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May 26, 2026Processes0 citationsOpen Access

Transformation of Waste Coca-Cola® and Pepsi® into Activated Carbons with Enhanced Electrocatalytic Performance for Oxygen Reduction in Alkaline Media

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AMAleksandar MijajlovićJPJelena PotočnikBŠBiljana Šljukić

Key Points

  • The research aims to explore how waste Coca-Cola and Pepsi can be converted into activated carbons with improved electrocatalytic properties for oxygen reduction.
  • Utilized scanning electron microscopy to assess structural changes in carbon materials before and after activation.
  • Conducted particle size analysis to evaluate size distribution variations due to chemical activation with ZnCl2.
  • Investigated electrocatalytic activity through oxygen reduction reaction assessments in alkaline solutions.
  • Activated carbons demonstrated higher diffusion-limited current densities (~−4.8 mA cm−2 at 1600 rpm), indicating better performance.
  • CC-NAHC showed the lowest Tafel slope (99 mV dec−1), suggesting it has faster reaction kinetics compared to activated samples.
  • All samples followed a near four-electron ORR pathway with electron transfer numbers varying from 3.6 to 3.9.

Abstract

This study investigates the morphological, compositional, and electrochemical properties of carbon materials derived from Pepsi (P) and Coca-Cola (CC) precursors, before and after chemical activation with ZnCl2. Scanning electron microscopy revealed a lower density of surface cracks in non-activated hydrothermal carbon (NAHC) samples compared to activated carbons (ACs), indicating structural changes induced by the corrosive activation process. Particle size analysis showed an increase in average diameter after activation, particularly pronounced in CC-derived samples, which also exhibited a broader particle size distribution. Elemental mapping confirmed carbon as the dominant and homogeneously distributed element, while oxygen-containing functional groups decreased significantly after activation. Oxygen reduction reaction investigation demonstrated that all synthesized non-activated and activated samples are electrocatalytically active in alkaline solution. CC-NAHC demonstrated the lowest Tafel slope (99 mV dec−1), while activated samples showed higher values, indicating slower kinetics and increased reaction limitations. Despite this, activated carbons—particularly CC-AC—displayed significantly higher diffusion-limited current densities (~−4.8 mA cm−2 at 1600 rpm), suggesting improved mass transport and conductivity. Furthermore, electron transfer number (n) analysis indicated that P-NAHC and CC-AC follow a near four-electron ORR pathway (n ≈ 3.6–3.9).

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Cite This Study

Mijajlović et al. (2026) studied this question.

synapsesocial.com/papers/6a153a88b5d9c58d83e8d0cdhttps://doi.org/10.3390/pr14111694
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