铂纳米颗粒装饰可持续来源介孔碳在氢气进化反应中的应用

Catalysts Pub Date : 2024-07-02 DOI:10.3390/catal14070423
Erik Biehler, Qui Quach, Tarek M. Abdel-Fattah
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引用次数: 0

摘要

持续波动的经济和环境气候大大增加了对替代燃料来源的需求。氢气的利用是这种燃料来源的一个可行选择。氢气是已知能量密度最高的物质之一,但不幸的是,它也极易挥发,尤其是在最常用于储存氢气的二原子气态下。利用硼氢化钠(NaBH4)等氢原料材料可能会减轻这种危险。当 NaBH4 与水反应时,其化学结构中储存的氢就会释放出来。然而,氢的释放速度很慢,因此需要催化剂。我们选择了铂纳米粒子作为反应的催化剂,并将其嵌入从可持续玉米淀粉中提取的介孔碳材料(MCM)的骨架中,以防止它们凝结成团。通过透射电子显微镜(TEM)、扫描电子显微镜(SEM)、能量色散 X 射线光谱(EDS)和 X 射线衍射(XRD)对纳米复合材料(Pt-MCM)进行了表征。对 Pt-MCM 进行的催化测试表明,Pt-MCM 复合催化剂的催化活性随着硼氢化钠用量的增加、pH 值的降低和温度的升高而提高。催化反应的活化能为 37.7 kJ mol-1。可重复使用性实验表明,在第一次试验后,氢气产量会出现初步下降,但随后会保持稳定。这种 Pt-MCM 催化剂的活化能很有竞争力,而且其 MCM 骨架可持续地从容易获得的玉米淀粉中提取,这使其成为优化 NaBH4 制氢反应的一个很有前景的选择。
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Application of Platinum Nanoparticles Decorating Mesoporous Carbon Derived from Sustainable Source for Hydrogen Evolution Reaction
The perpetually fluctuating economic and environmental climate significantly increases the demand for alternative fuel sources. The utilization of hydrogen gas is a viable option for such a fuel source. Hydrogen is one of the most energy-dense known substances; however, it is unfortunately also highly volatile, especially in the diatomic gaseous state most commonly used to store it. The utilization of a hydrogen feedstock material such as sodium borohydride (NaBH4) may prove to mitigate this danger. When NaBH4 reacts with water, hydrogen stored within its chemical structure is released. However, the rate of hydrogen release is slow and thus necessitates a catalyst. Platinum nanoparticles were chosen to act as a catalyst for the reaction, and to prevent them from conglomerating, they were embedded in a backbone of mesoporous carbon material (MCM) derived from a sustainable corn starch source. The nanocomposite (Pt-MCM) was characterized via transmission electron microscopy (TEM), scanning electron microscopy (SEM), energy-dispersive X-ray spectroscopy (EDS), and X-ray diffraction (XRD). Pt-MCM underwent catalytic testing, revealing that the catalytic activity of the Pt-MCM composite catalysts increased with increasing quantities of sodium borohydride, lower pH levels, and higher temperatures. The activation energy of the catalyzed reaction was found to be 37.7 kJ mol−1. Reusability experiments showed an initial drop off in hydrogen production after the first trial but subsequent stability. This Pt-MCM catalyst’s competitive activation energy and sustainable MCM backbone derived from readily available corn starch make it a promising option for optimizing the hydrogen generation reaction of NaBH4.
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