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MOF-like and ZIF-like sacrificial precursors for the synthesis of SnO2@C Nanocatalysts: Hydrogen generation via NaBH4 hydrolysis and antimicrobial activity against human pathogenic yeasts

ملخص البحث

Hydrogen (H2) is a clean and sustainable energy carrier with high energy density, offering a viable alternative to
fossil fuels. In this investigation, MOF-like and ZIF-like Sn-BDC and Sn-ZIF coordination precursors were
employed as sacrificial templates for the synthesis of carbon-supported SnO2 nanocomposites (SnO2@C) via the
thermal carbonization at 400-600◦C. The resulting nanocomposites were then evaluated for hydrogen generation
via NaBH4 hydrolysis and for antimicrobial activity against human pathogenic yeasts. The catalysts were
characterized using XRD, FTIR, Raman spectroscopy, XPS, HRTEM, SAED, and BET analyses. Among the pre-
pared catalysts, SnO2@C-ZIF-500 ◦C showed the highest hydrogen generation rate (HGR) of 2000 mL min 1 g 1
at 45 ◦C, outperforming SnO2@C-BDC-400 ◦C (1700 mL min 1 g 1) despite its lower surface area (37.6 m2 g 1
vs. 70.9 m2 g 1, respectively). This enhanced activity is attributed to the N-doped carbon matrix (derived from
ZIF-like frameworks), which improves electron transfer and activates SnO2 sites. Kinetic analysis confirmed
faster reaction rates and lower activation energy for the ZIF-derived catalyst (49.9 kJ mol 1 for SnO2@C-ZIF-
500oC versus 60.4 kJ mol 1 for SnO2@C-BDC-400oC), highlighting the role of mesoporosity and nitrogen doping
in boosting performance. Catalysts offered almost the same activity after three cycles. The antifungal activity of
SnO2@C-BDC-400 ◦C and SnO2@C-ZIF-500 ◦C was evaluated against Candida albicans and Candida tropicalis
(0–100 μg/mL) and compared with nystatin. Both catalysts showed stronger inhibition at 100 μg/mL than
nystatin for both strains. The MIC values were lower for SnO2@C materials, indicating superior antifungal
performance. These findings demonstrate that SnO2@C catalysts are promising non-noble materials for efficient
hydrogen generation and potential antimicrobial applications.

مؤلف البحث
Mohamed N. Goda a,* , Laila S. Alqarni a, Mohamed Khairy a,** , Yasmeen G. Abou El-Reash a, Mostafa E. Salem a, Tarek A. Yousef a, Abd El-Aziz A. Said b, Ghada Abd-Elmonsef Mahmoud
تاريخ البحث
مجلة البحث
International Journal of Hydrogen Energy
صفحات البحث
155620
الناشر
َ@ ELSIEVER
تصنيف البحث
International Q1
عدد البحث
242
سنة البحث
2026