Kinerja Karbon Aktif Pelepah Kelapa Sawit Untuk Adsorpsi Ion Cu(Ii): Analisis Kinetika, Isoterm, Dan Pengaruh Aktivasi

Penulis

  • Rannando Rannando Institut Teknologi Perkebunan Pelalawan Indonesia Penulis
  • Cecep Ijang Wahyudin Institut Teknologi Perkebunan Pelalawan Indonesia Penulis
  • Rangga Rahmananda Institut Pertanian Stiper Yogyakarta Penulis
  • Fachri Ibrahim Nasution Institut Teknologi Perkebunan Pelalawan Indonesia Penulis
  • Rahayu Dwi Ningtyas Institut Pertanian Stiper Yogyakarta Penulis
  • Ronal Castro Institut Teknologi Perkebunan Pelalawan Indonesia Penulis
  • Bajora Justisia Institut Teknologi Perkebunan Pelalawan Indonesia Penulis

DOI:

https://doi.org/10.64690/intelektual.v2i4.938

Kata Kunci:

Activated Carbon, Oil Palm Frond, Cu(II), Adsorption, Kinetics, Isotherm

Abstrak

Heavy metal pollution, particularly Cu(II), is an important concern in water quality management, highlighting the need for effective, economical, and renewable adsorbent materials. Oil palm fronds are abundant biomass waste with potential for conversion into activated carbon for heavy metal adsorption. This study aimed to synthesize findings from previous studies on the performance of oil palm frond-derived activated carbon for Cu(II) adsorption, focusing on adsorbent dosage, contact time, activation treatment, adsorption kinetics, and isotherm models. A literature review was conducted using narrative synthesis and comparative analysis of relevant studies. The synthesized findings show that increasing adsorbent dosage and contact time generally improves Cu(II) removal efficiency under comparable experimental conditions. In one reported Cu(II) adsorption study, an adsorbent dosage of 1.5 g and a contact time of 40 minutes achieved a removal efficiency of 37.34%, compared with 31.46% at a dosage of 1.0 g. Other characterization studies reported substantial changes in surface properties following activation, with H₃PO₄-activated carbon showing a surface area of 307.692 m²/g compared with 15.149 m²/g for unactivated carbon. The synthesized kinetic results showed a higher R² value for the pseudo-second-order model (0.9972), while the Freundlich model showed a higher fit than the Langmuir model, with an R² value of 0.9990. Overall, the reviewed literature indicates that oil palm frond-derived activated carbon has potential for Cu(II) adsorption, although its performance varies according to activation conditions and adsorption parameters.

Unduhan

Data unduhan tidak tersedia.

Referensi

Achmad, R., Fauziah, S., & Zakir, M. (2020). Pembuatan dan modifikasi karbon aktif pelepah kelapa sawit (Cocus nucifera L.) sebagai adsorben metilen biru. Indonesian Journal of Pure and Applied Chemistry, 3(2), 1–10. https://doi.org/10.26418/indonesian.v3i2.46309

Andriansyah, R., Elwina, & Suryani. (2023). Pembuatan karbon aktif dari limbah pelepah kelapa sawit (Elaies guineesis Jacq.) sebagai media penyerapan ion logam Fe air sumur menggunakan aktivator asam fosfat (H₃PO₄). Jurnal Riset, Inovasi, Teknologi & Terapan, 1(2), 30–34. https://doi.org/10.30811/ristera.v1i2.4683

Creswell, J. W., & Creswell, J. D. (2023). Research design: Qualitative, quantitative, and mixed methods approaches (6th ed.). SAGE Publications.

Hammad, W. A., Alqahtani, F. M., Darweesh, M. A., Amr, M. H. A., Eweida, B., & Bakr, A. (2025). Innovative methods using palm frond-derived activated carbon for Cu(II) adsorption. Materials Chemistry and Physics, 339, 130568. https://doi.org/10.1016/j.matchemphys.2025.130568

Intifadah, S. H., Munir, R., Hamdani, D., Natalisanto, A. I., & Muliyono, S. (2025). Surface area analysis of activated carbon material from palm frond waste using different activation agents. Indonesian Journal of Applied Physics, 15(1), 193–203. https://doi.org/10.13057/ijap.v15i1.96045

Jasri, K., Abdulhameed, A. S., Jawad, A. H., AlOthman, Z. A., Yousef, T. A., & Al Duaij, O. K. (2023). Mesoporous activated carbon produced from mixed wastes of oil palm frond and palm kernel shell using microwave radiation-assisted K₂CO₃ activation for methylene blue dye removal: Optimization by response surface methodology. Diamond and Related Materials, 131, 109581. https://doi.org/10.1016/j.diamond.2022.109581

Karić, N., Maia, A. S., Teodorović, A., Atanasova, N., Langergraber, G., Crini, G., Ribeiro, A. R. L., & Đolić, M. (2022). Bio-waste valorisation: Agricultural wastes as biosorbents for removal of (in)organic pollutants in wastewater treatment. Chemical Engineering Journal Advances, 9, 100239. https://doi.org/10.1016/j.ceja.2021.100239

Nurfatihayati, N., Irianty, R. S., Winarno, W., Yani, O. D., & Al’farisi, C. D. (2025). Kapasitas adsorpsi dan efektivitas karbon aktif pelepah kelapa sawit (Elaeis guineensis Jacq.) untuk mengadsorpsi ion logam tembaga (Cu²⁺). Journal of Bioprocess, Chemical and Environmental Engineering Science, 6(1), 62–71. https://doi.org/10.31258/jbchees.6.1.51-61

Oktavianty, H., & Anggoro, D. D. (2024). Adsorption kinetics of activated carbon from oil palm fronds on decreasing of copper and lead ions. E3S Web of Conferences, 503, 09001. https://doi.org/10.1051/e3sconf/202450309001

Prasaningtyas, A., Febrianti, N., Azzahra, R., & Ngang, D. A. (2024). The effect of contact time and oil palm frond activated carbon dose as an adsorbent in decreasing iron (Fe) in groundwater. Jurnal Presipitasi: Media Komunikasi dan Pengembangan Teknik Lingkungan, 21(3), 660–669. https://doi.org/10.14710/presipitasi.v21i3.660-669

Sara, T., & Mistar, E. M. (2025). Karakterisasi adsorben dari limbah pelepah kelapa sawit teraktivasi natrium hidroksida untuk adsorpsi mangan. Jurnal Teknik Kimia USU, 14(1), 19–26. https://doi.org/10.32734/jtk.v14i1.17898

Saunders, M. N. K., Lewis, P., & Thornhill, A. (2023). Research methods for business students (9th ed.). Pearson.

Sen, T. K. (2023). Agricultural solid wastes based adsorbent materials in the remediation of heavy metal ions from water and wastewater by adsorption: A review. Molecules, 28(14), 5575. https://doi.org/10.3390/molecules28145575

Wang, B., Lan, J., Bo, C., Gong, B., & Ou, J. (2023). Adsorption of heavy metal onto biomass-derived activated carbon: Review. RSC Advances, 13, 4275–4302. https://doi.org/10.1039/D2RA07911A

Yusoff, M. S. N. M., Kamari, A., Putra, W. P., Ishak, C. F., Mohamed, A., Hashim, N., & Isa, I. M. (2021). Adsorption of heavy metals by oil palm frond-derived activated carbon: A review. Journal of Engineering and Technological Sciences, 53(1), 210104. https://doi.org/10.5614/j.eng.technol.sci.2021.53.1.4

Zainol, M. M., Amin, N. A. S., & Asmadi, M. (2017). Preparation and characterization of impregnated magnetic particles on oil palm frond activated carbon for metal ions removal. Sains Malaysiana, 46(5), 773–782. https://doi.org/10.17576/jsm-2017-4605-12

Diterbitkan

2026-07-30

Terbitan

Bagian

Articles

Cara Mengutip

Rannando Rannando, Cecep Ijang Wahyudin, Rangga Rahmananda, Fachri Ibrahim Nasution, Rahayu Dwi Ningtyas, Ronal Castro, & Bajora Justisia. (2026). Kinerja Karbon Aktif Pelepah Kelapa Sawit Untuk Adsorpsi Ion Cu(Ii): Analisis Kinetika, Isoterm, Dan Pengaruh Aktivasi. Jurnal Ilmiah Multidisiplin Mahasiswa Dan Akademisi , 2(4), 142-155. https://doi.org/10.64690/intelektual.v2i4.938