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1.
Novel heterogeneous catalyst systems comprised of a fibrous nanosilica‐supported nano‐Ni@Pd‐based ionic liquid (KCC‐1/IL/Ni@Pd) are described for the cyclization of propargylic amines with CO2 to provide 2‐oxazolidinones. KCC‐1 with high surface area was functionalized with IL acting as a robust anchor so that the nano‐Ni@Pd was well dispersed on the fibres of the KCC‐1 microspheres, without aggregation. Because of the amplification effect of IL, high loading capacities of the nanocatalysts were achieved. The reported synthesis includes several advantages like solvent‐free conditions, operational simplicity, short reaction times, environmentally benign reaction conditions, cost effectiveness, high atom economy and excellent yields, making it a genuinely green protocol.  相似文献   

2.
KCC‐1/IL/Pd NPs can used as an excellent support for the synthesis of highly sparse homogeneous catalyst. KCC‐1 has high surface area that was functionalized with ionic liquid phase acting as the strong performers so that the Pd catalyst was well‐dispersed without aggregation on the framework of the KCC‐1/IL. This nano catalyst was specified by TGA, XRD, TEM, SEM, FT‐IR, and ICP. For reduction of 2‐nitroaniline and 4‐nitrophenol used from the KCC‐1/IL/Pd NPs as a green catalyst that showed excellent catalytic activities. Compared with the traditional substrate, KCC‐1 substantially increases protection and the accessibility of the nanoparticle sites due to its three dimensional hierarchical structure.  相似文献   

3.
The preparation of a novel palladium‐supported periodic mesoporous organosilica based on alkylimidazolium ionic liquid (Pd@PMO‐IL) in which imidazoilium ionic liquid is uniformly distributed in the silica mesoporous framework is described. Both Pd@PMO‐IL and the parent PMO‐IL were characterized by N2‐adsorption–desorption, diffuse reflectance infrared Fourier transform spectroscopy (DRIFTS), TEM, and solid‐state NMR spectroscopy. We have demonstrated that Pd@PMO‐IL is an efficient and reusable catalyst for the Suzuki–Miyaura coupling reaction of various types of iodo‐, bromo‐, and even deactivated aryl chlorides in water. It was also found that although the PMO‐IL nanostructure acts as reservoir for soluble Pd species, it can also operate as a nanoscaffold to recapture the Pd nanoparticles into the mesochannels thus preventing extensive agglomeration of Pd. This observation might be attributed to the isolated ionic liquid units that effectively control the reaction mechanism by preventing Pd agglomeration and releasing and recapturing Pd nanoparticles during the reaction process. The catalyst can be recovered and reused for at least four reaction cycles without significant loss of activity.  相似文献   

4.
We describe herein a highly elegant and suitable synthesis of amide products from alcohols and amines through a tandem oxidation process that uses molecular oxygen as a terminal oxidant. Carbon‐black‐stabilized polymer‐incarcerated gold (PICB‐Au) or gold/cobalt (PICB‐Au/Co) nanoparticles were employed as an efficient heterogeneous catalyst depending on alcohol reactivity and generated only water as the major co‐product of the reaction. A wide scope of substrate applicability was shown with 42 examples. The catalysts could be recovered and reused without loss of activity by using a simple operation.  相似文献   

5.
由简单小分子通过 C–C键偶联来构筑复杂多样的大分子是有机合成的重要方向.传统的 C–C键偶联反应一般使用卤代烃和金属有机化合物为底物,具有原子效率低、有害废弃物排放等缺点.因此,迫切需要发展一种绿色高效的 C–C键偶联方法.其中,以醇类化合物作为底物通过“氢转移”(脱氢/aldol缩合/加氢)实现 C–C键偶联的途径受到广泛关注.该方法具有诸多优点:(1)醇类化合物来源广泛、价格低廉、相对安全;(2)只产生 H2和 H2O,没有其它副产物.但由于醇类化合物(特别是仲醇)脱氢困难,该偶联反应条件一般比较苛刻.我们使用 O2来辅助仲醇脱氢,采用离子交换树脂负载的 Au6Pd纳米颗粒为催化剂,实现了温和条件下伯醇和仲醇的偶联反应.而且发现在氧化气氛下,反应过程中发生了“氢转移”现象,产物为饱和酮类化合物.通过设计对照实验并结合 XAFS(X–射线吸收光谱)表征结果,我们揭示了在 Au6Pd/resin催化剂上发生“氢转移”反应的机理. AuPd/resin催化剂采用离子交换–NaBH4还原法制备. TEM照片显示 Au, Pd以及双金属 AuPd纳米颗粒均匀分散在载体上,平均粒径为2–4 nm,而且随着 Au/Pd比例减小, AuPd纳米颗粒的粒径逐渐减小. XRD谱图显示,随着 Au/Pd比例减小, Au(111)衍射峰逐渐向高角度发生偏移,说明 AuPd形成了合金.我们以苯甲醇和(±)-1-苯乙醇氧化偶联为探针反应考察了催化剂的催化性能.结果显示,以 Au/resin和 Pd/resin为催化剂时,产物为不饱和酮.而以 AuPd/resin为催化剂时,转化率显著提高,说明 AuPd之间存在明显的协同作用.而且随着 Au/Pd比例增加,产物逐渐由不饱和酮转变为饱和酮,当 Au/Pd≥6时,产物完全为饱和酮,说明反应过程中发生了“氢转移”.为验证这一推测,我们以苯甲醇和查尔酮为底物在相同条件下反应.结果显示,以 Au/resin和 Pd/resin为催化剂时,查尔酮没有转化.而以 AuPd/resin为催化剂时,查尔酮大部分转化为饱和酮(转化率为91%),验证了反应中发生了“氢转移”的推测.为研究“氢转移”发生的机理,我们采用 XAFS对催化剂价态进行了表征. Pd元素 K边 X射线吸收谱图显示,随着催化剂中 Au/Pd比例的增加,E0值逐渐减小,说明 Pd价态逐渐降低. EXAFS拟合数据表明,随催化剂中 Au/Pd比例增加, Pd–O配位数逐渐减小.基于以上结果推断,在 AuPd/resin催化剂中,随着 Au/Pd比例的增加, Pd的抗氧化能力显著增强,更多的 Pd以 Pd(0)形式存在.结合文献报道结果,我们认为正是催化剂中的 Pd(0)夺取了醇的βC–H后生成了 Pd–H,而 Pd–H是“氢转移”反应的催化剂.另一方面,有文献报道,在氧化气氛下, O2也可以辅助脱除醇的βC–H.为区分 Pd(0)和 O2在脱除醇βC–H中的作用,我们对 Au6Pd/resin在惰性气氛下对伯醇(苯甲醇)或仲醇((±)-1–苯乙醇)转化的催化性能进行了考察.结果显示,苯甲醇可以转化为苯甲酸(收率为23%),而(±)-1–苯乙醇则完全没有转化.这说明伯醇可以直接被催化剂(Pd(0))活化,而仲醇的活化则必须有 O2参与.综上,我们提出伯醇和仲醇氧化偶联反应的机理: Au6Pd/resin催化伯醇转化为醛(同时产生 Pd–H物种),而 O2辅助活化仲醇转化为酮.醛和酮发生 aldol缩合生成α,β不饱和酮,该中间物种被 Pd–H加氢生成饱和产物.  相似文献   

6.
A new heterogeneous catalyst derived from gold (III) and supported on caffeine‐coated magnetic nanoparticles, Fe3O4@Caff‐Au, has been prepared and characterized using different techniques. This magnetic gold composite shows high catalytic activity in A3 coupling reactions of terminal alkynes, aldehydes and secondary amines. Using this green catalyst, propargylamines are obtained in high turnover frequency in short reaction times using water as solvent at room temperature. This stable and ready accessible catalyst can be easily recycled magnetically for at least nine consecutive runs without significant loss of activity and with slight aggregation of Au species.  相似文献   

7.
The synthesis and catalytic application of a novel MgO containing periodic mesoporous organosilica with ionic liquid framework (MgO@PMO‐IL) is described. The prepared MgO@PMO‐IL was characterized by Fourier transform‐infrared spectroscopy, N2 adsorption/desorption, transmission electron microscopy, field emission‐scanning electron microscopy, thermogravimetric and inductively coupled plasma analyses. This nanocatalyst was successfully applied as a highly efficient and recoverable catalyst for the synthesis of novel spirooxindole‐furan derivatives via the three‐component reaction of 1,3‐dicarbonyl compounds, N‐phenacyl pyridinium salts and isatin derivatives. The products were achieved in high to excellent yields with a simple work‐up procedure and short reaction times, and the catalyst could be recovered through a simple filtration process and successfully reused seven times without any significant decrease in its efficiency.  相似文献   

8.
The typical preparation route of carbon‐supported metallic catalyst is complex and uneconomical. Herein, we reported a thiol‐assisted one‐pot method by using 3‐mercaptopropionic acid (MPA) to synthesize carbon‐supported metal nanoparticles catalysts for efficient electrocatalytic reduction of carbon dioxide (CO2RR). We found that the synthesized Au?MPA/C catalyst achieves a maximum CO faradaic efficiency (FE) of 96.2% with its partial current density of ?11.4 mA/cm2, which is much higher than that over Au foil or MPA‐free carbon‐supported Au (Au/C). The performance improvement in CO2RR over the catalyst is probably derived from the good dispersion of Au nanoparticles and the surface modification of the catalyst caused by the specific interaction between Au nanoparticles and MPA. This thiol‐assisted method can be also extended to synthesize Ag?MPA/C with enhanced CO2RR performance.  相似文献   

9.
An electrochemical approach is developed that allows for the control of both proton and electron transfer rates in the O2 reduction reaction (ORR). A dinuclear Cu ORR catalyst was prepared that can be covalently attached to thiol‐based self‐assembled monolayers (SAMs) on Au electrodes using azide–alkyne click chemistry. Using this architecture, the electron transfer rate to the catalyst is modulated by changing the length of the SAM, and the proton transfer rate to the catalyst is controlled with an appended lipid membrane modified with proton carriers. By tuning the relative rates of proton and electron transfer, the current density of the lipid‐covered catalyst is enhanced without altering its core molecular structure. This electrochemical platform will help identify optimal thermodynamic and kinetic parameters for ORR catalysts and catalysts of other reactions that involve the transfer of both protons and electrons.  相似文献   

10.
Chloride is generally regarded as a harmful species for the heterogeneous catalysts, especially Au catalysts. In this work, a series of active Au/NiOx catalysts were successfully prepared with co‐precipitation method by tracking the concentrations of chloride in the re‐dispersed aqueous solutions. For methyl esterification of alcohols, the highest active Au/NiOx catalysts could be prepared from aqueous solutions containing 8‐13 ppm chloride, the yield of methyl benzoate of catalyst Au/NiOx‐9 was 99%. The catalyst structures and the role of chloride in catalysts were explored by ICP, BET, XPS, TEM and EXAFS characterizations. It was found that the appropriate amount of residual chloride in Au catalysts was beneficial to their catalytic activities. Especially for Au/NiOx‐9, the appropriate amount of residual chloride had positive effects on the physicochemical properties of Au/NiOx catalyst, the position of Au nanoparticles (NPs) located on NiOx crystallites and the ratio of Auδ+/Au0 in catalyst, which together resulted in its high reactivity.  相似文献   

11.
Tetracycline (TC) and other antibiotics accumulated in groundwater and soil pollute ecological environment and threaten human health. Gold nanoparticles doped on photocatalysts are able to enhance the photodegradation efficiency during removing these antibiotics, but preparation of Au nanoparticles of well‐dispersion on photocatalysts remains challenging. In this work, zeolite imidazolate (ZIF‐8) was employed as the precursor to prepare Au@ZnO photocatalyst via impregnation and in‐situ reduction method to efficiently degrade the tetracycline in the aqueous solution. Au nanoparticles are of 10 nm in size and uniformly dispersed on the surfaces of ZnO microstructures. The as‐prepared Au@ZnO is able to remove 85.5% of TC of 0.010 mg/mL within 2 h, presenting higher photocatalytic activity than pure ZnO catalyst. Most importantly, the catalyst shows its superior stability after five cycles without structure and activity changing. The mechanism of the photocatalytic degradation was discussed in detail.  相似文献   

12.
The catalytic oxidation of alcohols with molecular oxygen on supported nanometallic catalysts represents one of the green methods in a crucial process for the synthesis of fine chemicals. We have designed an experiment using physically mixed Au/AC and Pd/AC (AC=activated carbon) as the catalyst in the liquid‐phase oxidation of benzyl alcohol by aerobic oxygen. The evolution of the physically mixed catalyst structures at different stages in the catalytic reaction was investigated by aberration‐corrected high‐resolution transmission electron microscopy and spatially resolved element mapping techniques at the nanometre scale, and they were also compared with the structure of the bimetallic alloy. For the first time we show the formation of surface Au–Pd bimetallic sites by reprecipitation of Pd onto Au nanoparticles. Negligible Au leaching was observed. The in situ structural evolution can be directly correlated to the great enhancement of the catalyst activity. Moreover, we distinguish the different behaviours of Au and Pd, thus suggesting an oxygen differentiating mechanism for Au and Pd sites. The findings are of great importance to both the understanding of the structure–activity correlation and the design of highly active catalysts in green chemistry.  相似文献   

13.
由于脂肪醇羟基和苄醇羟基具有相同的氧化反应活性,所以当分子内同时含有脂肪醇羟基和苄醇羟基时,很难选择氧化苄醇羟基合成含脂肪醇羟基的芳香醛或酮。本文报道了在离子液体-水介质中,NCS/NaBr/IL-TEMPO(离子液体负载TEMPO)催化氧化合成含有脂肪醇羟基的芳香醛、酮的方法,反应条件温和,选择性好,收率高,且离子液体和催化剂可以循环使用。  相似文献   

14.
陈海军  刘超  王敏  张超锋  李杲  王峰 《催化学报》2016,(10):1787-1793
具有独特的电子和几何结构,原子精确控制的金纳米簇(<2 nm)成为一种新的具有广泛研究和应用前景的纳米催化剂.负载在氧化物表面的金纳米簇通常会在高于300°C时聚集或长大.人们已经通过多种方法成功制备了对于非原子精确控制的热稳定性的金纳米颗粒.主要包括利用金属与载体强相互作用,用可还原的金属氧化物来稳定金纳米颗粒;利用物理阻隔作用使用高比表面积的载体或制备核壳、纳米粒子镶嵌在载体中来稳定金纳米颗粒.对于原子精确控制的金纳米簇,由于其外边包覆着一层配体,将其负载到载体上时要保证配体不被破坏才能保证金纳米簇的结构完整性,负载后通常要除去配体才能使催化活性位曝露出来.目前,高热稳定性(>300°C)的金纳米簇的制备方法还较少.由于金与 SiO2相互作用较弱,将超小(<2 nm)的金纳米粒子包覆于其中非常困难.因此,本文首先制备了1.3 nm的含有硅酯键的巯基配体(3-巯丙基三甲氧基硅烷)保护的 Au25[SC3H6Si(OCH3)3]18,然后将其在刚成核的 SiO2表面与正硅酸四乙酯共水解,得到了既保留了 Au25的完整结构,又避免了 Au25之间相互水解的 Au25(SC3H6SiO3)18@SiO2纳米材料.漫反射固体紫外-可见光谱证明了 Au25在包覆完成后结构的完整性.透射电镜结果表明, Au25纳米簇焙烧至400°C未发生明显聚集长大.对硝基苯酚还原实验结果表明,不同温度处理后的 Au25@SiO2配体在200°C开始脱除,温度高于传统的负载型 Au25催化剂,表明 Au25是在 SiO2内部而不是在表面,从而使配体不易离去.400°C处理后的 Au25@SiO2对4-硝基苯酚还原表现出最高的反应活性,表明该纳米簇在400°C处理后没有发生明显聚集长大.  相似文献   

15.
In this study, library substituted benzodiazepines was synthesized using molecular ionic liquid supported on Fe‐MCM‐41 nanocomposites (Fe‐MCM‐41‐IL). This protocol using ultrasound provided advantages such as rapid, clean conversion and simplicity in experimental setup that led to rapid generation of benzodiazepines under mild condition. The catalyst can be easily isolated by using an external magnetic field and reused in the next reaction up to six cycles without obvious activity decreasing.  相似文献   

16.
催化剂的微观结构在催化还原反应、有机物氧化反应及有机物转化反应中起着关键作用。本文利用无模板方法合成了多金核中空二氧化铈微球催化剂。将制备好的二氧化铈中空微球浸渍到一定浓度的氯金酸溶液中,然后多次洗涤除去表面吸附的氯金酸离子,最后通过硼氢化钠还原制成中空氧化铈微球包覆的多金核的核壳结构催化剂。将该核壳结构材料用于硝基苯酚加氢反应与金纳米粒子及氧化铈微球相比,多金核中空二氧化铈核壳结构表现出优越的活性和稳定性。通过这种浸渍洗涤再还原的简单方法合成的多金核二氧化铈催化剂有望应用于生物医药和能源环境等领域。  相似文献   

17.
Titanium was incorporated in ionic liquid based periodic mesoporous organosilica to prepare a nanostructured catalyst (Ti@PMO‐IL) with high activity. Procedure for the synthesis of Ti@PMO‐IL was followed according the simultaneous hydrolysis and condensation of alkylimidazolium ionic liquid, tetramethoxysilane (TMOS) and tetrabutylorthotitanate (TBOT) where a surfactant template was used together with a simple acid‐based catalytic aproach. N2 adsorption isotherm of the Ti@PMO‐IL was studied to measure its mean pore volume, pore size distribution and specific surface area. Diffuse reflectance infrared Fourier transform (DRIFT) spectroscopy was applied to identify the chemical bonds present in Ti@PMO‐IL. The morphology of this nanomaterial was investigated by scanning electron microscopy (SEM). Transmission electron microscopy (TEM) image was used to study mesoporosity and structure order of the catalyst. The catalytic activity of Ti@PMO‐IL was then studied and found to be efficient and reusable to catalyze Hantzsch reaction.  相似文献   

18.
Gold nanoparticles (Au‐NPs) were reproducibly obtained by thermal, photolytic, or microwave‐assisted decomposition/reduction under argon from Au(CO)Cl or KAuCl4 in the presence of n‐butylimidazol dispersed in the ionic liquids (ILs) BMIm+BF4?, BMIm+OTf?, or BtMA+NTf2? (BMIm+=n‐butylmethylimidazolium, BtMA+=n‐butyltrimethylammonium, OTf?=?O3SCF3, NTf2?=?N(O2SCF3)2). The ultra small and uniform nanoparticles of about 1–2 nm diameter were produced in BMIm+BF4? and increased in size with the molecular volume of the ionic liquid anion used in BMIm+OTf? and BtMA+NTf2?. Under argon the Au‐NP/IL dispersion is stable without any additional stabilizers or capping molecules. From the ionic liquids, the gold nanoparticles can be functionalized with organic thiol ligands, transferred, and stabilized in different polar and nonpolar organic solvents. Au‐NPs can also be brought onto and stabilized by interaction with a polytetrafluoroethylene (PTFE, Teflon) surface. Density functional theory (DFT) calculations favor interactions between IL anions instead of IL cations. This suggests a Au???F interaction and anionic Aun stabilization in fluorine‐containing ILs. The 19F NMR signal in BMIm+BF4? shows a small Au‐NP concentration‐dependent shift. Characterization of the dispersed and deposited gold nanoparticles was done by transmission electron microscopy (TEM/HRTEM), transmission electron diffraction (TED), dynamic light scattering (DLS), UV/Vis absorbance spectroscopy, scanning electron microscopy (SEM), electron spin resonance (ESR), and electron probe micro analyses (EPM, SEM/EDX).  相似文献   

19.
金单原子催化剂上一氧化碳低温氧化   总被引:1,自引:0,他引:1  
CO低温氧化对于基础研究和实际应用均具有重要意义.自上世纪八十年代日本的 Haruta教授发现氧化物负载金催化剂对 CO氧化的超高活性以来,负载金催化剂受到了广泛关注与深入研究,被认为是目前活性最高的 CO氧化催化剂.在诸多影响 CO氧化活性的因素中,纳米金的粒子尺寸是最重要因素之一.目前主流观点认为对于 CO氧化,纳米金有一个最优尺寸范围,在0.5–5 nm,而 Au原子/离子(Au3+, Au+)的活性则低一到两个数量级.因此,一般认为负载金单原子催
  化剂对于 CO氧化反应的活性要比金纳米粒子和团簇低很多.然而,最近几年的理论与实验研究均表明,金单原子负载于合适的载体上可以显示出与金纳米粒子和团簇相当的活性.本文对这些新进展进行综述,阐述金单原子催化剂对 CO氧化的独特反应性能. Gates教授研究组进行了大量关于正价金对 CO氧化影响的研究,其中包括孤立的金原子(Au+).他们的研究发现, CO氧化活性随价态降低而降低,表明正价金对 CO氧化至关重要.此外,他们的研究也表明,孤立金原子对 CO氧化的活性(TOF)比金纳米粒子低一到两个数量级.然而,在他们的研究中,有几个因素可能导致催化剂的低活性.首先,他们一般采用非或弱还原性的载体.而载体的还原性对金催化剂上 CO氧化活性影响非常巨大.另外,他们所用的金原子前驱体为配合物,在催化剂制备与反应过程中配体并没有去除,可能也是导致催化剂活性低的原因之一.与此相反,张涛课题组近期采用氯金酸为前驱体,通过简单的吸附浸渍法制备了一系列负载金单原子催化剂.同时用相同的载体制备了负载金纳米粒子催化剂进行对比,可以排除载体等其它影响因素.对比结果显示,单原子催化剂均显示出与纳米粒子相当的 TOF(单位表面 Au原子)和更高的反应速率(单位重量金).首先制备了氧化铁负载金单原子催化剂,该催化剂在室温即展现出可观活性, TOF值与2–3 nm金粒子 TOF值相当(~0.5 s–1).更有趣也更重要的是,该催化剂在高温(200oC以上)展现出非常高的反应稳定性,在200oC反应100 h无失活.在300和400oC反应50 h也无失活发生,为开发高温稳定的金催化剂提供了新途径.其次制备了氧化钴负载金单原子催化剂,该催化剂以0.05%金负载量即可实现室温全转化,其 TOF值高达1.4 s–1.然而该催化剂在达到高活性之前必须首先在反应气氛中进行高温处理,这限制了其实用性.此外,催化剂需经反应气氛活化的原因尚待进一步研究.随之又制备了氧化铈负载金单原子催化剂,对富氢条件下 CO选择氧化不仅具有高活性,而且具有极高的 CO选择性.进一步研究结合理论计算表明,高选择性来自氧化铈负载的金单原子不能解离活化氢,对于氢气氧化活性极低,从而导致 CO氧化的高选择性.理论研究方面也有进展. Camellone等计算发现金原子可以取代 CeO2(111)面上的 Ce原子形成 Au+并促进 CO氧化.然而该金原子会扩散至氧空位形成带负电荷的 Auδ-,阻止 CO和 O2吸附,因而使催化剂失活.李隽课题组利用从头算分子动力学模拟首次发现氧化铈和氧化钛负载的 Au纳米粒子在 CO氧化过程中可以形成单原子的现象,并将之称为动态单原子催化剂. Yang等则计算了二维材料 BN负载 Au单原子催化 CO氧化并发现反应优先通过三原子 E-R机理进行.  相似文献   

20.
田涛  刘英  张勋高 《催化学报》2015,(8):1358-1364
采用均匀沉积-沉淀法制备了氧化铜修饰羟基磷灰石负载金催化剂(Au/CuO-HAP),并用原子吸收光谱、N2吸附脱附、X射线粉末衍射、透射电镜和X射线光电子能谱等方法对催化剂结构和形貌进行了表征.考察了催化剂对醇类液相需氧氧化的催化性能.与单金属Au/HAP或CuO-HAP相比较,双金属Au/CuO-HAP对苯甲醇氧化的催化活性和苯甲醛的选择性有显著提高,120 oC反应1.5 h,苯甲醇的转化率和苯甲醛的选择性分别达到99.7%和98.4%.在Au/CuO-HAP的催化下,其它类型的芳香醇均可高选择性转化为相应的醛或酮. Au/CuO-HAP催化剂有很好的稳定性和可回收性,4次回收后,其催化活性没有明显变化.  相似文献   

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