Abstract
Catalytic oxidation of organic sulfides is of considerable significance in industrial chemistry and fuel industry. Therefore, numerous methods have been developed for the oxidation. Metal-containing ionic liquid-based catalysts can catalyze the selective oxidation reactions and are highly used in chemical processes, which have also been used as effective solvents, reaction media, extractants, and catalysts for the oxidation of organic sulfides including oxidative desulfurization of fuel oil. Recently, much attention is being drawn to the preparation of heterogenous catalysts based on the immobilization of metal- or nonmetal-containing ILs on diverse solid supports, which can be easily separated after the completion reaction and recycled. Therefore, there is still an increasing interest in developing new and efficient catalytic procedures for the oxidation of organic sulfides. In this review, we have outlined the recent advances in catalytic oxidation of organic sulfides including oxidative desulfurization of fuel oil. The versatilities and adaptabilities of metal–ionic liquid catalytic systems in the selective oxidation of sulfides are considered a powerful research field in these transformations.
Introduction
Ionic liquids (ILs) have been considered an encouraging class of functional and green materials because of their unique properties such as non-volatility, non-flammability, adjustable structure, thermal and chemical stability, and nonexplosion. As a result, ILs are widely used in catalytic reaction and separation and can be used as reaction solvents, reaction media, and catalysts in catalytic reactions (; ; ; ; ; ). In many cases, for easy separation and recyclable utilization, functional ILs have attracted considerable attention in many fields such as immobilized ILs catalysts, which could transfer the traditional catalytic reactions from homogenous catalysis to a type of heterogenous catalysis, and no additional metal-containing catalysts are needed. Recently, the immobilization of ILs onto various polymeric and inorganic solid supports for the formation of functional-supported ILs has attracted a surge of interest in industrially important catalytic processes. Such supported IL heterogenous catalytic systems not only reduce cost and enhance catalytic efficiency (high catalytic activity owing to a uniform distribution of ionic liquid-active species) but also facilitate catalyst separation and reutilization (they can be easily separated from the reaction products for further reusability). Various novel concepts of efficient and recyclable heterogenous catalytic systems based on supported ILs have been developed, which have been designed via the immobilization of metal- or nonmetal-containing ILs on diverse solid supports, which served as highly efficient catalysts in catalytic processes combining the unique properties of ILs and the attractive features of easy separation and recyclability (; ; ).
Catalytic oxidation of organic sulfides is of considerable significance in industrial chemistry and fuel industry. The oxidations of sulfides to sulfoxides or sulfones are powerful reactions in industrial chemistry since the products sulfoxides or sulfones are important intermediates for the synthesis of valuable intermediates, pharmaceuticals, and natural products. Recently, the oxidation reactions with environmental-friendly oxidants using various metal-based catalysts have been reported for this transformation (; Zhang and Qi, 2018; Zhao et al., 2020). Deep desulfurization of fuel oil has attracted wide interest because of more stringent legislation and an increasing need for environmental protection. Therefore, numerous methods have been developed for the deep desulfurization of fuel oil, and a powerful method constitutes the oxidative desulfurization (ODS). In a typical ODS process, organic sulfides of fuels, such as DBT and its derivatives, can be oxidized to their corresponding sulfoxides and sulfones, followed by extraction or adsorption to achieve deep desulfurization of fuels, and a number of catalytic systems have been reported for the technology (Zhao and Baker, 2015; ; Yang et al., 2017; ; ; ). However, because of the drawbacks associated with the use of large amount of catalyst, difficulties in the separation, and catalyst recycling, new and efficient catalysts are being demanded.
In order to solve the problems described previously, the concept of metal–ionic liquid catalytic systems is being established, which could catalyze many reactions and are highly used in catalytic selective oxidation processes (; ; ; Zhang et al., 2012; Zhang et al., 2013; ; ; ; ). In recent research studies, numerous articles about ODS with ILs have been reported. Some functionalized ILs can act as both catalysts and extractive reagents, which combined the extraction with oxidative desulfurization (ECODS) (; ; ). For this reason, we emphasize the removal of sulfides being achieved by the oxidation process. Very recently, many studies have progressed on preparation and application of metal-containing ionic liquid-based catalysts including supported ionic liquids. Based on the aforementioned summarizations and inspired by the reports on the development of metal-containing ionic liquid-based catalysts in selective oxidation, which has attracted extensive attentions, it is a hot spot to study how to apply the prepared metal-containing ionic liquid-based catalysts in the catalytic oxidation of organic sulfides and oxidative desulfurization. In this review, we explore the current trends in the research directions toward the catalytic oxidation of organic sulfides and oxidative desulfurization in the presence of metal-containing ionic liquid-based catalytic systems, in which ILs and supported ILs are used as solvents, extractants, reaction media, catalysts, or their combinations during catalytic processes. The purpose of this review is to summarize first the facile route of the metal–ionic liquid catalytic systems for the efficient oxidation of organic sulfides including oxidative desulfurization of fuel oil, which would provide a new idea for the selective oxidation of sulfides with a strong connection to the chemical industry.
Oxidation of Sulfides to Sulfones or Sulfoxides
Wang et al. prepared a bifunctional ionic liquid bis-[N-(propyl-1-sulfoacid)-pyridinium] hexafluorotitanate 1 and studied its catalytic performances in the selective sulfoxidation of sulfides with H2O2 in (Bpy)BF4 (). It was found that the catalytic system could efficiently catalyze the sulfoxidation, and a series of sulfides with different electronic and steric effects could be efficiently converted into the corresponding sulfoxides with 83–97% selectivity and 79–98% conversion at room temperature. Furthermore, for practical application, the request for easily separable and recyclable catalysts is driven by economic considerations and environmental concerns. Upon completion of the reaction, the IL catalytic system can be easily recovered and reused for six cycles without significant loss of its activity (Scheme 1).
SCHEME 1
Hu et al. developed an efficient and green method for the aerobic oxidation of sulfides to sulfoxides catalyzed by manganese acetate [Mn(OAc)2] in the ionic liquid reaction media [(C12mim)(NO3)] system (Scheme 2A). The reactions afford the target products in good to high yields, and no over-oxidation was observed (
SCHEME 2

(A) Catalytic oxidation of sulfides to sulfoxides (
Zhao et al. reported the synthesis of a type of ionic liquid-based polyoxometalate (POM) salts through anion-exchange of imidazolium IL precursors with various Keggin POMs. The resultant imidazolium POM salts were shown to be highly effective catalysts for the selective oxidation of a variety of sulfides with aqueous H2O2 (Zhao, et al., 2012). The notable advantages of this method are high catalytic activity, convenient recovery, steady reuse, simple work-up, flexible composition, and mild reaction conditions. The preparation of the catalyst/reaction media dual role of the imidazolium ionic liquid-based POM salts and the catalytic oxidation procedure are shown in Scheme 3.
SCHEME 3

Synthesis of the imidazolium IL POM salts (Cn+2mim)3PM and their catalytic oxidations of sulfides with H2O2 (Zhao, et al., 2012).
Rafiee et al. synthesized a type of Keggin-structured polyoxometalate-based ionic liquids by a two-step reaction including sulfonate-functionalized cations with Keggin-structured POM. The resultant ionic liquids, POM-ILs, were employed as a catalyst for the selective oxidation of sulfides to the corresponding sulfoxides (
Bigi et al. developed a procedure for the enantioselective oxidation of methyl phenyl sulfide with CH2Cl2 as a solvent and UHP as an oxidant using trihexyltetradecylphosphonium ionic liquids {[P6 6 6 14]2[WO2(S-binol)2], [P6 6 6 14]2[WO2(S-mand)2]} containing tungsten(VI)-2,2′-(S)-binaphthol complex anions as efficient and recyclable catalysts under mild reaction conditions (
Fareghi-Alamdari et al. reported the synthesis of a novel Keplerate anions-based ionic liquid catalyst (NH4)2(MimAm)40[Mo132O372(CH3COO)30(H2O)72] (Mo132-MimAM) through the self-assembly strategy. The resultant Keplerate anions-based ionic liquid was shown to be a green, highly efficient, and reusable catalyst for the selective oxidation of a variety of sulfides with H2O2 to sulfoxides (
Zhou et al. prepared a new class of IL-stabilized Nb oxoclusters by coordination stabilization with carboxylate ionic liquids and studied their catalytic performances in the selective oxidation of sulfides with H2O2 in CH3OH solvent (Zhou et al., 2019). It was found that the ionic liquid tetrabutylammonium lactate [(TBA)(LA)]-stabilized Nb oxoclusters [Nb-OC@(TBA)(LA)] were uniformly dispersed with an average particle size of 2–3 nm and could efficiently catalyze the selective oxidation, and a number of sulfides could be efficiently converted into the corresponding sulfoxides or sulfones by adjusting the equivalent of H2O2, reaction time, and reaction temperature. Interestingly, the results also confirmed that sulfoxides could be produced almost stoichiometrically, and sulfones could be produced with excellent selectivity under higher temperatures (50 or 60 °C) and more amounts of H2O2 oxidant (Scheme 4). Furthermore, it was found that Nb-OC@(TBA)(LA) could be reused for at least five consecutive cycles with high selectivity to sulfoxide although the activity had a slight decrease possibly due to the slight aggregation of the catalyst.
SCHEME 4

Reaction route for selective oxidation of sulfides with the Nb oxocluster catalyst (Zhou et al., 2019).
Rafiee et al. reported the selective oxidation of sulfides with H2O2 as an oxidant in the presence of organic–inorganic poly(4-vinylpyridine)-supported ionic liquid catalyst PVPyPSPMo10V2. A range of aryl sulfides were smoothly converted into the corresponding sulfoxides with high yields (95–98%) in short reaction times of 2–12 min (
Doherty et al. developed a procedure for the one-pot synthesis of sulfoxides via the selective oxidation of sulfides with ethanol solvent and mobile phase using styrene-based peroxotungstate-modified polymer-immobilized imidazolium ionic liquids {PO4[WO(O2)2]4}@ImPIILP as powerful and recyclable catalysts under mild reaction conditions (
Zhang et al. synthesized a series of enzyme-inspired SCPNs-containing vinylimidazolium ionic liquid-modified chiral salen TiIV complex (Scheme 5), and these resultant SCPNs were tested as efficient catalysts in the selective asymmetric sulfoxidation of a variety of sulfides in the water solvent with H2O2 oxidant under mild conditions. The results showed that PN68(IS)4 demonstrated the most excellent catalytic performance, and a range of aryl sulfides were smoothly converted into the corresponding sulfoxides with high conversions (>99%) and selectivities (95–99%). In addition, the catalysts could be easily separated from the aqueous system and be steadily reused in recycling oxidations due to the thermo-responsive property (Zhang L. et al., 2017).
SCHEME 5

Schematic representation of synthesis and self-folding of PNx(IS)y (Zhang Y et al., 2017).
Pourjavadi et al. prepared a new heterogenous catalytic system by immobilization of tungstate ions on cross-linked poly(ionic liquid) nanogel and studied its catalytic performance in the selective oxidation of sulfides to sulfoxides with H2O2 under solvent-free reaction conditions (
Doherty et al. prepared novel heterogenous polymer-immobilized ionic liquid {PO4[WO(O2)2]4}@PIILP via anion exchange, which was employed as an efficient catalyst for the selective oxidation of sulfides under mild conditions (
Tarkhanova et al. synthesized a family of silica-supported Cu- and Mo-containing imidazolium ionic liquids, which were tested as an active and green catalyst for selective oxidation of diethyl sulfide and methyl phenyl sulfide (
Tarkhanova et al. also reported the synthesis of mineral-immobilized ionic liquids based on molybdenum- and tungsten-containing heteropolyacids, which were tested as an efficient heterogenous catalyst for selective oxidation of thiophene with hydrogen peroxide oxidant in an isooctane solvent (
Hosseini et al. reported the selective oxidation of sulfides with H2O2 as an oxidant catalyzed by magnetic-supported triazine-based ionic liquid MNP@TA-IL/W at room temperature. Various sulfides could be smoothly converted into the corresponding sulfoxides with high conversions (83–99%) and excellent yields (95–99%) in 1–3 h (
SCHEME 6

Preparation of MNP@TA-IL/W and catalytic oxidation of sulfides to sulfoxides (
Li et al. reported novel modular polyoxometalate-layered double hydroxides Mg3Al-ILs-La(PW11)2 and used the catalyst for the selective oxidation of sulfides to sulfoxides with H2O2 as a green oxidant in methanol (
Karimi et al. synthesized a novel periodic mesoporous organosilica-supported ionic liquid (WO42−@PMO-IL) and then employed it as a catalyst for the selective oxidation of sulfides to the corresponding sulfoxides (
Sedrpoushan et al. prepared a new heterogenous catalyst (SBA-15/Im/WO42−) and studied its catalytic performance in the selective oxidation of organic sulfides with H2O2 under neutral conditions. Various sulfides could be efficiently converted into the corresponding sulfoxides with good to excellent yields and selectivities (
SCHEME 7

Pathways of WO 42−@SBA-15/IL fabrication and catalytic oxidation of organic sulfides (
Carrasco et al. prepared a mesoporous SBA-15-supported ionic liquid SBA-15 + ImCl + MoO5 by the reaction of 1-methyl-3-[3-(triethoxysilyl)propyl]-1H-imidazol-3-ium chloride with SBA-15 support and then followed by the immobilization of the oxodiperoxo–molybdenum complex (
Moaser et al. prepared a new heterogenous catalyst by immobilization of the molybdenum (VI)-based oxido–peroxido complex on periodic mesoporous organosilica-supported bipyridinium ionic liquid MoO(O2)2@Bipy-PMO-IL and studied its catalytic performance in the selective oxidation of sulfides to sulfoxides with H2O2 in water (
Hosseini-Eshbala et al. prepared a novel hybrid nanocatalyst (CMK-3-OctIm/MoO4=) by immobilization of molybdate ions (MoO42-) on octylimidazolium ionic liquid-modified ordered hexagonal mesoporous carbon CMK-3 (CMK-3/OctIm) and studied its catalytic performance in the selective oxidation of sulfides to sulfoxides with H2O2 in acetonitrile (
Rajabi et al. developed an efficient method for the selective aerobic oxidation of sulfides to sulfoxides or sulfones catalyzed by tungstate-functionalized Brönsted acidic ionic liquid PMO-IL-WO42- with H2O solvent (
Deep Oxidative Desulfurization
Wang et al. prepared a series of pristine V2O5/SBA-15 composites and tested their catalytic performance for the oxidative desulfurization of fuels with molecular oxygen (O2) in ionic liquid (Bmim)BF4. The catalytic system showed a good catalytic activity in the oxidative desulfurization, and sulfur compounds in oils could be extracted into the IL phase and oxidized to their corresponding sulfones (
Guo et al. prepared a novel material Mg3Al-Mo6 by a one-pot hydrothermal method of (Mo6O19)2− anion intercalation into layered double hydroxides and tested its catalytic performance for the oxidative desulfurization of fuels with H2O2 in ionic liquid (Bmim)PF6. The catalytic system showed superior catalytic activity in the oxidative desulfurization, and sulfur compounds in oils could be extracted into ionic liquid and converted to sulfones (
SCHEME 8

Catalytic mechanism of sulfur removal for DBT (
Hao et al. prepared a novel polyoxometalates-based ionic liquid (PyPS)3(NH4)3Mo7O24 and employed it as a catalyst for the oxidation/extractive desulfurization of model and actual diesel with hydrogen peroxide oxidant in IL (Omim)BF4 extraction solvent (
Huang et al. prepared a new heteropolyanion-based ionic liquid (PSPy)3PW12O40 [(PSPy)3PW] and employed it as an effective catalyst for the oxidation/extractive desulfurization of fuels with hydrogen peroxide oxidant in ionic liquid (Omim)PF6 extraction solvent (
SCHEME 9

Structure of ILs and catalytic oxidation/extractive desulfurization of fuels.
Saikia et al. reported a method for the oxidation of organic sulfur (aryls) components to sulfones with H2O2 in extractive coupled with catalytic oxidative desulfurization in the presence of HCOOH/H2O2 and V2O5 and ionic liquid 1-n-butyl-3-methylimidazolium tetrafluoroborate (IL1) or 1-n-butyl 3-methylimidazolium chloride (IL2) (
Shao et al. prepared a series of imidazolium-based phosphoric ionic liquids [(Mmim)DMP, (Emim)DEP, (Bmim)DBP] and employed those in the extraction and catalytic oxidation desulfurization system (ECODS) from a model diesel fuel with the hexaammonium heptamolybdate tetrahydrate (NH4)6Mo7O24·4H2O) catalyst and 30%H2O2 oxidant (
SCHEME 10

Synthesis of the ionic liquids and the catalytic process of extraction coupled with catalytic oxidation of 4,6-DMDBT.
Zhang et al. synthesized a kind of superbase-derived Lewis acidic ionic liquid with the protonated 1,5-diazabicyclo(4.3.0)-non-3-ene (DBN) cation and the ZnCl2-based complex anion (HDBN)Cl/nZnCl2 (Supplementary Scheme S19). (HDBN)Cl/nZnCl2 was shown to be effective catalysts for the extraction-combined oxidative desulfurization (ECODS) process of both model oil and real diesel with hydrogen peroxide (Zhang L. et al., 2017). The results showed that [HDBN]Cl/ZnCl2 exhibited the best activity in the oxidative desulfurization with complete removal of dibenzothiophene compound in oil. In addition, the catalyst (HDBN)Cl/ZnCl2 is recyclable and reusable and retains activity after five cycles with no noticeable changes in sulfur removal performance (Supplementary Figure S3).
Li et al. synthesized a type of polyoxometalates-based ionic liquids (POM-ILs) (Bmim)5[PMo11M(H2O)O39] (M = Co2+, Ni2+, Zn2+, Mn2+) containing transition metal mono-substituted Keggin-type phosphomolybdates. Then, (Bmim)5[PMo11M(H2O)O39] was used as catalysts for the oxidation/extractive desulfurization of model oil with hydrogen peroxide oxidant in ILs extraction solvent (
SCHEME 11

Catalytic mechanism of extractive and oxidation desulfurization (ECODS).
Wang et al. synthesized a type of Lewis acidic ionic liquid with alkylated 1,8-dia-zabicyclo[5.4.0]undec-7-ene (DBU) cation and the ZnCl2-based complex anion [ODBU]Cl/nZnCl2 (Supplementary Scheme S20). (ODBU)Cl/nZnCl2 was shown to be effective catalysts for the extraction-combined oxidative desulfurization (ECODS) process of both model oil and real diesel with 30%H2O2 oxidant (
Chen et al. prepared a series of Brønsted–Lewis acidic ILs of N-methylpyrrolidonium zinc chloride[ (Hnmp)Clx/(ZnCl2)y, x:y from 2:1 to 1:2] and studied their catalytic performances for the oxidative desulfurization of both model diesel fuel and real FCC diesel fuel with 30%H2O2 oxidant (Scheme 12). In this catalytic system, these ILs could be used as both the extractant and catalyst; IL composition also has an important effect on sulfur removal efficiency. It was found that the ionic liquid (Hnmp)Cl/ZnCl2 showed the highest desulfurization activity with 99.9% S-removal in model diesel fuel (S-content can be reduced from 500 ppm to <1 ppm), and with 97.6% S-removal in FCC diesel fuel after five stages (S-content can be reduced to 5.3 ppm) (
SCHEME 12

Synthesis of (Hnmp)Cl/ZnCl2 and catalytic oxidation desulfurization using Brønsted−Lewis acidic IL (Hnmp)Cl/ZnCl2 with H2O2 in this ODS system.
Xu et al. prepared a type of silica gel-supported ionic liquid (Bmim)CoCl3/SG via the simple sol–gel method and employed it as a heterogenous catalyst in the extraction and catalytic oxidation desulfurization system (ECODS) from a simulated fuel oil with oxone oxidant in ionic liquid (Bmim)BF4 (Xu et al., 2021). It was found that the extractive catalytic system (Bmim)CoCl3/SG/(Bmim)BF4 could achieve deep desulfurization with a desulfurization rate of 99.5% for DBT. Moreover, the desulfurization results revealed that the desulfurization of the three sulfur-containing substances followed the order of DBT > BT > 4,6-DMDBT (Supplementary Figure S6). Additionally, the catalytic system could be reused five times with no significant decrease in activity (all the desulfurization rate above 90%).
Xun et al. reported a method for the oxidation of sulfur compounds to sulfones with H2O2 in extractive coupled with catalytic oxidative desulfurization (ECODS) in the presence of supported ionic liquid [Bmim]FeCl4/Am TiO2 (Scheme 13. It was found that [Bmim]FeCl4 and Am TiO2 had a synergistic effect on the catalytic oxidation desulfurization (Xun et al., 2015). Furthermore, the catalyst could be easily recovered and reused 25 times with no significant decrease in its activity (Supplementary Figure S7).
SCHEME 13

Preparation of the supported ionic liquid catalyst [Bmim]FeCl4/Am TiO2.
Yuan et al. prepared the SBA-15-supported silicotungstic acid ionic liquid HSiW-IL/SBA-15 via a covalent grafting method (Scheme 14). The supported catalyst showed excellent catalytic activity in the oxidative desulfurization of fuels with H2O2. The SBA-15-supported ionic liquid catalyst, 0.2HSiW-IL/SBA-15, was found to be more active than other HSiW different loading catalysts such as 0.05HSiW-IL/SBA-15, 0.1HSiW-IL/SBA-15, 0.2HSiW-IL/SBA-15, and 0.3HSiW-IL/SBA-15 (Yuan et al., 2016). The performance of the catalyst 0.2HSiW-IL/SBA-15 can be retained for eight experiments, and the sulfur removal still remained at 96.4% (Supplementary Figure S8).
SCHEME 14

Synthetic process of HSiW-IL/SBA-15.
Jiang et al. prepared two kinds of magnetic catalysts (IL/MMS-S and IL/MMS-L) by the immobilization of ionic liquid [(C18H37)2(CH3)2N]3PW12O40 on the small core-shell magnetic mesoporous silica (MMS-S) or large core-shell magnetic mesoporous silica (MMS-L) microspheres and tested their catalytic performance for the oxidative desulfurization of diesel fuel with H2O2 (
Ding et al. prepared a novel SBA-15-supported iron-based redox ionic liquid (pmim)FeCl4-SBA-15 and employed it as a catalyst for the oxidation desulfurization of model oil with hydrogen peroxide oxidant in (Omim)BF4 extraction solvent (
Xun et al. prepared a new few-layered graphitic carbon nitride (g-C3N4) supported quaternary phosphonium ionic liquid [(C6H13)3PC14H29]3PMo12O40 (C14PPMo IL) and employed it as a heterogenous catalyst for the oxidative desulfurization of model oil with hydrogen peroxide under solvent-free conditions (Xun et al., 2020). The results showed that the supported catalyst 5% C14PPMo/g-C3N4 exhibited extraordinary catalytic activity in the oxidative desulfurization with 100% sulfur-removal of DBT and 94.8% removal of 4,6-DMDBT after a 180-min reaction under mild conditions (Supplementary Figure S10). Moreover, the catalyst could be easily separated and reused six times with no obvious decrease in activity with the oxidative removal efficiency of 93.8% for DBT and 90.2% for 4,6-DMDBT.
Kermani et al. prepared a novel magnetic silica-supported ionic liquid [MSN/IL-(Mo132)] via the immobilization of Keplerate nanoball iso-polyoxomolybdate (Mo132) on ionic liquid-functionalized magnetic silica nanoparticles (MSN/IL) and employed it as an effective catalyst for the deep oxidative desulfurization of a model fuel containing DBT with hydrogen peroxide as an oxidant (
FIGURE 1

Catalytic oxidation of DBT using H2O2 over MSN/IL-(Mo132) catalyst (A) before and (B) after the ODS process (
Conclusion and Outlooks
In summary, in this review, we have reported a serial of efficient procedures for the oxidation of organic sulfides including oxidative desulfurization of fuel oil. Various metal–ionic liquid-based catalytic systems having highly promising future prospects in the field of oxidation of organic sulfides have been investigated. It is to be expected that in future the scope and diversity of oxidation applications using ionic liquid-based catalysts will be further increasing; the possibilities of heterogenous-supported ionic liquid catalysts to reduce environmental pollution and to make experimental procedures simple and easy will be expanded. The traditional catalysts that have been used in oxidation reactions will be progressively replaced by green and environmental-friendly catalysts such as ionic liquids. However, the limitations of ILs such as the unknown toxicity and stability, recyclability, and economic problems blocked the industrial application in the selective oxidation. Future efforts in the development of novel and highly efficient ionic liquid-based catalysts for the selective oxidation of organic sulfides including oxidative desulfurization of fuel oil are still needed. The integration of ILs as an efficient solvent and catalyst with molecular oxygen as oxidant technologies, including functional IL synthesis, molecular oxygen activation, oxidation process, and catalyst recovery utilization is necessary to improve the actual efficiency. Furthermore, more efforts should be carried out on the study of oxidation mechanism, dynamic and thermodynamic models, reactor hydrodynamics, continuous-flow stirred tank oxidation reactor, and novel-supported IL catalysts for the solvent- and co-catalyst-free continuous-flow selective oxidation under mild conditions. Efforts in developing novel catalytic systems would probably offer new ways to find out which process can be ultimately applied in practical production. We believe that the development of efficient and economic ionic liquid-based catalytic systems will greatly broaden the future scopes and applications in the selective oxidation of organic sulfides.
Statements
Author contributions
XBL, QR, and JT wrote the manuscript. CC modified the manuscript. YLH modified and supervised the manuscript.
Funding
Financial support was provided by the Research Foundation of Yichang Science and Technology Bureau (A21-3-009), the Jiangxi Provincial Natural Science Foundation (20202BABL203023), the 111 Project of Hubei Province (2018-19-1), and the Research Fund for Excellent Dissertation of China Three Gorges University (2021SSPY049).
Conflict of interest
The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
Publisher’s note
All claims expressed in this article are solely those of the authors and do not necessarily represent those of their affiliated organizations, or those of the publisher, the editors, and the reviewers. Any product that may be evaluated in this article, or claim that may be made by its manufacturer, is not guaranteed or endorsed by the publisher.
Supplementary material
The Supplementary Material for this article can be found online at: https://www.frontiersin.org/articles/10.3389/fchem.2021.798603/full#supplementary-material
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Summary
Keywords
ionic liquid, metal, oxidation of organic sulfides, oxidative desulfurization, application, recent advance
Citation
Liu XB, Rong Q, Tan J, Chen C and Hu YL (2022) Recent Advances in Catalytic Oxidation of Organic Sulfides: Applications of Metal–Ionic Liquid Catalytic Systems. Front. Chem. 9:798603. doi: 10.3389/fchem.2021.798603
Received
20 October 2021
Accepted
20 December 2021
Published
28 February 2022
Volume
9 - 2021
Edited by
Suman Mukhopadhyay, Indian Institute of Technology Indore, India
Reviewed by
Francisco Montilla, Sevilla University, Spain
Salete S. Balula, Chemistry and Technology Network (REQUIMTE), Portugal
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© 2022 Liu, Rong, Tan, Chen and Hu.
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*Correspondence: Yu Lin Hu, huyulin1982@163.com
This article was submitted to Catalysis and Photocatalysis, a section of the journal Frontiers in Chemistry
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