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1.
利用滴定量热技术并结合适当的热力学循环测定了乙腈溶液中7个取代的N-亚硝基吲哚化合物中N—NO键的异裂能和均裂能, 能量范围分别为206.1~246.2 kJ/mol和119.1~124.6 kJ/mol. 表明N-亚硝基吲哚均裂释放NO自由基(NO·)比异裂释放NO正离子(NO+)要容易得多, 通过热力学循环得到的相应自由基负离子中N—NO键的异裂能和均裂能的能量范围分别为25.5~34.4和5.0~40.5 kJ/mol, 表明所研究化合物的自由基负离子在室温下很不稳定.  相似文献   

2.
本文选取10个取代的亚硝酸苄(醇)酯化合物, 通过滴定量热和电化学方法, 结合热力学循环, 研究了其在乙腈溶液中的NO化学亲和势, 即O—NO键的均裂能和异裂能.  相似文献   

3.
合成了α-位有第V、Ⅵ主族元素杂正离子取代基的甲苯系列(1)和苯乙酮系列(2)共11个Ylide前体化合物,用重迭指示剂法首次测定了其在二甲亚矾(DMSO)溶剂中的酸性解离常数PKa,同时结合碳负离子(即Ylide)氧化电位的测定,通过热力学循环估测了它们的气相均裂键能(BDE).根据这些PKa和BDE数据,对16个Ylide前体化合物的C-H键的均裂能和异裂能进行了比较,并讨论了a-杂正离子取代基对相关的Ylide和类-Ylide自由基的热力学稳定性的影响及结构效应  相似文献   

4.
乙腈介质中S-NO键异裂能和均裂能的测定   总被引:1,自引:1,他引:0  
近年来, 大量研究表明, 一氧化氮在许多生命过程(如免疫、神经传导和血管扩张等)中发挥着十分重要的作用[1~4]. 然而, 文献[5]的研究表明, NO在生命体内很少以游离形式存在, 绝大部分都是与生命体内活线性分子结合着, 其中NO与有机硫以S-NO键方式结合形成的NO蕴合物(Nitric oxide-generating agent)被认为是NO在生命体内贮存、 转移和释放最主要的分子源[5]. 因此, 系统研究各种类型硫键NO蕴合物中S-NO键的断裂能, 可以诠释和预测NO在生命体内的转移方向和转移机制. 由于这一原因, S-NO键断裂能的研究是当今许多键能化学家正致力于解决的最热门课题之一. 10多年来, 我们从事的化学键键能研究, 已为这一领域的深入研究奠定了基础. 前文[6~8]根据热力学循环利用滴定量热法成功地测得了多个系列的N-NO键的异裂能和均裂能. 最近, 我们在此工作的基础上, 通过改变热力学循环方式又成功地利用滴定量热法测得了12个S-亚硝基化合物中的S-NO键的异裂能和均裂能, 其中9个为芳香体系, 3个为脂肪体系, 分别模拟生命体系内芳香体系和脂肪体系中的S-NO键. 本文首次报道其实验结果, 并进行一些讨论.  相似文献   

5.
将基于平均影响值(Mean impact value,MIV)的反向传播神经网络(Back propagation neural netowrk,BPNN)(MIV-BPNN)方法用于提高密度泛函理论(Density functional theory,DFT)计算Y—NO(Y=N,S,O及C)键均裂能的精度.利用量子化学计算和MIV-BPNN联合方法计算92个含Y—NO键的有机分子体系的均裂能.结果表明,相对于单一的密度泛函理论B3LYP/6-31G(d)方法,利用全参数下的BPNN方法计算92个有机分子均裂能的均方根误差从22.25 kJ/mol减少到1.84 kJ/mol,而MIV-BPNN方法使均方根误差减少到1.36 kJ/mol,可见B3LYP/6-31G(d)和MIV-BPNN联合方法可以提高均裂能的量子化学计算精度,并可预测实验上无法获取的均裂能值.  相似文献   

6.
合成了α-位有第ⅤⅥ主族元素杂正离子取代基的甲苯系列(1)和苯乙酮系列(2)共11个Ylide前体化合物,用重迭指示剂法首次测定了其在二甲亚砜(DMSO)溶剂中的酸性解离常数pK,同时结合碳负离子(即Ylide)氧化电位的测定,通过热力学循环估测了它们的气相均裂键能(BDE)根据这些pKa和BDE数据,对16个Ylide前体化合物C-键的均裂能和异裂能进行了(BDE),根据这些pKa和BDE数据,  相似文献   

7.
利用密度泛函理论的B3LYP交换相关泛函对从细梗胡枝子中提取的一种新型黄酮类化合物的分子结构和抗氧化活性进行了研究,获得了该化合物的中性分子、阴离子、自由基和自由基阳离子的稳定几何构型和能量.通过分析前线分子轨道特征,确定了与实验结果一致的现象:A环是参加化学反应的活性部位,并发现A′环也是重要的抗氧化活性部位.为判断其抗氧化活性,预测其水溶液中,中性和阴离子的电离势分别为509.0和432.2kJ.mol-1,均裂O—H键解离能为347.3kJ.mol-1,羟基自由基电子亲和势和氢原子亲和势分别为-620.6和-487.5kJ.mol-1.通过理论分析比较,该黄酮类化合物清除羟基自由基的三种机理即H原子转移、电子转移-质子转移和质子丢失-电子转移在热力学上并存,其中质子丢失-电子转移是热力学最有利的机理.本文为设计新型高效黄酮类抗氧化剂,研究黄酮类化合物的构效关系和抗氧化机理提供了理论依据.  相似文献   

8.
赵永昱  还振威  程津培 《化学学报》1994,52(10):980-984
本文利用热力学循环原理,由苯乙酮缩氨脲类化合物的酸性解离常数[pK~a(HA)]和相应的氧化还原电位[E~o~x(HA),E~r~d(HA)和E~o~x(A^-)] 求得了表征自由基热力学稳定性的均裂键能(BDE)及反映正负离子基断裂方式与能量的pK~a(HA^+),BDE(HA^-),ΔG~(H^-)(A),对所得结果的取代基效应进行了讨论  相似文献   

9.
采用高分辨电喷雾电离-高能量碰撞解离质谱(ESI-HCD-MS/MS)技术,结合H/D交换试验和密度泛函理论计算,对3-苯硫基吲哚衍生物质子化离子的质谱裂解反应机理进行了研究。结果表明:3-苯硫基吲哚衍生物的质子化离子在高能量碰撞解离模式下,通过苯基亲核取代重排到吲哚环的C~3位上,C-S键均裂丢失巯基自由基,产生了3-(取代苯基)-吲哚自由基阳离子;通过1,2-氢负离子迁移和C~3-S键均裂丢失苯硫自由基,则产生了吲哚自由基阳离子;通过1,4-质子迁移和C~5-S键的电荷诱导异裂,产生了3-硫代吲哚阳离子。  相似文献   

10.
刘博  还振威  程津培 《化学学报》1997,55(2):123-128
本文首次测定了三苯基胂、三丁基磷和二丁基碲系列Ylide的前体化合物中α-C-H键在二甲亚砜(DMSO)溶液中的pKA和气相中的均裂键能(BDE)。通过这些结构相似的Ylide相应性质的类比, 对有关的碳负离子和碳自由基的热力学稳定性以及磷Ylide中P-C键的属性及其对磷Ylide性质的影响从构效关系的更深层次进行了讨论。  相似文献   

11.
The heterolytic and homolytic N-NO bond dissociation energies of seven substituted N-methyl-N-nitrosobenzenesulfonamides (abbreviated as G-MNBS, G = p-OCH(3), p-CH(3), p-H, p-Cl, p-Br, 2,5-2Cl, m-NO(2)) in acetonitrile solution were evaluated for the first time by using titration calorimetry and relative thermodynamic cycles according to Hess' law. The results show that the energetic scales of the heterolytic and homolytic N-NO bond dissociation energies of G-MNBS in acetonitrile solution cover the ranges from 44.3 to 49.5 and from 33.0 to 34.9 kcal/mol for the neutral G-MNBS, respectively, which indicates that N-methyl-N-nitrosobenzenesulfonamides are much easier to release a NO radical (NO(*)) than to release a NO cation (NO(+)). The estimation of the heterolytic and homolytic (N-NO)(-)(*) bond dissociation energies of the seven G-MNBS radical anions in acetonitrile solution gives the energetic ranges of -15.8 to -12.9 and -3.1 to 1.8 kcal/mol for the (N-NO)(-)(*) bond homolysis and heterolysis, respectively, which means that G-MNBS radical anions are very unstable at room temperature and able to spontaneously or easily release a NO radical or NO anion (NO(-)), but releasing a NO radical is easier than releasing NO anion. These determined N-NO bond dissociation energies of G-MNBS and their radical anions have been successfully used in the mechanism analyses of NO transfer from G-MNBS to 3,6-dibromocarbazole and the reactions of NO with the substituted N-methyl-benzenesulfonamide nitranions (G-MBSN(-)) in acetonitrile solution.  相似文献   

12.
The heterolytic and homolytic N-NO bond dissociation energies [i.e., deltaHhet(N-NO) and deltaHhomo(N-NO)] of 12 N-nitroso-diphenylamine derivatives (1-12) and two N-nitrosoindoles (13 and 14) in acetonitrile were determined by titration calorimetry and from a thermodynamic cycle, respectively. Comparison of these two sets of data indicates that homolysis of the N-NO bonds to generate NO* and nitrogen radical is energetically much more favorable (by 23.3-44.8 kcal/mol) than the corresponding heterolysis to generate a pair of ions, giving hints for the driving force and possible mechanism of NO-initiated chemical and biological transformations. The first (N-NO)-* bond dissociation energies [i.e., deltaH(N-NO)-* and deltaH'(N-NO)-*] of radical anions 1-*-14-* were also derived on the basis of appropriate cycles utilizing the experimentally measured deltaHhet(N-NO) and electrochemical data. Comparisons of these two quantities with those of the neutral N-NO bonds indicate a remarkable bond activation upon a possible one-electron transfer to the N-NO bonds, with an average bond-weakening effect of 48.8 +/- 0.3 kcal/mol for heterolysis and 22.3 +/- 0.3 kcal/mol for homolysis, respectively. The good to excellent linear correlations among the energetics of the related heterolytic processes [deltaHhet(N-NO), deltaH(N-NO)-*, and pKa(N-H)] and the related homolytic processes [deltaHhomo(N-NO), deltaH'(N-NO)-*, and BDE(N-H)] imply that the governing structural factors for these bond scissions are similar. Examples illustrating the use of such bond energetic data jointly with relevant redox potentials for analyzing various mechanistic possibilities for nitrosation of nitranions are presented.  相似文献   

13.
Heterolytic and homolytic bond dissociation energies of the C4-H bonds in ten NADH models (seven 1,4-dihydronicotinamide derivatives, two Hantzsch 1,4-dihydropyridine derivatives, and 9,10-dihydroacridine) and their radical cations in acetonitrile were evaluated by titration calorimetry and electrochemistry, according to the four thermodynamic cycles constructed from the reactions of the NADH models with N,N,N',N'-tetramethyl-p-phenylenediamine radical cation perchlorate in acetonitrile (note: C9-H bond rather than C4-H bond for 9,10-dihydroacridine; however, unless specified, the C9-H bond will be described as a C4-H bond for convenience). The results show that the energetic scales of the heterolytic and homolytic bond dissociation energies of the C4-H bonds cover ranges of 64.2-81.1 and 67.9-73.7 kcal mol(-1) for the neutral NADH models, respectively, and the energetic scales of the heterolytic and homolytic bond dissociation energies of the (C4-H)(.+) bonds cover ranges of 4.1-9.7 and 31.4-43.5 kcal mol(-1) for the radical cations of the NADH models, respectively. Detailed comparison of the two sets of C4-H bond dissociation energies in 1-benzyl-1,4-dihydronicotinamide (BNAH), Hantzsch 1,4-dihydropyridine (HEH), and 9,10-dihydroacridine (AcrH(2)) (as the three most typical NADH models) shows that for BNAH and AcrH(2), the heterolytic C4-H bond dissociation energies are smaller (by 3.62 kcal mol(-1)) and larger (by 7.4 kcal mol(-1)), respectively, than the corresponding homolytic C4-H bond dissociation energy. However, for HEH, the heterolytic C4-H bond dissociation energy (69.3 kcal mol(-1)) is very close to the corresponding homolytic C4-H bond dissociation energy (69.4 kcal mol(-1)). These results suggests that the hydride is released more easily than the corresponding hydrogen atom from BNAH and vice versa for AcrH(2), and that there are two almost equal possibilities for the hydride and the hydrogen atom transfers from HEH. Examination of the two sets of the (C4-H)(.+) bond dissociation energies shows that the homolytic (C4-H)(.+) bond dissociation energies are much larger than the corresponding heterolytic (C4-H)(.+) bond dissociation energies for the ten NADH models by 23.3-34.4 kcal mol(-1); this suggests that if the hydride transfer from the NADH models is initiated by a one-electron transfer, the proton transfer should be more likely to take place than the corresponding hydrogen atom transfer in the second step. In addition, some elusive structural information about the reaction intermediates of the NADH models was obtained by using Hammett-type linear free-energy analysis.  相似文献   

14.
The heterolytic and homolytic C4-H bond dissociation energies of NADH and its radical cation (NADH*+) in aqueous solution were estimated according to the reaction of NADH with N,N,N',N'-tetramethyl-p-phenylenediamine radical cation perchlorate (TMPA*+) in aqueous solution. The results show that the values of the heterolytic and homolytic C4-H bond dissociation energies of NADH in aqueous solution are 53.6 and 79.3 kcal/mol, respectively; the values of the heterolytic and homolytic C4-H bond dissociation energies of NADH*+*+ in aqueous solution are 5.1 and 36.3 kcal/mol, respectively, which, to our knowledge, is first reported. This energetic information disclosed in the present work should be believed to furnish hints to the understanding of the mechanisms for the redox interconversions of coenzyme couple NADH/NAD+ in vivo.  相似文献   

15.
Heterolytic and homolytic C D bond dissociation energies of three NADH models: BNAH-4,4-d 2 , HEH-4,4-d 2 and AcrD 2 in acetonitrile were first estimated by using an efficient method. The results showed that the heterolytic C D bond dissociation energies are 65.2, 70.2, and 81.9 kcal/mol and the homolytic C D bond dissociation energies are 72.66, 70.69, and 74.95 kcal/mol for BNAH-4,4-d 2 , HEH-4,4-d 2 , and AcrD 2 , respectively. According to the bond dissociation energy differences of isotope isomers, an interesting conclusion can be made that the primary kinetic isotope effects are dependent not only on the zero-point energy difference of the isotope isomers, but also on the types of C D bond dissociations, and the C D bond homolytic dissociations should have much larger primary kinetic isotope effects (26.9 28.8) than the corresponding C D bond heterolytic dissociations (3.9-5.4).  相似文献   

16.
The first heterolytic and homolytic N(O)-NO(2) bond dissociation energy scales of three types Y-nitro (Y = N, O) compounds and corresponding radical anions in acetonitrile were established by using titration calorimetry combined with relevant electrochemical data through proper thermodynamic cycles.  相似文献   

17.
The first two series of Co-NO bond dissociation enthalpies in benzonitrile solution were determined for 12 cobalt(II) nitrosyl porphyrins and for 12 cobalt(III) nitrosyl porphyrins by titration calorimetry with suitable thermodynamic cycles. The results display that the energy scales of the heterolytic Co(III)-NO bond dissociation, the homolytic Co(III)-NO bond dissociation, and the homolytic Co(II)-NO bond dissociation are 14.7-23.2, 15.1-17.5, and 20.8-24.6 kcal/mol in benzonitrile solution, respectively, which not only indicates that the thermodynamic stability of cobalt(II) nitrosyl porphyrins is larger than that of the corresponding cobalt(III) nitrosyl porphyrins for homolysis in benzonitrile solution but also suggests that both cobalt(III) nitrosyl porphyrins and cobalt(II) nitrosyl porphyrins are excellent NO donors, and in addition, cobalt(III) nitrosyl porphyrins are also excellent NO(+) contributors. Hammett-type linear free energy analyses suggest that the nitrosyl group carries negative charges of 0.49 +/- 0.06 and 0.27 +/- 0.04 in T(G)PPCo(II)NO and in T(G)PPCo(III)NO, respectively, which indicates that nitric oxide is an electron-withdrawing group both in T(G)PPCo(II)NO and in T(G)PPCo(III)NO, behaving in a manner similar to Lewis acids rather than to Lewis bases. The energetic and structural information disclosed in the present work is believed to furnish hints to the understanding of cobalt nitrosyl porphyrins' biological functions in vivo.  相似文献   

18.
Although organocopper and organosilver compounds are known to decompose by homolytic pathways among others, surprisingly little is known about their bond dissociation energies (BDEs). In order to address this deficiency, the performance of the DFT functionals BLYP, B3LYP, BP86, TPSSTPSS, BHandHLYP, M06L, M06, M06-2X, B97D, and PBEPBE, along with the double hybrids, mPW2-PLYP, B2-PLYP, and the ab initio methods, MP2 and CCSD(T), have been benchmarked against the thermochemistry for the M-C homolytic BDEs (D(0)) of Cu-CH(3) and Ag-CH(3), derived from guided ion beam experiments and CBS limit calculations (D(0)(Cu-CH(3)) = 223 kJ·mol(-1); D(0)(Ag-CH(3)) = 169 kJ·mol(-1)). Of the tested methods, in terms of chemical accuracy, error margin, and computational expense, M06 and BLYP were found to perform best for homolytic dissociation of methylcopper and methylsilver, compared with the CBS limit gold standard. Thus the M06 functional was used to evaluate the M-C homolytic bond dissociation energies of Cu-R and Ag-R, R = Et, Pr, iPr, tBu, allyl, CH(2)Ph, and Ph. It was found that D(0)(Ag-R) was always lower (~50 kJ·mol(-1)) than that of D(0)(Cu-R). The trends in BDE when changing the R ligand reflected the H-R bond energy trends for the alkyl ligands, while for R = allyl, CH(2)Ph, and Ph, some differences in bond energy trends arose. These trends in homolytic bond dissociation energy help rationalize the previously reported (Rijs, N. J.; O'Hair, R. A. J. Organometallics2010, 29, 2282-2291) fragmentation pathways of the organometallate anions, [CH(3)MR](-).  相似文献   

19.
均三嗪含氮取代基衍生物的结构和性质   总被引:2,自引:0,他引:2  
在B3LYP/aug-cc-pvDZ理论水平上研究了—CN、—NO2、—NH2、—N3 、—N2H、—NHNH2、—N4H和—N4H3等含氮取代基取代均三嗪环上的氢原子生成的衍生物, 预测了它们的分子构型、分解能及含能性质. 对衍生物分解能的研究结果表明, —CN 和—NH2取代的衍生物的分解能比未取代时更高, 而其余基团的取代使分解能降低; 取代基化合物的生成热越大, 取代均三嗪中的氢原子后生成衍生物的生成热也越大. —CN、—N3和—N4H取代的均三嗪衍生物的单位原子生成热为71.9、78.7 和82.6 kJ, 比文献报道的三叠氮基-均三嗪的(70.2 kJ)更高. —N4H、—N3 、—N4 H3 、—N2 H和—CN取代的均三嗪衍生物, 生成热为863.1-1735.2 kJ·mol-1, 但—N4H和—N4H3取代的衍生物分解能较小,稳定性较差.  相似文献   

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