Supercapacitor Materials and Fabrication Peer reviewed

SynergisticEffect of 2D Cu x S y Nanoflakes and a PVA/PhyticAcid-Derived Porous Carbon Heterostructure for Enhanced SupercapacitorPerformance

Energy & Fuels | Aug 10, 2026

Abstract

Abstract

Abstract Porous heterostructure platforms prepared by the combination of a mixed phase of 2D copper sulfide nanoflakes (CSNF) and a phosphorus-doped porous carbon (PC) are found to act as efficient electrode materials. CSNF has been synthesized from Cu(NO3)2·3H2O using a hydrothermal process, whereas PC has been produced by the carbonization of poly(vinyl alcohol)-phytic acid (PVA–PA) film obtained by an ultrasonic method. The amount of phosphorus doping in PC was ca. 2.6 atom%. An optimized amount of CSNF and PC mixed together in a weight ratio of 1:2 gave CSNF@PC-2 with a surface area of 138 m2 g–1 and specifically exhibited better properties over the other samples. The specific capacitance of CSNF@PC-2 is found to be 467 F g–1 at a current density of 1 A g–1 in 1 M H2SO4, with a Coulombic efficiency of 93.2%. It also displays a cyclic stability with a 90% retention of its initial capacitance after 5000 cycles of charge/discharge at 30 A g–1. This electrode material demonstrates a good energy density of 52.53 Wh kg–1 and a power density of 450.32 W kg–1 at a current density of 1 A g–1. A symmetric device prepared with the material (CSNF@PC-2//CSNF@PC-2) delivers a specific capacitance of 194.67 F g–1 at a current density of 0.2 A g–1, and after 1000 GCD cycles retains ca. 54.1% of its specific capacitance with a Coulombic efficiency of up to 120%. When three symmetric devices with an overall mass loading of 4 mg cm–2 are connected in a series to form a circuit, it can light up a 3 V green light-emitting diode (LED) bulb, which can be recharged and reused, revealing the long-term energy storage capability of CSNF@PC-2.

Direct answer

What can I do from this paper page?

Use this page to scan "SynergisticEffect of 2D Cu x S y Nanoflakes and a PVA/PhyticAcid-Derived Porous Carbon Heterostructure for Enhanced SupercapacitorPerformance" quickly: start with the summary and abstract, then check the authors, source, topics, and related papers. From here, open Scollr to follow Supercapacitor Materials and Fabrication research, save the paper, or map adjacent work.

Research areas

Follow related topics

Citation

BibTeX

@article{scollr2026SynergisticEffect,
  title = {SynergisticEffect of 2D Cu x S y Nanoflakes and a PVA/PhyticAcid-Derived Porous Carbon Heterostructure for Enhanced SupercapacitorPerformance},
  journal = {Energy & Fuels},
  year = {2026},
  doi = {10.1021/acs.energyfuels.6c00936},
  url = {https://doi.org/10.1021/acs.energyfuels.6c00936}
}

FAQ

Using this paper in a discovery workflow

How do I find related work for this paper?

Use the related papers and topic links on this page as starting points. In Scollr, you can also open the paper and build a literature map around its references, citing papers, and related work.

How can I keep up with new Supercapacitor Materials and Fabrication research papers?

Follow Supercapacitor Materials and Fabrication research in Scollr. New papers from the topic flow into a personalized feed, and you can save useful studies to revisit later.

Can I cite this paper from this page?

This page includes a static BibTeX block for SynergisticEffect of 2D Cu x S y Nanoflakes and a PVA/PhyticAcid-Derived Porous Carbon Heterostructure for Enhanced SupercapacitorPerformance. Always verify the DOI, source, and publication details against the publisher record before submitting a manuscript.

Follow this research in Scollr

Follow the topics and authors behind this paper, save useful studies, and build a literature map when you are ready to go deeper.

Get the app