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1.
平面四方金属苯配合物的二阶超极化率的量子化学计算   总被引:5,自引:1,他引:4  
丁涪江  赵可清 《化学学报》2006,64(19):2003-2007
反位平面四方型过渡金属有机配合物[XM(PEt3)2-C6H4-A] (M=Pd, Pt; X=Br, I; A=NO2, CHO), 具有较高的二阶超极化率. 采用从头算方法对该配合物的二阶超极化率进行了研究. 构型在MP2/Lanl2DZ水平优化. 基组采用赝势价分裂基Lanl2DZ添加弥散函数和极化函数. HF水平计算(个别情况用MP2计算验证)表明, 苯的对位取代基A的吸电子能力越强, 金属对位配体X的供电子能力越强, 则配合物的二阶超极化率越大.  相似文献   

2.
采用量子化学密度泛函方法(DFT)在B3LYP/6-31G(d)水平上对有机二阶非线性光学生色团(E)-2-(5-(4-(双(4-甲氧苯基)氨基)苯乙烯基)噻唑-5)三氰乙烯(TPA-Ti2-TCV)(1)和(E)-2-(5-(4-(双(4-甲氧苯基)氨基)苯乙烯基)噻唑-2)三氰乙烯(TPA-Ti5-TCV)(2)进行几何构型的完全优化, 在优化所得构型的基础上, 采用含时密度泛函方法(TDDFT)在6-31G(d)基组水平上计算了电子吸收光谱的跃迁性质. 再采用有限场法(FF)在B3LYP/6-31G(d)水平上计算了分子的一阶超极化率β. 计算结果表明, 三芳胺在噻唑环上取代C5比取代C2有更大的一阶超极化率, 这是由于噻唑的区域化学性导致ΔEHOMO-LUMO(TPA-Ti2-TCV)比ΔEHOMO-LUMO(TPA-Ti5-TCV)大很多造成的.  相似文献   

3.
王娟  王进  盛六四  张允武 《化学学报》2004,62(4):355-361
利用激光溅射-分子束的方法研究了Al+和乙硫醇的气相化学反应,结果观察到了Al+与1~6个乙硫醇分子形成的团簇离子. 对团簇离子进行了密度泛函理论计算,找到了两种类型的异构体Al+(C2H5SH)n和HAl+SC2H5(C2H5SH)n-1,计算得到了相应的稳定结构和能量.分析质谱信号强度,结合理论计算结果,可推测出实验得到的n=1的产物离子是Al+(C2H5SH). n=2和3时产物离子开始转变为HAl+SC2H5(C2H5SH)n-1, n=4时,HAl+SC2H5(C2H5SH)3和Al+(C2H5SH)4两种产物离子都存在,n≥5以后,团簇离子Al+(C2H5SH)n开始成为主要的产物离子.  相似文献   

4.
炼厂干气中回收乙烯是扩宽C2H4来源的有效途径,但C2H4和C2H6物理性质和分子尺寸非常接近,分离困难.金属有机骨架材料(MOFs)近年来在低碳烃分离领域展现出广阔的前景.本工作采用氨吸附改性调节UTSA-280的结构,通过一维直孔道大小的调节实现C2H4/C2H6的高效分离.改性后的UTSA-280具有独特的超微孔结构能提升C2H4的吸附,而完全不吸附稍大的C2H6,实现理想的C2H4/C2H6吸附选择性(>1000).结果表明,改性后的UTSA-280的C2H4吸附量可提高至2.83 mmol/g,与未改性的材料相比增加29%,并且能阻挡C2H6的吸附,最终达到>1200的C2H4/C2H6选择性.蒙特卡罗分子模拟(GCMC)计算C2H4/C2H6混合气体(1:1)的吸附得出,改性后UTSA-280孔内的C2H4吸附相比于C2H6具有更多的吸附分布.通过C2H4/C2H6混合气体穿透实验测试,改性后的UTSA-280材料能展现出48 min以上的分离时间,相比于未改性的材料,分离性能提升近1倍.  相似文献   

5.
端基取代的长链硅烷二阶超极化率的量子化学研究   总被引:2,自引:0,他引:2  
对端基取代的一维无限长反位硅烷H2N-(SiH2-SiH2)n-NO2的二阶超极化率进行了系统的量子化学研究. 通过仔细检验和选择外场强度, 采用9个外场强度(0.0000, ±0.0008, ±0.0012, ±0.0016, ±0.0020 a.u.)计算的体系能量来确定4阶场强展开式中的5个系数, 从而得到可靠的二阶超极化率. 建议数据拟合时用二阶超极化率单元值的平均值形式γ(n)/n作为拟合对象, 同时用1/n的2阶多项式作为拟合函数, 以得到无限长链的二阶超极化率极限值. 拟合数据范围的选择应该使该数据范围得到的极限值与其临近数据范围得到的极限值的均方偏差最小. 分子构型的优化使计算的二阶超极化率增加大约20%, 在基组中增加极化函数使二阶超极化率在无限长链时的极限值减少大约15%. 相关效应的影响最大, MP2的结果比RHF的结果增加近一倍. 根据本文最高水平MP2/6-31G(d)//RHF/6-31G的计算, 端基取代的一维无限长反位硅烷H2N-(SiH2-SiH2)n-NO2的二阶超极化率的每单元极限值为0.8364×106 a.u.  相似文献   

6.
柴云峰  甘世凤  潘远江 《化学学报》2012,70(17):1805-1811
电喷雾串联质谱中偶电子负离子裂解产生阴离子自由基是一种违反偶电子规则的异常碎裂反应, 但是这种碎裂反应也常常被观察到, 其机理传统上一直被认为是共价键的简单均裂. 针对苯乙酰苯胺及其衍生物(R1C6H4CH2CONH- C6H4R2)的去质子化离子([M-H]-)裂解生成阴离子自由基这一特殊的碎裂反应提出了一个新颖的反应机理, 即离子/中性复合物介导的单电子转移反应机理. 以化合物3 (R1=H, R2=NO2)为模型提出的反应机理为, 首先氮上负电荷诱导CH2—CO键异裂生成[苄基负离子/4-硝基苯异氰酸酯]复合物中间体, 然后复合物中发生单电子转移反应产生4-硝基苯异氰酸酯阴离子自由基. 通过取代基效应研究(电子亲和势分析)、与文献报道的双分子电子转移反应比较和密度泛函理论计算等方法, 新反应机理得到了证明.  相似文献   

7.
噻吩光解反应机理的理论研究   总被引:1,自引:0,他引:1  
使用密度泛函理论(DFT)中的B3LYP方法, 采用6-31G**和6-31++G**基组, 对噻吩的光解反应进行了理论研究. 对照实验结果, 我们研究了五个光解通道, 包括生成C4H4+S, C2H2+C2H2S和CS+C3H4的三个闭壳层分子解离通道与生成HCS+C3H3和HS+C4H3的自由基解离通道. 各个可能的反应通道的产物碎片的具体形式得到了确认. 研究发现在基态生成C2H2+C2H2S和在最低三态生成C4H4+S的反应从能量上考虑最为有利, 而实验上观测到的主要产物C2H2+C2H2S主要是在基态上产生的. 通过对比实验结果与计算结果, 我们认为噻吩光解反应机理与所用激发光波长有关.  相似文献   

8.
用INDO系列方法对由(C59N)2和苯甲醚合成的衍生物C59(C6H4OCH3)N进行了理论研究,得到了分子的稳定构型.结果表明,C59(C6H4OCH3)N具有Cs对称性.以优化构型为基础讨论了分子的UV-Vis光谱、NMR谱线数,结果与实验符合得很好.本文还计算了C59(C6H4OCH3)N的二阶非线性光学系数βμ,结果表明这种物质具有较大的二阶非线性光学系数.  相似文献   

9.
于锋  赵英国  王勇  周晓国  刘世林 《化学学报》2007,65(10):899-905
在G3MP2B3理论水平下研究了氧负离子自由基(O)与乙烯(C2H4)的反应机理. 计算结果表明, O与C2H4经碰撞快速复合形成离子诱导偶极络合物中间体, 然后经历异构化、解离生成各种产物, 分别对应分子离子异构解离与复合电子剥离反应通道. 通过比较各个反应途径上势垒的相对高度, 发现主要产物通道为复合电子剥离通道, 相应的中性产物主要为c-C2H4O; 而分子离子解离通道的通道分支比较小, 其中生成水反应通道相应的阴离子产物主要是CH2=C. 当前的计算证实了以往实验观察的结论.  相似文献   

10.
对链式多Li掺杂体系H(HCN-Li)nH(n=1~6)的结构与性质进行了研究. 发现随着链长n的增大, 体系中有两类分子出现. 当n=1, 2时, 由于额外电子轨道是空的, 从而形成了Li 盐分子; 而当n=3~6时, 额外电子轨道是占据的, 从而形成了具有大范围额外电子云的多Li电子化物分子. 对于系列体系H(HCN-Li)nH(n=1~6), 其非线性光学(NLO)性质的依赖性呈现阶梯式增长的规律, 即静态第一超极化率β0的次序为2179, 2776(n=1, 2)< 5492, 5487(n=3, 4)< 15235, 15377(n=5, 6), 表明增加Li原子掺杂数是提高NLO响应的新途径.  相似文献   

11.
We present here a systematically theoretical study on the nonlinearities and their structure-property relationship of cyanovinyl-substituted donor-acceptor molecules by virtue of semiem-pirical PM3/AM1-FF approach.Good consistency between measured and calculated hyperpolarizabil-ities is obtained.Results show that conformation has a significant effect on hyperpolarizabilities.The torsion angle change between two conjugated parts of the molecular systems can substantially alter the nonlinearities.The total amount of charge transfer difference from donor to acceptor has been introduced to understand the microscopic nature of the nonlinear optical properties for the title molecules.General guidelines may be sought out in the search of molecules with large values of β Some molecules with large molecular hyperpolarizabilities can be predicted by the optimization for the longer π-electron systems with both acceptor and donor groups.  相似文献   

12.
N-(ω-carboxyalkyl)morpholine hydrochlorides, OC4H8N(CH2)nCOOH·HCl, n=1–5, were obtained and analyzed by 13C cross polarization (CP) magic angle spinning (MAS) NMR, FTIR and PM3 calculations. The structure of N-(3-carboxypropyl)morpholine hydrochloride (n=3) has been solved by X-ray diffraction method at 100 K and refined to the R=0.031. The crystals are monoclinic, space group P21/c, a=14.307(3), b=9.879(2), c=7.166(1) Å, β=93.20(3)°, V=1011.3(3) Å3, Z=4. In this compound the nitrogen atom is protonated and two molecules form a centrosymmetric dimer, connected by two N+–HCl (3.095(1) Å) and two O–HCl (3.003(1) Å) hydrogen bonds. 13C CP MAS NMR spectra, contrary to the solution, showed non-equivalence of the ring carbon atoms. The PM3 calculations predict a molecular dimer without proton transfer for an HCl complex, while for an HBr complex an ion pairs with proton transfer, and reproduces correctly the conformation of both dimers but overestimates H-bond distances. Shielding constants calculated from the PM3 geometry of ion pairs gave a linear correlation with the 13C chemical shifts in solids.  相似文献   

13.
The complex [MoW(μ-CC6H4Me-4)(CO)27-C7H7)(η5-C2B9H10Me)] reacts with diazomethane in Et2O containing EtOH to afford the dimetal compound [MoW(OEt)(μ-CH2){μ-C(C6H4Me-4)C(Me)O}(η7-C7H7)(η5-C2B9H10Me)]. The structure of this product was established by X-ray diffraction. The Mo---W bond [2.778(4) Å] is bridged by a CH2 group [μ-C---Mo 2.14(3), μ-C---W 2.02(3) Å] and by a C(C6H4Me-4)C(Me)O fragment [Mo---O 2.11(3), W---O 2.18(2), Mo---C(C6H4Me-4) 2.41(3), W---C(C6H4Me-4) 2.09(3), Mo---C(Me) 2.26(3) Å]. The molybdenum atom is η7-coordinated by the C7H7 ring and the tungsten atom is η5-coordinated by the open pentagonal face of the nido-icosahedral C2B9H10Me cage. The tungsten atom also carries a terminally bound OEt group [W---O 1.88(3) Å]. The 1H and 13C-{1H} NMR data for the dimetal compound are reported and discussed.  相似文献   

14.
Thermal displacement of coordinated nitriles RCN (R = CH3, C2H5 or n-C3H7) in [C5H5Fe(L2)(NCR)]X complexes (L2 = P(OCH3)3)2, (P(OC6H5)3)2 or (C6H5)2PC2H4P(C6H5)2 (DPPE)) by E(CH3)2 affords high yields of [C5H5Fe(L2)(E(CH3)2)]X compounds (E = S, Se and Te; X = BF4 or PF6). Spectroscopic data and ligand displacement reactions are presented and discussed together with related observations on [C5H5Fe(CO)2(E(CH3)2)]BF4 compounds. The molecular structure of [C5H5Fe(P(OCH3)3)2(S(CH3)2)]PF6 was determined by a single-crystal X-ray diffraction study: monoclinic, space group P21/n-C52h (No. 14) with a = 8.4064(12), b = 11.183(2), c = 50.726(8) Å, β = 90.672(13)° and Z = 8 molecules per unit cell. The coordination sphere of the iron atom is pseudo-tetrahedral with an Fe---S bond distance of 2.238 Å.  相似文献   

15.
The study of the reactivity of R---CH=N---(C6H4-2-SMe) with R=C6H5 or 2,4,6-Me3-C6H2 with palladium(II) salts is reported. These studies have allowed us to prepare and characterize the coordination complexes: cis-[Pd{R---CH=N---(C6H4-2-SMe)}Cl2] {R=C6H5 or 2,4,6-Me3-C6H2} and the cyclopalladated compounds [Pd{C6H4---CH=N---(C6H4-2-SMe)}Cl] and [Pd{(2-CH2-4,6-Me2-C6H2)---CH=N---(C6H4-2-SMe)}Cl]. The X-ray crystal structures of the latter complexes reveal that the thioimines act as a [Csp2, phenyl,N,S] and as a [Csp3, N,S] terdentate group, respectively. The study of the reactions of the cyclopalladated compounds with PPh3 is also reported.  相似文献   

16.
Reactions of [(η6-arene)RuCl2]2 (1) (η6-arene=p-cymene (1a), 1,3,5-Me3C6H3 (1b), 1,2,3-Me3C6H3 (1c) 1,2,3,4-Me4C6H2(1d), 1,2,3,5-Me4C6H2 (1e) and C6Me6 (1f)) or [Cp*MCl2]2 (M=Rh (2), Ir (3); Cp*=C5Me5) with 4-isocyanoazobenzene (RNC) and 4,4′-diisocyanoazobenzene (CN–R–NC) gave mononuclear and dinuclear complexes, [(η6-arene)Ru(CNC6H4N=NC6H5)Cl2] (4a–f), [Cp*M(CNC6H4N=NC6H5)Cl2] (5: M=Rh; 6: M=Ir), [{(η6-arene)RuCl2}2{μ-CNC6H4N=NC6H4NC}] (8a–f) and [(Cp*MCl2)2(μ-CNC6H4N=NC6H4NC)}] (9: M=Rh; 10: M=Ir), respectively. It was confirmed by X-ray analyses of 4a and 5 that these complexes have trans-forms for the ---N=N--- moieties. Reaction of [Cp*Rh(dppf)(MeCN)](PF6)2 (dppf=1,1′-bis (diphenylphosphino)ferrocene) with 4-isocyanoazobenzene gave [Cp*Rh(dppf)(CNC6H4N=NC6H5)](PF6)2 (7), confirmed by X-ray analysis. Complex 8b reacted with Ag(CF3SO3), giving a rectangular tetranuclear complex 11b, [{(η6-1,3,5-Me3C6H3)Ru(μ-Cl}4(μ-CNC6H4N=NC6H4NC)2](CF3SO3)4 bridged by four Cl atoms and two μ-diisocyanoazobenzene ligands. Photochemical reactions of the ruthenium complexes (4 and 8) led to the decomposition of the complexes, whereas those of 5, 7, 9 and 10 underwent a trans-to-cis isomerization. In the electrochemical reactions the reductive waves about −1.50 V for 4 and −1.44 V for 8 are due to the reduction of azo group, [---N=N---]→[---N=N---]2−. The irreversible oxidative waves at ca. 0.87 V for the 4 and at ca. 0.85 V for 8 came from the oxidation of Ru(II)→Ru(III).  相似文献   

17.
The relatively less popular group of quinazoline heterocyclic compounds is searched theoretically for compounds with promising classical and nonlinear optical properties, e.g. fluorescence and high (hyper)polarizabilities. Candidates for NLO materials are found among the general series of -4-(3H)-quinazolonyl-ω-aryl polyenes 1, 2, 3 and their fluorescence spectra are registered experimentally. CIS/6-31G* calculations provide no reliable predictions of observed UV/Vis and fluorescence spectra. However, semiempirical CISD PM3 calculations predict fairly well the observed bathochromic effects arising from extension of polyene chains (CHCH)n, n=0–2, and donor substitution in the aryl fragments. The observed fluorescence is assigned to planar quinonoid S1 emissive states, while ground S0 state geometries of compounds with n=0 are nonplanar, and with n>0 are planar. We find high TDHF PM3 static polarizabilities for all studied molecules, as well as high hyperpolarizabilities β SHG and γ THG.  相似文献   

18.
4,4′-Unsymmetrically substituted biphenyls can be synthesized by cross-coupling reactions of substituted aromatic organometallic reagents and aromatic halides catalyzed by palladium complexes. This two-step method from commercially available aromatic halides has been used for the synthesis of a series of donor/acceptor para-substituted biphenyls, D---C6H4---C6H4---A, where D is an electron donor group and A an electron acceptor group, which are of interest as liquid crystal precursors and as having potential in non-linear optics. Biaryls in which the donor-phenyl moiety is replaced by a 2-furyl or 2-thienyl can be synthesized similarly. The method can also be used for the convergent synthesis of previously unreported unsymmetrically substituted polyparaphenylenes (n = 3,4).  相似文献   

19.
The molecular structures and electron affinities of the C6HCl5 and C6Cl6 molecules have been determined using seven pure Density Functional Theory (DFT) or hybrid Hartree–Fock/DFT methods. The EAs of ten kinds of monochlorobenzene, dichlorobenzene, trichlorobenzene and tetrachlorobenzene are also predicted. The basis set used in this work is of double-ζ plus polarization quality with additional diffuse s- and p-type functions, denoted DZP++. These methods have been carefully calibrated (Chem. Rev. 2002, 102, 231). The geometries are fully optimized with each DFT method independently. The equilibrium configuration of hexachlorobenzene is found to be planar with D6h symmetry. The pentachlorobenzene is planar with C symmetry. Three different types of the neutral-anion energy separations reported in this work are the adiabatic Electron Affinity (EAad), the vertical Electron Affinity (EAvert), and the Vertical Detachment Energy (VDE). The most reliable adiabatic electron affinities of the chlorinated benzenes obtained at the BHLYP level of theory are −0.18 eV (C6H5Cl), 0.07 eV (1,2-C6H4Cl2), 0.07 eV (1,3-C6H4Cl2), 0.04 eV (1,4-C6H4Cl2), 0.29 eV (1,2,3-C6H3Cl3), 0.31 eV (1,2, 4-C6H3Cl3), 0.31 eV (1,3,5-C6H3Cl3), 0.51 eV (1,2,3,4-C6H2Cl4), 0.48 eV (1,2,4,5-C6H2Cl4), 0.50 eV (1,2,3,5-C6H2Cl4), 0.74 eV (C6HCl5) and 0.79 eV (C6Cl6), respectively.  相似文献   

20.
The substitution reactions of XC6H4COCl [X=2-, 3-, or 4-CH3; 2-, 3-, or 4-CH3O; 2-, or 4-I; or 2-, 3-, or 4-NO2] and YC6H4COONa [Y=2-, 3-, or 4-CH3; 2-, 3-, or 4-CH3O; 2-I; 4-NO2; or H] in a two-phase H2O/CH2Cl2 medium using pyridine-1-oxide (PNO) as an inverse phase transfer catalyst were investigated. In general, the kinetics of the reaction follows a pseudo-first-order rate law, with the observed rate constant being a linear function of the concentration of PNO in the water phase. In contrast to other analogous reactions, the hydrolysis reaction of 2-, 3-, or 4-NO2C6H4COCl in H2O/CH2Cl2 medium is catalyzed considerably by PNO and reaches an equilibrium. In the PNO-catalyzed reaction of XC6H4COCl and XC6H4COONa in H2O/CH2Cl2 medium, the order of reactivities of XC6H4COCl toward reaction with PNO in CH2Cl2 is 2-IC6H4COCl>4-IC6H4COCl>(C6H5COCl,3-CH3OC6H4COCl)>3-CH3C6H4COCl>(2-CH3C6H4COCl,4-CH3C6H4COCl)>4-CH3OC6H4COCl>2-CH3OC6H4COCl. Combined with the results of other analogous reactions, good Hammett correlations with positive reaction constant were obtained for the meta- and para-substituents, which supports that the XC6H4COCl–PNO reaction in CH2Cl2 is a nucleophilic substitution reaction.  相似文献   

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