Yuanxin Kou, Fanan Wang, Yun Lin, Di Liu, Mengtao Li, Yan Zhang, Wenting Wen, Junhong Huang, Rengui Weng and Gang Xu*,
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引用次数: 0
摘要
电催化5-羟甲基糠醛(HMF)氧化反应生成2,5-呋喃二羧酸(FDCA)被认为是替代耗能和危险的析氧反应和可再生生物质再生的一种有前途的方法。然而,它受到HMF对氧化环境敏感性的限制,需要高效的电催化剂。本文中,NiMo配合物(NiMo - n)作为HMFOR的预催化剂,在阳极电位1.4 V vs RHE(下同)、50 mmol/L (mM) HMF、95%以上HMF转化率和FDCA FE至少5次循环下,表现出450 mA·cm-2的良好性能。结合准原位和原位分析,证实了预催化剂中广泛的晶格畸变有利于深度重构,增加了可接近的Ni位点和缺陷氧空位(Ov),这些空位在反应过程中会迅速转化为高价Ni和活性O。性能的提高是由于HMF的化学吸附和脱氢能力的提高。
Lattice Distortions Promoting the In-Depth Reconstruction of Ni-Based Electrocatalysts with Enriched Oxygen Vacancies for the Electrochemical Oxidation of 5-Hydroxymethylfurfural toward 2,5-Furandicarboxylic Acid
The electrocatalytic 5-hydroxymethylfurfural (HMF) oxidation reaction (HMFOR) toward 2,5-furandicarboxylic acid (FDCA) has been considered a promising approach for the substitution of the energy-consuming and hazardous oxygen evolution reaction and for the valorization of renewable biomass. However, it is limited by the susceptibility of HMF to the oxidative environment and requires efficient electrocatalysts. Herein, a NiMo complex (NiMo–N) is provided as the precatalyst for the HMFOR, exhibiting favorable performances with a current density of 450 mA·cm–2 achieved at an anodic potential of 1.4 V vs RHE (similarly hereinafter) with 50 mmol/L (mM) HMF and over 95% HMF conversion and FDCA FE for at least five cycles. Combined with quasi situ and in situ analysis, it is confirmed that the extensive lattice distortions in the precatalyst facilitate the in-depth reconstruction, increasing the accessible Ni sites and defective oxygen vacancies (Ov), which would promptly convert to high-valence Ni and active O species during the reaction. The improved performance is then attributed to the incorporation of the improved chemisorption and dehydrogenation ability of HMF by the as-evolved active sites.
期刊介绍:
Inorganic Chemistry publishes fundamental studies in all phases of inorganic chemistry. Coverage includes experimental and theoretical reports on quantitative studies of structure and thermodynamics, kinetics, mechanisms of inorganic reactions, bioinorganic chemistry, and relevant aspects of organometallic chemistry, solid-state phenomena, and chemical bonding theory. Emphasis is placed on the synthesis, structure, thermodynamics, reactivity, spectroscopy, and bonding properties of significant new and known compounds.