142 resultados para I.2.4


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Three title compounds were prepared and the structure of title compound 2 was characterized by IR, H-1 NMR, C-13 NMR, Sn-119 NMR spectroscopy and the crystal structure of compound 2a was determined by X-ray analysis with the final R indices[I >2 sigma (I)] R-1 = 0.0350 and R-2,R-omega = 0.0888. The crystal of compound 2a belongs to triclinic system, space group P1 with a = 1.0598(6) nm, b = 1.307 4(10) nm, c = 1.378 6(10) nm, alpha = 62.666(7)degrees, beta = 72.530(2)degrees, gamma = 80. 680(2)degrees, V = 1.618 0 nm(3), D-x = 1. 444 g (.) cm(-3), Z = 1, F (000) = 728. The bond length of Sn1-O1 is 0. 2076 nm and Sn1 . . . O2 distance is 0.301 3 nm. The coordination about the tin atom can be considered as a distorted tetrahedral. The detail values of H-1 NMR, C-13 NMR, Sn-119 NMR, (2)J(119Sn-1H) and J(119Sn-13C) were obtained. delta (119Sn) = 23.836, (2)J(119Sn-1H) = 88.0 Hz, (1)J(119Sn-13C) = 347.1 Hz, (2)J(119Sn-13C) = 45.6 Hz.

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The title complexes were synthesized and the crystal structures of their salts were determined by single-crystal X-ray structure analyses. Na-2[Zn-I(ida)(2)]. 7H(2)O: Triclinic, P1, a=0.523 4(2) nm, b=0.897 10(10) nm, c=1.069 10(10) nm, alpha=85.910(10)degrees, beta= 76.380(10)degrees, gamma=83.52(2)degrees, V=0.484 2(2) nm(3), Z=1. The complex anion [Zn-I (ida)(2)](2-) has a pseudo-octahedral structure in which the two N atoms: are in a trans configuration. Na-4[Hg-I(nta)(2)]. 7H(2)O: Monoclinic, C-c, a = 1.795 0(4) nm, b = 0.892 9(2)nm, c = 1.575 4(2) nm, beta = 92.78 (3)degrees, V = 2.526 2(9) nm(3), Z = 4. The complex anion [Hg-I (nta)(2)](4-) has a pseudo-bicapped-octahedral structure in which the two N atoms are in a trans configuration.

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The title coordination polymer, {[Ni3Na(OH)(C9H3O6)(2)( H2O)(11)] center dot 1.5H(2)O}(n), is built up from three independent Ni-II ions and one Na-I cation bridged by benzene-2,4,6-tricarboxylate ( BTC) ligands and water molecules. Three Ni-II ions are bridged by three bidentate carboxylate groups of three BTC ligands, two aqua ligands and one OH- unit, to form a trinuclear metal cluster. The Na-I cation is bonded to the Ni-II cluster by two bridging water molecules. One of the three BTC ligands bridges neighbouring clusters into one-dimensional chains, which are further connected through a complex hydrogen-bonding scheme, forming a three-dimensional suprastructure. The title complex is isomorphous with the previously reported Co-II complex.

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光系统I(photosystem I,PSI)是光合膜上参与光合作用原初反应过程的主要膜蛋白超分子复合体之一。高等植物的PSI是由核心复合体(14个亚基)和捕光色素蛋白复合体I(light-harvesting complex I, LHCI,含4个Lhca蛋白)组成的超分子复合体,它的主要功能是调节光诱导的从囊腔侧的质体兰素(plastocyanin,PC)向基质侧的铁氧还蛋白(ferredoxin,Fd)的电子传递。研究PSI的结构与功能对于揭示植物光合作用高效吸能、传能的分子机理具有重要意义。在本文中,我们首先建立了分离制备PSI及其亚组分的方法(Qin et al., 2007),并在此基础上对PSI在强光破坏的过程中结构与功能的变化进行了比较深入的研究。本论文的主要研究结果如下: 1.快速、高效分离纯化PSI及其亚组分方法的建立。 国际上传统的PSI分离方法(Bassi and Simpson, 1987; Croce et al., 1998; Påsllon et al.1995; Schmid et al. 2002),耗时长较长(分离PSI颗粒一般需要多于20h的蔗糖超速离心过程,而分离PSI的亚组分则需要25-60h的蔗糖超速离心过程)、得率较低,这不便于PSI方面的研究,为此我们首先改进了传统的分离纯化方法。新方法以高等植物菠菜叶片作为原材料,使用Triton X-100作为增溶剂,通过差速离心技术获得的粗制品,然后使用十二烷基麦芽糖苷(n-Dodecyl β-D-maltoside, DDM)增溶PSI粗制品,之后采用100,000×g,垂直转头(Beckman VTi 50)0.1-1 mol/L蔗糖梯度离心3h获得纯度较高的PSI颗粒。然后使用DDM和3-(N, N-Dimethylpalmitylammonio) propanesulfonate (zw 3-16)两种增溶剂处理PSI,后经100,000×g,垂直转头(Beckman VTi 50)蔗糖梯度离心4h获得纯度较高的PSI core、LHCI-680、LHCI-730复合体。采用吸收光谱、荧光光谱技术研究了各样品的基本光谱学特性,采用HPLC分析了各样品的色素组成,结果显示平均每个Lhca蛋白结合1.5-1.6黄体素,1.0紫黄质, 0.8-1.1 β-胡萝卜素,该方法制备的LHCI比传统方法制备的LHCI减少了类胡萝卜素的丢失。这一工作为以后结构与功能的研究工作奠定了良好的基础。 2.PSI复合体及其亚组分的特性研究。 PSI颗粒具有一定的适应环境酸碱变化的能力,在我们的试验条件下PSI颗粒在pH 5-10相对稳定。PSI、LHCI很难通过加入Mg2+、Ca2+、Na+阳离子聚集沉淀。经绿胶鉴定我们制备的LHCI-680、LHCI-730是二聚体形式;而把PSI绿胶后再进行第二向十二烷基硫酸钠-聚丙烯酰氨凝胶电泳(SDS-PAGE)电泳,结果发现在稍强烈的绿胶增溶条件下,LHCI-730是以二聚体的形式存在,但是LHCI-680却是以单体的形式出现。这说明LHCI形成的二聚体,尤其是LHCI-680,较容易受到增溶处理而分离成单体形式,解释了以生化分离手段得到的LHCI-680的聚集形式是单体还是二聚体这个目前国际上还有有争议的问题。 3.PSI、LHCI光破坏的基本特点。 采用白光(2500 μmol•m-2•s-1)照射PSI颗粒,通过SDS-PAGE及室温吸收光谱检测光照过程中PSI复合体的变化,结果表明:去氧处理能够大大延缓PSI的光破坏,而PSI脱辅基蛋白不会发生光破坏,这说明PSI发生的光破坏可能与Chl与O2的相互作用有关。采用白光(1000 μmol•m-2•s-1、300 μmol•m-2•s-1)处理LHCI-680、LHCI-730,发现LHCI-680被破坏的速度明显快于LHCI-730被破坏的速度,这是首次在体外分离的水平上揭示了不同LHCI光破坏方面的差异。LHCI-680与LHCI-730在光破坏方面的差异可能与两种天线蛋白结合的类胡萝卜素的种类和数量不同有关,还可能与二者结合的长波长Chl的情况有关,但是具体的原因还有待于进一步的研究。 4.结合不同的捕光色素蛋白复合体(light-harvesting complex,LHC)对PSI光破坏的影响。 为了研究结合不同的捕光天线对PSI光破坏的影响,我们制备了PSI-LHCII、PSI、PSI core三种复合体。使用白光(2500 μmol•m-2•s-1)照射这三种复合体,并通过测定各复合体在光破坏过程中蛋白亚基、吸收光谱、PSI活性及P700含量的变化,对比三者光破坏的速度,结果发现PSI-LHCII在这三种复合体中光破坏速度最快,而PSI和PSI core两种复合体光破坏速度基本一致。我们推测在光照过程中部分光系统II捕光Chl a/b蛋白复合体II(light-harvesting complex II,LHCII)能够向PSI core传递能量,另外PSI-LHCII绿胶分析的结果表明发生了LHCII三聚体向单体的转变,这种强光下发生的LHCII聚合形式的转化可能是高光强下调节光能捕获的一种机制,由于植物体内具有较完整的保护系统,体内PSI-LHCII的光破坏可能与体外情况不同;另外LHCI与PSI core的解离可能发生在强光照射的早期,具有保护PSI core减少光破坏的积极作用。该部分的研究首次观察了结合不同的捕光天线对PSI光破坏的影响。

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本论文以咪唑衍生物为配体,合成了新型Cu(I)中性配合物和对应的离子型配合物,考察了它们的光物理和电化学性质。具体工作如下: 设计与合成了分别以2-(2'-吡啶基)苯并咪唑(Hpbm)和2-(2'-喹啉基)苯并咪唑(Hqbm)为配体的Cu(I)中性配合物和四氟硼酸根为抗衡离子的离子型配合物。配合物的晶体结构表明中心铜离子均为扭曲的四面体配位构型,中性配合物的咪唑环中的键长趋于平均化。所有配合物在20wt%浓度的PMMA薄膜中的最大发射处于518.5-597.5nm之间,发光效率为0.097-0.249, 磷光寿命为11.7-25.9µs。中性配合物与对应的离子型配合物相比,其紫外可见吸收光谱发生红移,光致发光光谱发生蓝移。 以2, 2'-联苯并咪唑为配体(H2dbm),设计和合成了双核和单核Cu(I)配合物,其中双核配合物Cu2(dbm)(PPh3)4在二氯甲烷溶液和PMMA (20 wt%)薄膜中均表现为蓝光发射,在20wt%浓度的PMMA薄膜中的最大发射为448.5和475.5nm。单核离子型配合物[Cu(Hdbm)(PPh3)]2[BF4]在20wt%浓度的PMMA薄膜中的最大发射分别为511,发光效率分别为0.150, 磷光寿命分别为12.0。

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利用重离子融合蒸发反应12 2 Sn(11B ,5n2p)布居了双奇核12 6 I的激发态 ,首次建立了具有集体带结构特征的能级纲图 ,其中包括 2 0条新γ跃迁 .所建能级纲图的核素归属指定得到了核反应12 4 Sn(7Li,5n)的交叉支持 .简单讨论了所建带结构的可能组态 .

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利用1 2 4 Sn( 7Li,4n) 1 2 7I反应研究了1 2 7I核的在束γ谱 ,建立了包括 2 5个新能级和 52条新γ射线构成的新能级纲图 .将基于πh1 1 2 粒子态 ( 1 1 2 - )的负宇称能级推高到 ( 3 5 2 - ) ,在较重的1 2 7I核中得到了退耦合能级结构 .由于在两个正宇称带ΔI=2能级系列中观测到了强的带间跃迁 ,建议此带的主要成分为g7 2质子的组态 .另外还观测到了两个正宇称ΔI=2和ΔI=1能级系列 ,它们可能基于πd5 2 的单准粒子带和一个 3准粒子带 .

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描述了一台 2 .4 5GHz单电荷态电子回旋共振 (ECR)离子源的原理、结构与应用。介绍了其微波系统与磁场结构。在微波输入功率约 6 0 0W ,引出高压 2 2kV ,引出孔径为6mm时 ,该离子源的总束流I(H1++H2 ++H3+)可达 90mA。

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A series of new rare-earth metal bis(alkyl) complexes [L(1-3)Ln(CH2SiMe3)(2)(THF)(n)] (L-1 = MeC4H2SCH2NC6H4(Ph)(2)P=NC6H2Me3-2,4,6: Ln = Sc, n = 1 (1a); Ln = Lu, n = 1 (1b); L-2 = MeC4H2SCH2NC6H4(Ph)(2)P=NC6H3Et2-2,6: Ln = Sc, n = 1 (2a); Ln = Lu, n = 1 (2b); Ln = Y, n = 1 (2c); L-3 = MeC4H2SCH2NC6H4(Ph)(2)P=(NC6H3Pr2)-Pr-i-2,6: Ln = Sc, n = 0 (3a)) and (LSc)-Sc-4(CH2SiMe3)(2()THF) (4a) (L-4 = C6H5CH2NC6H4(Ph)(2)P=NC6H3Et2-2,6) have been prepared by reaction of rare-earth metal tris(alkyl)s with the corresponding HL1-4 ligands via alkane elimination.

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Fluorenyl modified N-heterocyclic carbene ligated rare earth metal bis(alkyl) complexes, (Flu-NHC)Ln(CH2SiMe3)2 (Flu-NHC = (C13H8CH2CH2(NCHCCHN)C6H2Me3-2,4,6); Ln = Sc (1a); Ln = Y (1b); Ln = Ho (1c); Ln = Lit (1d)), were synthesized and fully characterized by NMR and X-ray diffraction analyses. Complexes Ib-d with the activation of (AlBu3)-Bu-i and [Ph3C][B(C6F5)4] exhibited high activity, medium syndio-but remarkably high 3,4-regio-selectivity, and the unprecedented livingness for the polymerization of isoprene. Such distinguished catalytic performances could be maintained under various monomer-to-initiator ratios (500-5000) and broad polymerization temperatures (25-80 degrees C).

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Four novel diimine rhenium(I) carbonyl complexes with the formula [Re(CO)(3)(L) Br], where L = 2-(4-(9H-carbazol-9-yl) phenyl)-1H-imidazo[4,5-f][1,10] phenanthroline (P1), 2-(4-(3,6-di-tert-butyl-9H-carbazol-9-yl) phenyl)-1H-imidazo-[4,5-f][1,10] phenanthroline (P2), 2-(4-(6-(9H-carbazol-9-yl)-9H-3,9'-bicarbazol-9-yl) phenyl)-1H-imidazo[4,5-f][1,10] phenanthroline (D1), and 2-(4-(3', 6'-di-tert-butyl-6-(3,6-di-tert-butyl-9H-carbazol-9-yl)-9H-3,9'-bicarbazol-9-yl) phenyl)-1H-imidazo[4,5-f][1,10] phenanthroline (D2), have been successfully synthesized and fully characterized by (HNMR)-H-1, IR, and UV-Vis, etc. The luminescence quantum yields (LQYs) of the parent Re(I) complexes P1 and P2 are 0.13 and 0.16, respectively, which are much higher than the previously reported Re(I) dendrimers. The HOMOs and the LUMOs of P1 and P2 are calculated to be mainly composed of [d(Re) + pi(CO + Br)] and pi*(L) orbital, respectively.

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Two novel compounds, [Co(4,4'-bipy)(H2O)(4)](4-abS)(2).H2O (1) and [Mn(4,4'-bipy)(H2O)(4)](4-abs)(2).2H(2)O (2) (4,4'-bipy = 4,4'-bipyridine; 4-abs = 4-aminobenzenesulfonate), have been synthesized in aqueous solution and characterized by single-crystal X-ray diffraction, elemental analyses, UV-vis and IR spectra, and TG analysis. X-ray structural analysis revealed that 1 and 2 both possess unusual hydrogen-bonded three-dimensional (3-D) networks encapsulating one-dimensional (1-D) covalently bonded infinite [M(4,4'-bipy)(H2O)(4)](2+) (M = Co, Mn) chains. The 4-abs anions in 1 form 1-D zigzag chains through hydrogen bonds. These chains are further extended through crystallization water molecules into 3-D hydrogen-bonded networks with 1-D channels, in which the [Co(4,4'-bipy)(H2O)(4)](2+) linear covalently bonded chains are located. Crystal data for 1: C22H30CoN4O11S2, monoclinic P2(1), a = 11.380(2) Angstrom, b = 8.0274(16) Angstrom, c = 15.670(3) Angstrom, alpha = gamma = 90degrees, beta = 92.82(3)degrees, Z = 2. Compound 2 contains interesting two-dimensional (2-D) honeycomb-like networks formed by 4-abs anions and lattice water molecules via hydrogen bonding, which are extended through other crystallization water molecules into three dimensions with 1-D hexagonal channels. The [Mn(4,4'-bipy)(H2O)(4)](2+) linear covalent chains exist in these channels. Crystal data for 2: C22H32WN4O12S2, monoclinic P2(1)/c, a = 15.0833(14) Angstrom, b = 8.2887(4) Angstrom, c = 23.2228(15) Angstrom, alpha = gamma = 90degrees, beta = 95.186(3)degrees, Z = 4.

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Two new compounds, [CoL2(H2O)(2)](NO3)(2). 8H(2)O (1) and [CoL(H2O)(2)(CH3CO2)(2)]. H2O (2), were obtained from self-assembly of the corresponding metal salts with 1,1'-(1,4-butanediyl)bis(benzimidazole) (L). In 1, each cobalt ion is coordinated to four nitrogen atoms from four molecules of L, and to two water molecules. Metal ions are bridged by L ligands to form infinite (4, 4) networks that contain 44-membered rings. The (4, 4) networks of 1 stack in a parallel fashion, resulting in the formation of large channels in the material. In 2, each cobalt ion is coordinated to two N atoms from two L molecules, two water molecules and two carboxylate O atoms from two acetate anions. Each L molecule is coordinated to two cobalt ions, acting as a bridging ligand as in 1. The bridged cobalt ions form an infinite zigzag chain structure.