弛豫剂和氮解耦快速质子核磁共振检测水溶液氨。

IF 4.3 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
ACS Omega Pub Date : 2025-02-20 eCollection Date: 2025-03-04 DOI:10.1021/acsomega.5c00337
Xuelei Duan, Aitor Moreno, Youlin Xia, Zhijiao Ji, Rongjuan Cong, Linge Ma, Ming Xu, Xiaofang Zhang, Yu Zhou, Congyun Liu, Zhe Zhou
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引用次数: 0

摘要

从氮(N2)和氢(H2)合成氨(NH3)的Haber-Bosch工艺消耗了全球约2%的能源供应。一种可持续的替代方法是将N2直接电化学转化为NH3。通过测定电解液中存在的NH3来评价电催化剂的选择性和活性。与其他分析方法相比,1H NMR提供了一种直接的方法来检测NH3(通过分析NH4 +)。通过对比同位素标记15N2和常规14N2气体的结果,1H NMR方法也可以明确地证实检测到的氨来源于N2的电还原。这种能力是1H NMR方法所独有的,因为没有其他方法可以提供这种水平的特异性。但该方法在测量低浓度(如μM以下)的NH4 +时灵敏度较低。为了解决这个问题,我们开发了一种新的方法,通过在1H NMR数据采集过程中引入14N去耦,将灵敏度提高了约3倍。最近[Kolen M.ACS Omega2021, 6,5698 -5704]表明,使用1 mM浓度的顺磁弛缓剂Gd3+,灵敏度提高了约3.5倍。通过将14N去耦技术与松弛剂Gd3+相结合,我们实现了灵敏度的协同增强,导致14NH4 +的1H NMR检测灵敏度总体提高了~ 10.9倍。这意味着核磁共振检测时间减少了约119(10.92)倍。这一重大进步使得在μM浓度或更低的浓度下可以快速检测氨。并对15NH4 +与15N解耦的1H NMR进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Fast Proton NMR Detection of Aqueous Ammonia with Relaxation Agent and Nitrogen Decoupling.

Fast Proton NMR Detection of Aqueous Ammonia with Relaxation Agent and Nitrogen Decoupling.

Fast Proton NMR Detection of Aqueous Ammonia with Relaxation Agent and Nitrogen Decoupling.

Fast Proton NMR Detection of Aqueous Ammonia with Relaxation Agent and Nitrogen Decoupling.

The Haber-Bosch process, which synthesizes ammonia (NH3) from nitrogen (N2) and hydrogen (H2), consumes approximately 2% of the global energy supply. A sustainable alternative is the direct electrochemical conversion of N2 to NH3. The selectivity and activity of the electrocatalysts for this process are assessed by quantifying the NH3 present in the electrolyte. Compared with other analytical methods, 1H NMR offers a straightforward approach for detecting NH3 (by analyzing NH4 +). 1H NMR method can also definitely confirm that the detected ammonia originates from the electroreduction of N2 by comparing results obtained from isotopically labeled 15N2 and regular 14N2 gases. This capability is unique to the 1H NMR method, as no alternative approaches offer this level of specificity. However, this method suffers from low sensitivity when measuring NH4 + of low concentration of such as at μM or lower. To address this issue, we developed a novel approach that improves sensitivity by ∼3-fold through the introduction of 14N decoupling during the 1H NMR data acquisition. Recently [Kolen M.ACS Omega2021, 6, 5698-5704], demonstrated a ∼3.5-fold increase in sensitivity by using a 1 mM concentration of the paramagnetic relaxation agent Gd3+. By combining our 14N decoupling technique with the relaxation agent Gd3+, we achieved a synergistic enhancement in sensitivity, resulting in an overall ∼10.9-fold sensitivity increase for the 1H NMR detection of 14NH4 +. This translates to a reduction in NMR detection time by a factor of ∼119 (10.92). This significant advancement enables the fast detection of ammonia at μM concentration or lower. 1H NMR of 15NH4 + with 15N decoupling was also demonstrated.

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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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