Understanding pore surface modification of sucrose-modified iron oxide/silica mesoporous composite for degradation of methylene blue

  • Yuvita Eka Pertiwi
  • , Maria Ulfa*
  • , Teguh Endah Saraswati
  • , Didik Prasetyoko
  • , Wega Trisunaryanti
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

4 Citations (Scopus)

Abstract

Santa Barbara Amorphous (SBA-15) containing iron oxide with a sucrose-modified in a heterogeneous reaction for degradation methylene blue (MB) successful synthesized used hydrothermal, ultrasonication, and wet impregna-Tion method. SBA-15 is mesoporous silica that can easily serve as external and internal surfaces making it suita-ble for a wide range of applications. The structure and morphology of materials were characterized using Surface Area Analyzer (SAA), X-ray diffraction (XRD), Fourier Transform Infrared Spectroscopy (FTIR), Scanning Elec-Tron Microscope-Energy Dispersive X-Ray (SEM-EDX), and Transmission Electron Microscopy (TEM). Iron oxide impregnated as a maghemite phase has an average size of 12 nm and well distributed on the SBA-15. After modi-fied with sucrose the materials remaining stable, which has a two-dimensional hexagonal (p6mm) structure, high specific surface area, and large pore volume (up to 1.82 cm3.g-1). The degradation of MB was evaluated under visi-ble light irradiation using UV-Vis spectroscopy. Catalytic activity showed efficiencies of 52.9; 70.2; and 21.1% for SBA-15, Fe2O3/SBA-15, and sucrose-modified Fe2O3/SBA-15 respectively. Sucrose-modified Fe2O3/SBA-15 has the lowest efficiency, which probably occurs due to the presence of pore-blocking and the formation of micropores on the external pore. The modification with sucrose has the advantage of producing a high surface area even though there is a catalytic center due to partial decomposition which causes a decrease in the efficiency of degradation of MB. All materials provide a high micro surface area so that they can be further adapted and can be widely applied to many potential applications as both catalyst support and an adsorbent.

Original languageEnglish
Pages (from-to)459-471
Number of pages13
JournalBulletin of Chemical Reaction Engineering and Catalysis
Volume16
Issue number3
DOIs
Publication statusPublished - 2021

Keywords

  • Composite
  • Fe2O3/SBA-15
  • Iron oxide silica
  • Methylene blue
  • SBA-15
  • Sucrose-modified

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