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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Graphitic nitrogen in carbon catalysts is important for the reduction of nitrite as revealed by naturally abundant N-15 NMR spectroscopy
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Graphitic nitrogen in carbon catalysts is important for the reduction of nitrite as revealed by naturally abundant N-15 NMR spectroscopy

机译:碳催化剂中的石墨氮对于通过天然丰富的N-15 NMR光谱揭示的亚硝酸盐的减少是重要的

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Metal-free nitrogen-doped carbon is considered as a green functional material, but the structural determination of the atomic positions of nitrogen remains challenging. We recently demonstrated that directly-excited solid state N-15 NMR (ssNMR) spectroscopy is a powerful tool for the determination of such positions in N-doped carbon at natural N-15 isotope abundance. Here we report a green chemistry approach for the synthesis of N-doped carbon using cellulose as a precursor, and a study of the catalytic properties and atomic structures of the related catalyst. N-doped carbon (NH3) was obtained by the oxidation of cellulose with HNO3 followed by ammonolysis at 800 degrees C. It had a N content of 6.5 wt% and a surface area of 557 m(2) g(-1), and N-15 ssNMR spectroscopy provided evidence for graphitic nitrogen besides regular pyrrolic and pyridinic nitrogen. This structural determination allowed probing the role of graphitic nitrogen in electrocatalytic reactions, such as the hydrogen evolution reaction (HER), oxygen evolution reaction (OER), and nitrite reduction reaction. The N-doped carbon catalyst (NH3) showed higher electrocatalytic activities in the OER and HER under alkaline conditions and higher activity for nitrite reduction, as compared with a catalyst prepared by the carbonization of HNO3-treated cellulose in N-2. The electrocatalytic selectivity for nitrite reduction of the N-doped carbon catalyst (NH3) was directly related to the graphitic nitrogen functions. Complementary structural analyses by means of C-13 and H-1 ssNMR, scanning electron microscopy (SEM), transmission electron microscopy (TEM), X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), Raman spectroscopy, and low-temperature N-2 adsorption were performed and provided support to the findings. The results show that directly-excited N-15 ssNMR spectroscopy at natural N-15 abundance is generally capable of providing information on N-doped carbon materials if relaxation properties are favorable. It is expected that this approach can be applied to a wide range of solids with an intermediate concentration of N atoms.
机译:无金属氮掺杂碳被认为是一种绿色功能材料,但氮原子位置的结构测定仍然具有挑战性。我们最近证明,直接激发的固态N-15 NMR(ssNMR)光谱是一种强大的工具,可以在天然N-15同位素丰度下测定掺氮碳中的此类位置。本文报道了一种以纤维素为前驱体合成氮掺杂碳的绿色化学方法,并对相关催化剂的催化性能和原子结构进行了研究。掺氮碳(NH3)是通过纤维素与HNO3氧化,然后在800℃下氨解得到的。它的氮含量为6.5 wt%,表面积为557 m(2)g(-1),N-15 ssNMR谱提供了除了常规吡咯氮和吡啶氮之外的石墨氮证据。这种结构测定允许探测石墨氮在电催化反应中的作用,例如析氢反应(HER)、析氧反应(OER)和亚硝酸盐还原反应。与通过在N-2中碳化HNO3处理过的纤维素制备的催化剂相比,在碱性条件下,N掺杂的碳催化剂(NH3)在OER和HER中表现出更高的电催化活性和亚硝酸盐还原活性。氮掺杂碳催化剂(NH3)对亚硝酸盐还原的电催化选择性与石墨氮功能直接相关。通过C-13和H-1 ssNMR、扫描电子显微镜(SEM)、透射电子显微镜(TEM)、X射线衍射(XRD)、X射线光电子能谱(XPS)、拉曼光谱和低温N-2吸附进行了补充结构分析,并为研究结果提供了支持。结果表明,如果弛豫性能良好,在天然N-15丰度下直接激发的N-15 ssNMR谱通常能够提供有关N掺杂碳材料的信息。预计这种方法可以应用于具有中等浓度N原子的大范围固体。

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