Self-doped porous carbon derived from acacia plantation residues for green-supercapacitor in sustainable energy applications

Authors

  • Apriwandi Apriwandi Department of Physics, Faculty of Mathematic and Natural Science, University of Riau, Pekanbaru 28293, Indonesia https://orcid.org/0000-0003-3560-5571
  • Rindhu Nabila Deniza Department of Physics, Faculty of Mathematic and Natural Science, University of Riau, Pekanbaru 28293, Indonesia
  • Awaludin Martin Department of Mechanical Engineering, Faculty of Engineering, University of Riau, Pekanbaru 28293, Indonesia
  • Julnaidi Julnaidi Department of Mechanical Engineering, Sekolah Tinggi Teknologi Pekanbaru 28293, Indonesia
  • Rika Taslim Department of Industrial Engineering, Faculty of Science and Technology, Universitas Islam Negeri Sultan Syarif Kasim Riau, Pekanbaru 28293, Indonesia https://orcid.org/0000-0003-1946-1299
  • Erman Taer Department of Physics, Faculty of Mathematic and Natural Science, University of Riau, Pekanbaru 28293, Indonesia

DOI:

https://doi.org/10.31258/Jamt.7.1.1-10

Keywords:

self-doped, carbon material, nano-structure, electrode materials, supercapacitor

Abstract

To improve bio-organic-carbon quality for supercapacitors, consider using dual or more heteroatom for more profitable carbon-chain doping. Developing suitable sources and preparation strategies is challenging but essential. Herein, we introduce a potential carbon source derived from acacia plantation residues, doped with boron, oxygen, and phosphorus. The pore structure of this carbon material can be precisely tuned to exhibit a well-defined hierarchical arrangement of micro-, meso-, and macropores through a low-ratio of phosphoric acid (H?PO?) impregnation method combined with dual-environment (N2 and CO2) vertical pyrolysis in one step integrated. The resulting material displays a confirmed hierarchical morphology with a hierarchical transformation into tunnel pores, in specific surface area of 521.70 m²/g which contributed to high charge storage and deliverability. Additionally, the material contains significant levels of boron (0.93%), oxygen (9.19%), and phosphorus (0.34%), facilitating a reversible Faradic reaction in the working electrode. Consequently, optimized-electrode achieves a specific capacitance of 198 F/g at 1 A/g in H?SO? electrolyte. In a two-electrode system, records energy density of 14 Wh/kg (1 A/g) at a maximum power density of 670 W/kg (10 A/g). These findings suggest that the natural incorporation of boron, oxygen, and phosphorus enhances both the activity and the hierarchical pore structure of carbon derived from acacia plantation residues.

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Published

2025-07-11

How to Cite

Self-doped porous carbon derived from acacia plantation residues for green-supercapacitor in sustainable energy applications. (2025). Journal of Applied Materials and Technology, 7(1), 1-10. https://doi.org/10.31258/Jamt.7.1.1-10