Khan Mohammad Sherjeel Javed, Alkhadher Sadiq Abdullah Abdo, Sidek Lariyah Mohd, Kamal Tahseen, Asiri Abdullah M, Khan Sher Bahadar, Zawawi Mohd Hafiz, Basri Hidayah, Ahmed Ali Najah
Institute of Energy Infrastructure (IEI), Universiti Tenaga Nasional (UNITEN), 43000, Selangor, Malaysia.
Institute of Energy Infrastructure (IEI), Universiti Tenaga Nasional (UNITEN), 43000, Selangor, Malaysia.
Int J Biol Macromol. 2025 Mar;296:139717. doi: 10.1016/j.ijbiomac.2025.139717. Epub 2025 Jan 9.
A catalytic system has been developed, utilizing metal nanoparticles confined within a chitosan‑carbon black composite hydrogel (M-CH/CB), aimed at improving ease of use and recovery in catalytic processes. The M-CH/CBs were characterized by XPS, XRD, SEM, and EDX, the M-CH/CB system demonstrated exceptional catalytic activity in producing hydrogen gas (H) from water and methanol, and in reducing several hazardous materials including 2-nitrophenol (2-NP), 4-nitrophenol (4-NP), 2,6-dinitrophenol (2,6-DNP), acridine orange (ArO), methyl orange (MO), congo red (CR), methylene blue (MB), and potassium ferricyanide (PFC). Among the tested nanocatalysts, CH/CB showed the highest efficiency for H₂ production, while Fe-CH/CB excelled in contaminant reduction (7.0 min). In addition to the synthesis and characterization of the catalytic system, various factors, such as NaBH₄ amount, catalyst quantity, pollutant concentration, and reaction temperature were optimized to maximize its overall efficacy and efficiency. Fe-CH/CB achieved the best reaction rate of 0.850 min for 4-NP reduction, while CH/CB had a hydrogen generation rate (HGR) of 3500 ml.g.min. The Fe-CH/CB was able to achieve the 4-NP reduction percentage of >95 % over 5 times during the recyclability tests. However, a slight decrease in reduction time was observed as the reaction rate dropped to 0.716 min after 5 cycles, but the catalyst remained effective, underscoring its practical potential for environmental remediation, water treatment, and sustainable energy production.
已开发出一种催化体系,该体系利用限制在壳聚糖 - 炭黑复合水凝胶(M-CH/CB)中的金属纳米颗粒,旨在提高催化过程中的易用性和回收率。通过XPS、XRD、SEM和EDX对M-CH/CB进行了表征,M-CH/CB体系在由水和甲醇制氢气(H₂)以及还原包括2-硝基苯酚(2-NP)、4-硝基苯酚(4-NP)、2,6-二硝基苯酚(2,6-DNP)、吖啶橙(ArO)、甲基橙(MO)、刚果红(CR)、亚甲基蓝(MB)和铁氰化钾(PFC)在内的几种有害物质方面表现出卓越的催化活性。在所测试的纳米催化剂中,CH/CB在H₂生成方面效率最高,而Fe-CH/CB在污染物还原方面表现出色(7.0分钟)。除了催化体系的合成和表征外,还对诸如硼氢化钠用量、催化剂用量、污染物浓度和反应温度等各种因素进行了优化,以使其整体功效和效率最大化。Fe-CH/CB在4-NP还原反应中达到了最佳反应速率0.850分钟,而CH/CB的产氢速率(HGR)为3500 ml·g⁻¹·min⁻¹。在可回收性测试中,Fe-CH/CB能够在5次循环中实现>95%的4-NP还原率。然而, 观察到随着反应速率在5次循环后降至0.716分钟,还原时间略有下降,但催化剂仍然有效,这突出了其在环境修复、水处理和可持续能源生产方面的实际潜力。