由生物质衍生物直接电合成氨基酸。

ACS electrochemistry Pub Date : 2025-03-14 eCollection Date: 2025-05-01 DOI:10.1021/acselectrochem.4c00171
Zamaan Mukadam, Sihang Liu, Soren B Scott, Yuxiang Zhou, Georg Kastlunger, Mary P Ryan, Maria Magdalena Titirici, Ifan E L Stephens
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引用次数: 0

摘要

演示了在环境条件下由生物质衍生化合物电化学合成含氮分子,仅依赖绿色原料、可再生能源和水。本研究报道了在酸性电解液中以羟胺(NH2OH)为氮源,以5-羟甲基糠醛(HMF)为原料,两步法电化学合成5-(氨基甲基)呋喃-2-羧酸(AFCA)的方法。第一步,以NH2OH为氮源,将HMF还原成(5-(氨基甲基)呋喃-2-基)甲醇(HMFA)。接下来是第二步,在相同ph下,在氧化锰(MnO x)阳极上将HMFA氧化为AFCA。MnO x能够选择性地氧化HMFA上的醇基,以35%的法拉第效率生成AFCA,而不影响胺基。由于这两个反应都是在pH为1的电解质中完成的,因此在进行第二个反应之前不需要分离HMFA。在不同金属电极(Ag、Au、Cu、Pb、Pt和Sn)的电化学还原胺化反应中,Ag电极选择性地将HMF胺化成中间物质HMFA的性能最好,在-0.50 VRHE的温和电位下,法拉第效率高达69%。通过密度泛函理论计算,探索了Ag(111)的还原胺化反应可能的反应途径,结果表明,即使在0 VRHE条件下,反应也是热力学可行的。对阴极实验反应参数进行了优化,发现电解液pH为1是电化学还原性胺化反应的最佳条件。我们的工作塑造了未来电化学合成生产AFCA的可能性,而不需要在步骤之间进行任何产物分离,通过将Ag阴极反应与MnO x阳极反应结合使用相同的电解质。由于阴极和阳极反应都涉及四个电子转移,将两个半反应结合在一个电化学反应器中可以消除对能量浪费的辅助反反应的需要,如析氢或水氧化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Direct Electrosynthesis of an Amino Acid from a Biomass Derivative.

The electrochemical synthesis of nitrogen-containing molecules from biomass-derived compounds under ambient conditions is demonstrated, relying only on green sources of feedstock, renewable energy, and water. In this study, we report a two-step method of electrochemically synthesizing 5-(aminomethyl)furan-2-carboxylic acid (AFCA) from 5-hydroxymethylfurfural (HMF) using hydroxylamine (NH2OH) as the nitrogen source in an acidic electrolyte. In the first step, HMF was reductively aminated into (5-(aminomethyl)furan-2-yl)methanol (HMFA) using NH2OH as the source of nitrogen. This was followed by a second step, involving the oxidation of HMFA to AFCA on a manganese oxide (MnO x ) anode at the same pH. MnO x was able to selectively oxidize the alcohol group on HMFA to produce AFCA with 35% Faradaic efficiency without affecting the amine group. As both of these reactions are completed in a pH 1 electrolyte, it eliminates the need to separate HMFA before proceeding with the second reaction. Among different metal electrodes (Ag, Au, Cu, Pb, Pt and Sn) tested for the electrochemical reductive amination reaction, Ag electrodes displayed the best performance to selectively aminate HMF to the intermediate species, HMFA, with up to 69% Faradaic efficiency at mild potentials of -0.50 VRHE. Density functional theory calculations were carried out to explore a possible reaction pathway for the reductive amination on Ag(111), which suggests a thermodynamically feasible reaction even at 0 VRHE. The cathodic experimental reaction parameters were optimized to reveal that an electrolyte pH of 1 is optimal for the electrochemical reductive amination reaction. Our work shapes the future possibility of an electrochemical synthesis to produce AFCA without the need for any product separation between steps by combining the Ag cathode reaction to the MnO x anode reaction sharing the same electrolyte. Since both the cathode and anode reactions both involve four electrons transferred, combining both half reactions in a single electrochemical reactor can eliminate the need for energy-wasting auxiliary counter reactions such as hydrogen evolution or water oxidation.

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