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由微藻制备的可再生氮掺杂水热碳。

Renewable nitrogen-doped hydrothermal carbons derived from microalgae.

机构信息

Department of Colloid Chemistry, Max Planck Institute for Colloids and Interfaces, Am Muhlenberg 1, 14476 Potsdam, Germany.

出版信息

ChemSusChem. 2012 Sep;5(9):1834-40. doi: 10.1002/cssc.201200022. Epub 2012 Apr 27.

Abstract

Nitrogen-doped carbon materials are synthesized via an effective, sustainable, and green one-step route based on the hydrothermal carbonization of microalgae with high nitrogen content (ca. 11 wt %). The addition of the monosaccharide glucose to the reaction mixture is found to be advantageous, enhancing the fixation of nitrogen in the synthesized carbons, resulting in materials possessing nitrogen content in excess of 7 wt %, and leading to promising reaction yields. Increasing the amount of glucose leads to a higher nitrogen retention in the carbons, which suggests co-condensation of the microalgae and glucose-derived degradation/hydrolysis products via Maillard-type cascade reactions, yielding nitrogen-containing aromatic heterocycles (e.g., pyrroles) as confirmed by several analytical techniques. Increasing the HTC processing temperature leads to a further aromatization of the chemical structure of the HTC carbon and the formation of increasingly more condensed nitrogen-containing functional motifs (i.e., pyridinic and quaternary nitrogen).

摘要

氮掺杂碳材料是通过一种有效、可持续和绿色的一步法路线合成的,该路线基于具有高氮含量(约 11wt%)的微藻的水热碳化。在反应混合物中添加单糖葡萄糖被发现是有利的,它可以增强氮在合成碳中的固定,得到氮含量超过 7wt%的材料,并获得有前景的反应收率。增加葡萄糖的量会导致碳中更高的氮保留,这表明微藻和葡萄糖衍生的降解/水解产物通过美拉德型级联反应共同缩合,生成含氮的芳杂环(例如,吡咯),这几种分析技术都得到了证实。提高 HTC 处理温度会导致 HTC 碳的化学结构进一步芳构化,并形成越来越多的缩合含氮官能团(即吡啶和季氮)。

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