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1.
研究了无金属参与的二乙酸碘苯和吲哚的C3—H乙酸化反应,通过对取代基效应、温度以及二乙酸碘苯用量等因素的考察,建立了反应的最佳条件:反应温度60℃,乙酸(HOAc)为溶剂.在无需任何添加剂条件下,以中等到良好的收率获得一系列C3位乙酸化的吲哚衍生物.采用红外光谱、核磁共振波谱、高分辨质谱及X射线单晶衍射分析对目标化合物进行了结构表征,并推测了可能的反应机理.该催化体系对于克量级规模反应均能获得很好的结果.  相似文献   

2.
研究了碘催化的2-炔基苯胺与二硒醚的亲电环化反应. 结果表明, 在碘单质(0.2 mmol)、 2-炔基苯胺(0.2 mmol)、 二硒醚(0.1 mmol)和甲苯(2 mL)共存体系中, 反应温度为110℃时, 2-炔基苯胺与二硒醚能发生亲电环化反应, 生成相应的3-硒取代吲哚化合物, 产率为中等到良好. 该反应在无金属催化的条件下进行, 为合成官能团吲哚提供了一种新途径.  相似文献   

3.
吲哚膦酸酯是一类重要的化合物,具有潜在的生理活性;此外,从它出发可以衍生出其他多种物质.利用醋酸锰引发二烷基亚膦酸酯产生膦酸酯基自由基与吲哚发生选择性的反应,成功合成了一系列吲哚膦酸酯衍生物,该方法也适用于二苯氧膦.该反应条件较温和、操作简单,为2-和3-膦酰化吲哚的合成提供了一种有效的方法.  相似文献   

4.
吲哚乙酸的间接光度分析法研究   总被引:1,自引:0,他引:1  
吲哚乙酸(IAA)是一种植物生长激素,具有重要的生理功能,调节和控制着植物体内的核酸蛋白质和酶的合成,以及植物生长发育等各种生命现象,如发芽、生根、细胞生长、器官分化、开化结果、落叶、休眠等。研究吲哚乙酸分析测试方法对了解植物生长发育过程和规律有十分重要的意义。由于植物中吲哚乙酸的含量极低,吲哚乙酸含量的测定一般都使用高效液相色谱法[1]、放射免疫法[2]。我们对吲哚乙酸的电化学分析法做了初步的研究[3],本文提出具有快速、简便、灵敏的光度分析法。在pH=2的硫酸溶液中研究了磷钼黄与吲哚乙酸的反应动力学及反应机理,探…  相似文献   

5.
以Pd(OAc)2为主催化剂,以Cu为助催化剂,以碘为氧化剂,高效地实现了吲哚与苯炔直接羰化合成吲哚-3-炔酮,并优化了反应条件. 结果表明,该催化剂体系对带有不同取代基的吲哚、端炔类化合物具有非常好的适用性,最高分离产率可达94%. 生成的吲哚-3-炔酮产物可进一步与叠氮化钠和溴苄一锅反应,高产率地得到3-甲酰三唑基吲哚类化合物. 由于原料来源简单,产率高,且两类产物都是重要的中间体,因此该方法具有一定的应用价值.  相似文献   

6.
使用B(C6F53替代稀有金属催化剂,实现了绿色、无毒、温和催化吲哚与苯乙炔的加成反应.对吲哚不同位置带有取代基的底物进行拓展,在室温条件下高产率获得了一系列双吲哚烷烃.对机理的初步探究表明,反应首先从苯乙炔被B(C6F53活化开始,而后依次受到两分子吲哚进攻,经马氏加成得到相应产物.根据探究结果,给出了可能的反应机理.  相似文献   

7.
植物拟南芥中吲哚乙酸用甲醇超声提取,后经固相萃取小柱净化用化学发光法测定.在多聚磷酸(PPA)介质中,吲哚乙酸对高良姜素-高锰酸钾体系的发光有很强的增敏作用,据此建立了固相萃取-流动注射化学发光测定吲哚乙酸的新方法.在优化条件下,相对化学发光的对数值与吲哚乙酸浓度的对数值在8.0 ×10-9~1.0×10 -7g/mL...  相似文献   

8.
以纳米TiO_2为催化剂研究了紫外光照射下植物激素吲哚-3-乙酸和氯吡苯脲的降解过程和机理。基于吲哚-3-乙酸在278 nm处的特征吸收峰和氯吡苯脲在261 nm处的特征吸收峰,利用紫外-可见分光光度法对二者的光催化降解过程进行跟踪检测。在纳米TiO_2催化下,紫外光照240 min吲哚-3-乙酸的降解率为61. 6%;紫外光照300 min氯吡苯脲的降解率高达90. 5%。动力学研究表明,吲哚-3-乙酸和氯吡苯脲的光降解反应均符合准一级反应动力学模型。通过自由基捕获实验确定·OH和·O_2-是氧化分解植物激素的主要活性物质,并进一步给出纳米TiO_2光催化降解植物激素的机理。在室温下实现了光催化降解植物激素,为解决环境中激素污染提供了一种可行的方法。  相似文献   

9.
探讨了酸度调控的3,3-二乙硫基丙烯酸酯的吲哚化反应,选择性地合成3,3-二吲哚基丙烯酸酯和3-吲哚基-3-氧代丙酸酯.研究表明,3,3-二乙硫基丙烯酸酯与吲哚反应时,在稀酸条件下,高产率生成3,3-二吲哚基丙烯酸酯,而在浓酸条件下,生成的3-吲哚基-3-乙硫基丙烯酸酯不稳定,在后处理和柱层析分离时易水解,高产率得到3-吲哚基-3-氧代丙酸酯.  相似文献   

10.
张小平  贺永勤 《化学通报》2017,80(5):482-486
本文发展了碘作用下吲哚及其衍生物与芳香族硫醇类化合物的直接硫醚化反应,在吲哚3位形成C-S键。在温和的反应条件下,多种杂环硫醇能够与吲哚反应高产率地得到3位硫醚化合物。  相似文献   

11.
研究了铑催化N-嘧啶吲哚与乙烯基三乙氧基硅烷的C—H烯基化反应. 在以二氯(五甲基环戊二烯基)合铑(Ⅲ)二聚体{[RhCp*Cl2]2(Cp*: 五甲基环戊二烯基)}为催化剂, Cu(OAc)2为氧化剂, AgF为添加剂, 1,2-二氯乙烷为溶剂及反应温度为90 ℃条件下, 以42%~88%的收率得到末端吲哚乙烯衍生物. 动力学同位素效应实验结果为KH/KD=5.7∶1, 表明C—H键断裂可能是反应过程中的决速步骤. 竞争性实验结果表明, 含有供电子取代基的底物比吸电子取代基的底物反应活性高, 反应可能经历亲电性C—H键活化过程. 推测了可能的反应机理, 主要包括配位、 C—H键活化、 转金属化、 还原消除和氧化等步骤. 将此方法应用于一种δ-咔啉衍生物的制备.  相似文献   

12.
The reactions of the diruthenium carbonyl complexes [Ru2(μ-dppm)2(CO)4(μ,η2-O2CMe)]X (X=BF4 (1a) or PF6 (1b)) with neutral or anionic bidentate ligands (L,L) afford a series of the diruthenium bridging carbonyl complexes [Ru2(μ-dppm)2(μ-CO)22-(L,L))2]Xn ((L,L)=acetate (O2CMe), 2,2′-bipyridine (bpy), acetylacetonate (acac), 8-quinolinolate (quin); n=0, 1, 2). Apparently with coordination of the bidentate ligands, the bound acetate ligand of [Ru2(μ-dppm)2(CO)4(μ,η2-O2CMe)]+ either migrates within the same complex or into a different one, or is simply replaced. The reaction of [Ru2(μ-dppm)2(CO)4(μ,η2-O2CMe)]+ (1) with 2,2′-bipyridine produces [Ru2(μ-dppm)2(μ-CO)22-O2CMe)2] (2), [Ru2(μ-dppm)2(μ-CO)22-O2CMe)(η2-bpy)]+ (3), and [Ru2(μ-dppm)2(μ-CO)22-bpy)2]2+ (4). Alternatively compound 2 can be prepared from the reaction of 1a with MeCO2H–Et3N, while compound 4 can be obtained from the reaction of 3 with bpy. The reaction of 1b with acetylacetone–Et3N produces [Ru2(μ-dppm)2(μ-CO)22-O2CMe)(η2-acac)] (5) and [Ru2(μ-dppm)2(μ-CO)22-acac)2] (6). Compound 2 can also react with acetylacetone–Et3N to produce 6. Surprisingly [Ru2(μ-dppm)2(μ-CO)22-quin)2] (7) was obtained stereospecifically as the only one product from the reaction of 1b with 8-quinolinol–Et3N. The structure of 7 has been established by X-ray crystallography and found to adopt a cis geometry. Further, the stereospecific reaction is probably caused by the second-sphere π–π face-to-face stacking interactions between the phenyl rings of dppm and the electron-deficient six-membered ring moiety of the bound quinolinate (i.e. the N-included six-membered ring) in 7. The presence of such interactions is indeed supported by an observed charge-transfer band in a UV–vis spectrum.  相似文献   

13.
A practical synthesis of α-bromo/iodo/chloroketones from olefins under visible-light irradiation conditions has been developed.In the presence of PhI(OAc)2 as promoter and under ambient conditions,the reactions of styrenes and triiodomethane undergo the transformation smoothly to deliver the corresponding a-iodoketones without additional photocatalyst in good yields under sunlight irradiation.Mea nwhile,the reactions of styrenes with tribromomethane and trichloromethane generate the desiredα-bromoketones and a-chloroketones in high yields by using Ru(bpy)3Cl2 as a photocatalyst under blue LED(450-455 nm) irradiation.  相似文献   

14.
Anhydrous monoaryllead triacetates ArPb(OAc)3 (Ar = Ph, p-Tolyl, o-Tolyl, 2,5-Xylyl; OAc = OCOMe) were prepared by arylation of Pb(OAc)4 with ArSn(C4H9-n)3 in the presence of Hg(OCOCF3)2. The procedure was adapted for the synthesis of diaryllead diacetates Ar2Pb(OAc)2 (Ar = Ph, p-Tolyl, o-Tolyl, p-ClC6H4, o-ClC6H4) and afforded products with higher purity than other procedures. The crystal structures of PhPb(OAc)3, Ph2Pb(OAc)2 and (o-Tolyl)2Pb(OAc)2 were determined by X-ray diffraction. PhPb(OAc)3 and (o-Tolyl)2Pb(OAc)2 are monomeric. The pentagonal bipyramid around Pb in PhPb(OAc)3, like the trapezoidal bipyramid around Pb in (o-Tolyl)2Pb(OAc)2, is heavily distorted, the OAc groups being unsymmetrically chelating. Lead in Ph2Pb(OAc)2 is in a distorted octahedral environment. One OAc group is bridging, linking the molecular units to infinite chains, the other OAc group is symmetrically chelating. IR, 1H, 13C and 207Pb NMR spectroscopic data are reported. The structures of p-TolPb(OAc)3, o-TolPb(OAc)3 and 2,5-XylPb(OAc)3 are inferred to be similar to that of PhPb(OAc)3, and the structure of (o-ClC6H4)2Pb(OAc)2 is inferred to be similar to that of (o-Tolyl)2Pb(OAc)2.  相似文献   

15.
The preparation of a series of immobilized transition-metal catalysts are reported. The catalysts were obtained by chemisorption of either rhodium(I) or iridium(I) complexes [MX(C2H4)2]n (M = Rh, Ir; X = Cl, OAc, acac, f3-acac, f6-acac) on SiO2 or MgO supports. The oxides were also activated by SiCl4 or TiCl4 to give support materials in which the acidic nature of the surface is substantially increased. The activity of the immobilized catalysts was tested, particularly in the reaction of ethene with diphenyldiazomethane which yields a mixture of 1.1-diphenylpropene (8) and 1.1-diphenylcyclopropane (9). It was found that the most active and most selective (highest ratio 8:9) catalyst B1 was formed support material B (SiO2 activated by SiCl4) and [RhCl(C2H4)2]2 (1) and that both the activity and selectivity of B1 was comparable with that of complex 1 in solution. In contrast, the supported catalysts A2, D2 and A3, D3 obtained from [Rh(OAc)(C2H4)2]2 (2) and [Rh(acac)(C2H4)2] (3) were less active than compounds 2 and 3 in solution. The immobilized catalysts A6, A7, D7 and E7, which were generated from the chloro- and acetatoiridium(I) complexes [IrCl(C2H4)2]2 (6) and [Ir(OAc)(C2H4)2]2 (7), possessed a lower activity than the rhodium counterparts. With diazoalkanes other than Ph2CN2, the activity of the supported catalyst B1 was partly higher and partly lower than that of complex 1 in the homogeneous phase.  相似文献   

16.
13C and 31P{1H} NMR data at low temperature prompted us to characterize cis-[Rh(CO)2(PR3)Cl] (3) (3a, PR3 = PPh3; 3b, PR3 = PMe2Ph), as surprisingly stable products of the reaction between [{Rh(CO)2(μ-Cl)}2] (1) and tertiary phosphines in toluene (P : Rh = 1). Every attempt to isolate solid 3a led to the cis- and trans- halide-bridged dimers [{Rh(CO)2(μ-Cl)}2] (5a) and 6a which are formed from 3a by slow decarbonylation, a process which is greatly accelerated by the evaporation of the solvent under vacuum.

The analogous reaction of 1 with dimethylphenylphosphine follows a similar pathway; in this case, however, low temperature NMR spectra allowed us to characterize the pentacoordinated dinuclear species [{Rh(CO)2(μ-Cl)}2] (2b) as the unstable intermediate of the bridge-splitting process.

The reaction of 3 with a second equivalent of phosphine (P : Rh = 2) leads, at room temperature, to the well known product trans-[Rh(CO)(PR3)2Cl] (8) accompanied by evolution of CO; however our data show that when the reaction is performed at 200 K, decarbonylation is prevented and spectroscopic evidence of trigonal bipyramidal pentacoordinate [Rh(CO)2(PR3)2Cl] (7), stable only at low temperature, can be obtained.  相似文献   


17.
Two homoleptic Re(I) complexes of ortho and para-carborane isocyanide ligands were prepared as the first examples of a new class of metal-based BNCT and BNCS agents. The target compounds were prepared in low yield through the reaction of [Re2(O2CPh)4Cl2] and [Re2(OAc)4Cl2] with 3-isocyano-1,2-dicarba-closo-dodecaborane and a para-carborane azetidine derivative respectively. The desired product from the latter reaction was characterized crystallographically and is only the second reported molecular structure of a homoleptic Re(I) isonitrile complex.  相似文献   

18.
[Mo2(OAc)4] reacts with three or more equivalents of lithium chloride and PMe3 in thf to give [Mo2Cl3(μ-OAc)(PMe3)3]0.75thf (1). The IR spectrum of the complex shows Mo---O and Mo---Cl stretches at 350 and 300 cm−1 respectively and the 1H and 13C NMR spectra suggest several species are present in solution. [Mo2Cl3(μ-OAc)(PMe3)3] converts slowly in thf to [Mo2Cl4(PMe3)4] and [Mo2(OAc)4]. The structure of [Mo2Cl3(μ-OAc) (PMe3)3]0.5C6H5Me (2) has been determined by single-crystal X-ray diffraction methods. Crystals of the toluene solvate are tetragonal with a = 20.726(2), c = 11.776(2) Å, space GROUP = I4cm. The structure was solved by Patterson and Fourier methods and refined to R of 0.035 for the 539 observed data. The molecule contains two metal centres each of which shows 5-fold coordination. The two molybdenum atoms are linked by an acetate bridge and a short Mo---Mo bond of 2.121(3) Å. Remaining coordination sites are occupied on Mo(1) by two Cl and one PMe3 and on Mo(2) by one Cl and two PMe3 groups.  相似文献   

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