Tailoring a facile electronic and ionic pathway to boost the storage performance of Fe3O4 nanowires as negative electrode for supercapacitor application
Today, high-energy applications are devoted to boosting the storage performance of asymmetric supercapacitors. Importantly, boosting the storage performance of the negative electrodes is a crucial topic. Fe 3 O 4 -based active materials display a promising theoretical storage performance as a negati...
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Veröffentlicht in: | Scientific reports 2024-07, Vol.14 (1), p.16807-14, Article 16807 |
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Sprache: | eng |
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Zusammenfassung: | Today, high-energy applications are devoted to boosting the storage performance of asymmetric supercapacitors. Importantly, boosting the storage performance of the negative electrodes is a crucial topic. Fe
3
O
4
-based active materials display a promising theoretical storage performance as a negative electrode. Thus, to get a high storage performance of Fe
3
O
4
, it must be tailored to have a higher ionic and electronic conductivity and outstanding stability. Functionalized graphite felt (GF) is an excellent candidate for tailoring Fe
3
O
4
with a facile ionic and electronic pathway. However, the steps of the functionalization of GF are complex and time-consuming as well as the energy loss during this step. Thus, the in-situ functionalization of the GF surface throughout the synthesis of Fe
3
O
4
active materials is proposed herein. Fe
3
O
4
is electrodeposited at the in-situ functionalized GF surface with the crystalline nanowires-like structure as revealed from the various analyses; SEM, TEM, Mapping EDX, XPS, XRD, wettability test, and Raman analysis. Advantageously, the synthetic approach introduces full homogeneous and uniform coverage of the large surface area of the GF. Thus, Fe
3
O
4
nanowires with high ionic and electronic conductivity are characterized by a higher storage performance. Interestingly, Fe
3
O
4
/GF possesses a high specific capacity of 1418 mC cm
−2
at a potential scan rate of 10 mV s
−1
and this value retained to 54% at a potential scan rate of 50 mV s
−1
at an extended potential window of 1.45 V. Remarkably, the diffusion-controlled reaction is the main contributor of the storage of Fe
3
O
4
/GF electrode as revealed by the mechanistic studies. |
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ISSN: | 2045-2322 2045-2322 |
DOI: | 10.1038/s41598-024-66480-5 |