demonstrates the excellent energy storage properties of FeMoO4/Fe2O3/rGO//P‐Fe2O3/rGO, which provides multiple possibilities for the follow‐up energy storage applications of the iron‐based composites. An ingenious synthetic strategy is demonstrated to fabricate the phosphate‐functionalized Fe2O3 (P‐Fe2O3) nanosheets supported by reduced graphene oxide (rGO). By converting part of Fe2O3 into FeMoO4, the FeMoO4/Fe2O3/rGO nanosheets are simultaneously fabricated through a facile solvothermal‐calcination method. Benefiting from the particular plate‐like architecture and multiple component functionalizations, the resultant P‐Fe2O3/rGO, FeMoO4/Fe2O3/rGO, and FeMoO4/Fe2O3/rGO//P‐Fe2O3/rGO exhibit remarkable electrochemical features.
ISSN:1613-6810
1613-6829
DOI:10.1002/smll.202306236