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使用新型 BiVO/FeMn LDH 纳米复合材料的超声催化氧化脱硫柴油。

Sonocatalytic oxidative desulfurization of diesel oil using a novel BiVO/FeMn LDH nanocomposite.

机构信息

Refining Department, Egyptian Petroleum Research Institute, Nasr City, 11727, Egypt.

Analysis and Evaluation Department, Egyptian Petroleum Research Institute, Nasr City, 11727, Egypt.

出版信息

Dalton Trans. 2023 Jul 11;52(27):9315-9327. doi: 10.1039/d3dt01080e.

Abstract

A novel BiVO/FeMn layered double hydroxide (LDH) nanocomposite was fabricated and applied for green and efficient ultrasound-assisted oxidative desulfurization (UAODS) of real fuel (hydrotreated oil). The physicochemical properties of the prepared BiVO/FeMn LDH nanocomposites are elucidated using techniques such as XRD, FT-IR, BET, SEM, XPS, Raman, and TGA. The desulfurization results revealed that both BiVO and FeMn LDH were crucial in the UAODS process in the presence of HO as a green oxidant and acetonitrile as an extracting solvent. The desulfurization activity was optimized by varying the process conditions (time, catalyst weight, type of oxidant, O/S molar ratio, ratio of solvent to oil, and type of sonicator). The prepared nanocomposite exhibited remarkable desulfurization performance, reaching up to 99.8% under the optimized reaction conditions. Moreover, the catalyst exhibited high stability and could be reused four times without a notable decline in the performance. Significantly, this research reveals the robustness of the newly synthesized nanocomposite for efficient UAODS in a short time and low catalyst dosage. The proposed desulfurization mechanism was investigated.

摘要

一种新型的 BiVO/FeMn 层状双氢氧化物(LDH)纳米复合材料被制备出来,并应用于绿色高效的超声辅助氧化脱硫(UAODS)实际燃料(加氢处理油)中。通过 XRD、FT-IR、BET、SEM、XPS、Raman 和 TGA 等技术阐明了制备的 BiVO/FeMn LDH 纳米复合材料的物理化学性质。脱硫结果表明,在 HO 作为绿色氧化剂和乙腈作为萃取溶剂的存在下,BiVO 和 FeMn LDH 对 UAODS 过程都至关重要。通过改变工艺条件(时间、催化剂重量、氧化剂类型、O/S 摩尔比、溶剂与油的比例和超声仪类型)优化了脱硫活性。制备的纳米复合材料表现出优异的脱硫性能,在优化的反应条件下脱硫率高达 99.8%。此外,催化剂表现出高稳定性,可重复使用四次,性能没有明显下降。值得注意的是,这项研究揭示了新合成的纳米复合材料在短时间内和低催化剂用量下高效 UAODS 的稳健性。提出了脱硫机理的研究。

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