Biehler Erik, Quach Qui, Abdel-Fattah Tarek M
Applied Research Center at Thomas Jefferson National Accelerator Facility, Department of Molecular Biology and Chemistry at Christopher Newport University, Newport News, VA 23606, USA.
Molecules. 2024 Aug 5;29(15):3707. doi: 10.3390/molecules29153707.
Increased environmental pollution and the shortage of the current fossil fuel energy supply has increased the demand for eco-friendly energy sources. Hydrogen energy has become a potential solution due to its availability and green combustion byproduct. Hydrogen feedstock materials like sodium borohydride (NaBH) are promising sources of hydrogen; however, the rate at which the hydrogen is released during its reaction with water is slow and requires a stable catalyst. In this study, gold nanoparticles were deposited onto mesoporous carbon to form a nano-composite catalyst (AuNP-MCM), which was then characterized via transmission electron microscopy (TEM), powder X-ray diffraction (P-XRD), and scanning electron microscopy/energy dispersive X-ray spectroscopy (SEM/EDS). The composite's catalytic ability in a hydrogen evolution reaction was tested under varying conditions, including NaBH concentration, pH, and temperature, and it showed an activation of energy of 30.0 kJ mol. It was determined that the optimal reaction conditions include high NaBH4 concentrations, lower pH, and higher temperatures. This catalyst, with its stability and competitively low activation energy, makes it a promising material for hydrogen generation.
环境污染的加剧以及当前化石燃料能源供应的短缺,增加了对环保能源的需求。氢能因其可得性和绿色燃烧副产物而成为一种潜在的解决方案。像硼氢化钠(NaBH)这样的氢原料是很有前景的氢源;然而,其与水反应时氢气释放的速率较慢,需要一种稳定的催化剂。在本研究中,金纳米颗粒沉积在介孔碳上形成一种纳米复合催化剂(AuNP-MCM),然后通过透射电子显微镜(TEM)、粉末X射线衍射(P-XRD)以及扫描电子显微镜/能量色散X射线光谱(SEM/EDS)对其进行表征。在包括硼氢化钠浓度、pH值和温度等不同条件下测试了该复合材料在析氢反应中的催化能力,其显示出的活化能为30.0 kJ/mol。确定最佳反应条件包括高硼氢化钠浓度、较低的pH值和较高的温度。这种具有稳定性且活化能具有竞争力的低的催化剂,使其成为一种有前景的制氢材料。