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从生物质衍生的糖类、醇类和多酚类化合物室温合成三维纳米晶石墨碳。

Room temperature synthesis of 3D-nanocrystalline graphitic carbon from biomass-derived sugars, alcohols, and polyphenolic compounds.

作者信息

Simanullang Wiyanti Fransisca, Nganglumpoon Rungkiat, Watmanee Suthasinee, Pinthong Piriya, Tolek Weerachon, Liu Yan, Panpranot Joongjai

机构信息

Center of Excellence on Catalysis and Catalytic Reaction Engineering, Department of Chemical Engineering, Faculty of Engineering, Chulalongkorn University Bangkok 10330 Thailand

Research Center for Chemistry, National Research and Innovation Agency Jakarta 10340 Indonesia.

出版信息

Nanoscale Adv. 2024 Jun 26;6(16):4094-4102. doi: 10.1039/d4na00440j. eCollection 2024 Aug 6.

Abstract

Nanocrystalline carbon materials exhibit promising potential for sustainable and high-performance applications in electronics, energy storage, and environmental technologies. While sugars are abundant and renewable, converting them to graphitic carbon usually requires high temperature treatment. Here, we present a groundbreaking approach for synthesizing nanocrystalline carbon from readily available sugars such as glucose, fructose, and sucrose at ambient pressure and temperature. This novel method involves electrochemical reduction on a negatively charged Ag surface coupled with intermolecular dehydration between the organic precursors. By applying relatively low potentials ranging from -1.2 to -1.6 V Ag/AgCl, and with the presence of hydrogen peroxide, oxygenic carbon precursors are efficiently transformed into nanocrystalline hybrid carbon structures. The role of hydrogen peroxide is pivotal in expediting hydrogen abstraction and facilitating the formation of 3D-nanostructured carbon allotropes. Characterization results based on Raman spectroscopy, transmission electron microscopy-energy dispersive X-ray spectroscopy-selected area electron diffraction (TEM-EDX-SAED), X-ray photoelectron spectroscopy (XPS), and grazing incidence-X-ray diffraction (GI-XRD) confirm the presence of mixed nanocrystalline sp-sp hybridization in the resulting carbon materials. Moreover, this method's versatility extends beyond sugars to include alcohols, polyols, and polyphenolic compounds like ethanol, glycerol, and tannic acid, broadening its potential for biomass valorization.

摘要

纳米晶碳材料在电子、储能和环境技术等可持续高性能应用中展现出了广阔的潜力。虽然糖类资源丰富且可再生,但将其转化为石墨碳通常需要高温处理。在此,我们提出了一种开创性的方法,可在常压和常温下从葡萄糖、果糖和蔗糖等易得的糖类合成纳米晶碳。这种新方法涉及在带负电荷的银表面进行电化学还原,并结合有机前体之间的分子间脱水反应。通过施加 -1.2 至 -1.6 V Ag/AgCl 的相对低电位,并在过氧化氢存在的情况下,含氧碳前体可有效地转化为纳米晶混合碳结构。过氧化氢在加速氢提取和促进三维纳米结构碳同素异形体的形成方面起着关键作用。基于拉曼光谱、透射电子显微镜 -X 射线能量色散光谱 - 选区电子衍射(TEM - EDX - SAED)、X 射线光电子能谱(XPS)和掠入射 -X 射线衍射(GI - XRD)的表征结果证实了所得碳材料中存在混合的纳米晶 sp - sp 杂化。此外,该方法的通用性不仅限于糖类,还包括醇类、多元醇类以及乙醇、甘油和单宁酸等多酚类化合物,拓宽了其生物质增值的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/67a7/11302145/95f2ef1a274f/d4na00440j-f1.jpg

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