Loading-Dependent Physicochemical Characteristics of LiMn2O4 Composites with Plasma-Modified and Ammonia-Functionalized Rice Husk Carbon

Authors

  • Harianingsih Harianingsih Universitas Negeri Semarang Indonesia
  • Deni Fajar Fitriyana Universitas Negeri Semarang Indonesia
  • Januar Parlaungan Siregar Universiti Malaysia Pahang Al-Sultan Abdullah Malaysia
  • Agung Budiwirawan Universitas Negeri Semarang Indonesia
  • Ari Dwi Nur Indriawan Universitas Negeri Semarang Indonesia
  • Suryo Wiroyudho Wibowo Universitas Negeri Semarang Indonesia
  • Rizky Ilham Fadzillah Universitas Negeri Semarang Indonesia
  • Nabila Khoirunisa Universitas Negeri Semarang Indonesia

DOI:

https://doi.org/10.26877/asset.v8i4.2915

Keywords:

composite, LiMn₂O₄, plasma modified, rice husk carbon, SDG 12

Abstract

This study investigates LiMn2O4 composites incorporated with nitrogen-functionalized rice husk-derived carbon as a sustainable secondary phase for cathode material development. Rice husk carbon was prepared through carbonization, acid-assisted activation, plasma treatment, and ammonia functionalization, then mechanically blended with LiMn2O4 at 2, 3, and 4 wt.% to obtain LMO-NC2, LMO-NC3, and LMO-NC4, respectively. FTIR analysis showed absorption bands at approximately 3390, 1625, 1400, 1008, 832, 702, and 460 cm⁻¹, corresponding to O–H, C=C, C=N, Si–O, and Mn–O-related vibrations. The minimum transmittance decreased from LMO-NC2 to LMO-NC4, particularly at ~1400 cm⁻¹ from 17.13% to 16.01%, indicating stronger carbon/nitrogen-related surface features. SEM revealed layered LiMn2O4, fine carbon deposits, interparticle voids, and agglomeration. XRD showed characteristic spinel LiMn2O4 indexed to the (111), (311), (222), (400), (331), (511), and (440) planes. BET adsorption volume increased from 160 cc/g for LMO-NC2 to approximately 169 and 176 cc/g for LMO-NC3 and LMO-NC4 at P/P₀ = 0.31. These findings demonstrate the potential of rice husk-derived carbon for sustainable LiMn2O4 composite design, supporting responsible consumption and production under SDG 12.

Author Biographies

  • Harianingsih Harianingsih, Universitas Negeri Semarang

    Department of Chemical Engineering, Faculty of Engineering, Universitas Negeri Semarang, Kampus Sekaran Gunungpati, Semarang 50229, Central Java, Indonesia

  • Deni Fajar Fitriyana, Universitas Negeri Semarang

    Department of Mechanical Engineering, Faculty of Engineering, Universitas Negeri Semarang, Kampus Sekaran Gunungpati, Semarang 50229, Central Java, Indonesia

  • Januar Parlaungan Siregar, Universiti Malaysia Pahang Al-Sultan Abdullah

    Faculty of Mechanical and Automotive Engineering Technology, Universiti Malaysia Pahang Al-Sultan Abdullah, Pekan 26600, Pahang, Malaysia

  • Agung Budiwirawan, Universitas Negeri Semarang

    Department of Civil Engineering, Faculty of Engineering, Universitas Negeri Semarang, Kampus Sekaran Gunungpati, Semarang 50229, Central Java, Indonesia

  • Ari Dwi Nur Indriawan, Universitas Negeri Semarang

    Department of Mechanical Engineering, Faculty of Engineering, Universitas Negeri Semarang, Kampus Sekaran Gunungpati, Semarang 50229, Central Java, Indonesia

  • Suryo Wiroyudho Wibowo, Universitas Negeri Semarang

    Department of Chemical Engineering, Faculty of Engineering, Universitas Negeri Semarang, Kampus Sekaran Gunungpati, Semarang 50229, Central Java, Indonesia

  • Rizky Ilham Fadzillah, Universitas Negeri Semarang

    Department of Chemical Engineering, Faculty of Engineering, Universitas Negeri Semarang, Kampus Sekaran Gunungpati, Semarang 50229, Central Java, Indonesia

  • Nabila Khoirunisa, Universitas Negeri Semarang

    Department of Chemical Engineering, Faculty of Engineering, Universitas Negeri Semarang, Kampus Sekaran Gunungpati, Semarang 50229, Central Java, Indonesia

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Published

2026-08-29