141 resultados para 8 [2 [4 (2 methoxyphenyl) 1 piperazinyl]ethyl] 8 azaspiro[4.5]decane 7,9 dione

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本文对神农架地区广泛分布的米心水青冈林和锐齿槲栎林的种群和群落学特征、干扰历史、更新策略、生物量、生产量及元素循环特征进行了研究。得到如下结论: 1 米心水青冈林是神农架地区山地垂直分布的地带性植被类型,主要群落学特征为:(1)建群种明显,该区域主要有2种类型,即米心水青冈林和米心水青冈、锐齿槲栎林;(2)群落结构简单,但物种组成丰富,在6600m~2样地中出现高等植物(不含苔藓植物)77科150属271种,组成种类以蔷薇科、百合科、忍冬科、虎耳草科、樟科、杜鹃花科和壳斗科为主;(3)群落乔木层(占重要值的12%)和灌木层(占盖度的15%)中含有一定比例的常绿树种;(4)群落生活型以高位芽植物(70.89%)占绝对优势,其次为地面芽植物(15.50%)和地下芽植物(12.92%)。 2 米心水青冈是多主干的树种,萌枝现象普遍,但萌枝数量不同地点差异较大。通过萌枝产生的枝群体平均密度为257 ± 99.3n•hm~(-2)。枝群体的年龄结构表现为“幼龄个体数目较多型”和“中国年龄阶段数目较多型”,并且有较多的枝群体表现出一致的年龄结构。从整个群落米心水青冈的年龄结构来看,表现出发展型种群的特点。枝群体的分布格局为随机分布。9丛米心水青冈完整的年轮分析结果表明,它们萌枝的时间不是边疆的,而与森林的受干扰有关。根据83个圆盘和生长锥芯资料,米心水青冈在萌枝后成长为乔木层或林冠层的过程中,径向生长表现为5种模式。这是丛株内竞争的结果。萌枝在米心水青冈林的维持和发展过程中,具有重要的生态学作用。 3 锐齿槲栎林是神农架地区山地垂地分布的地带性植被类型,主要群落学特征为:(1)建群种明显,该区域主要有2种类型,即锐齿槲栎林和锐齿槲栎、米心水青冈林;(2)群落乔木层和灌木层中含有一定比例的常绿树种,和暖温带的落叶栎林有较大差异;(3)群落物种组成丰富,不仅具有典型的温带科属,还有典型亚热带分布的科属,组成种类主要以蔷薇科、百合科、忍冬科、虎耳草科、山茱萸科、杜鹃花科、壳斗科和樟科;(4)生活型以高位芽植物(66.32%)占绝对优势,其次为地面芽(23.51%)和地下芽(9.47%)植物。 4 通过样地调查、树干解析及直径分析法,对米心水青冈林和锐齿槲栎林受压和释压历史及更新策略进行了研究。米心水青冈直径生长表现为5种模式。而锐齿槲栎只表现为2种模式。85.9 ± 6.9%的米心水青冈有过受压过程,平均受压2.1 ± 0.8次,平均受压时间为47 ± 24.1a,最长受压时间73a,平均释压次数为1.6 ± 0.7次,平均释压时间为23 ± 21.5a,而60.83%的锐齿槲栎都均有1次受压。平均受压时间为19 ± 14a,受压后没有表现出释压过程。结合高生长和径向生长,认为米心水青冈是耐阴树种,它的更新策略是在林下形成苗性萌枝,在有林窗形成时释压生长进入乔木层;而锐齿槲栎是不耐阴树种,它的更新策略是通过产生大量种子,当有大的林窗时,幼苗在林窗内生长逐步进入乔木层。 5 神农架地区102-130a成熟米心水青冈林的生物量在251.31-358.63T•hm~(-2)之间,平均为288.70 ± 48.30T•~(-2),20-60a锐齿槲栎林群落生物量在134.85-301.20T•hm~(-2),平均为231.60 ± 78.10T•hm~(-2)。虽然米心水青冈林和锐齿槲栎林灌木层草本层及藤本植物组成很丰富,但二种类型森林生物量的95%以上集中在乔木层。乔木层生物量主要集中在少数优势种中。在米心水青冈林生物量从大到小的序列中,前5种植物分别占乔木层总生物量58.67%-96.37%不等,同样锐齿槲栎林前5种植物占群落生物量的68.13%-95.26%。常绿植物占乔木层生物量的比例变化较大,米心水青冈林中占2.85-18.70%,锐齿槲栎林中一般常绿植物占0.8-9.98%,只有1个锐齿槲栎林样地常绿植物(主要是粉白杜鹃)占乔木层生物量的44.04%。米心水青冈林生物量根冠比为0.27 ± 0.05,锐齿槲栎林为0.21 ± 0.06。神农架地区米心水青冈林的生物量,在成熟的欧洲水青冈林及日本的水青冈林生物量范围之内,而锐齿槲栎林生物量远远大于我国温带落叶栎林的生物量。 6 神农架地区102-130a米心水青冈林生产量范围在1857-2786g•m~(-2)•a~(-1),平均为2330 ± 397 g•m~(-2)•a~(-1)。20-60a锐齿槲栎林的生产量范围在1319-2521 g•m~(-2)•a~(-1),平均为1930 ± 498 g•m~(-2)•a~(-1)。米心水青冈林和锐齿槲栎林乔木层生产量占群落总生产量的95%以上,乔木层各器官生产量大小顺序为叶> 树干> 枝和根,其中叶生产量占乔木层的一半以上,达53.87 ± 2.72%(米心水青冈林)和57.31 ± 6.23%(锐齿槲栎林)。在乔木层生产量从大到小的序列中,前5种植物平均占乔木层总生产量的81.03 ± 13.94%(米心水青冈林,范围在62.75%-92.66%)和84.23 ± 9.68%(锐齿槲栎林,范围在68.54-95.11%)。米心水青冈林和锐齿槲栎林群落地下部分生产量占总生产量的比例分别为11.29 ± 1.02%和9.22 ± 2.72。和我国其它地区地带性植被类型相比。米心水青冈林和锐齿槲栎生产量是较高的,和亚热带绿阔叶林生产量接近,但在器官分配上两者差异较大。 7 米心水青冈林和锐齿槲栎林土壤均呈酸性。其中锐齿槲栎林地土壤酸性更强。土壤元素特征表现为Al>C>K>Mg>Ca>N>S、P的特点,富铝化作用明显。8种元素在群落优势植物不同部位含量差异较大,N、P、K、Ca、Mg基本上是以叶片含量最高,树干或根中最低。仅从叶片来看,元素特征表现为C>Ca、N>K>Mg>S>P、Al。优势植物的C/N和C/P显著高于暖温带落叶阔叶林优势植物。8种元素在米心水青冈林和锐齿槲栎林中积累量分别为147.09 ± 25.60和116.00 ± 37.63 Mg hm~(-2)a~(-1),其中97%以上积累在群落乔木层。两种森林类型各元素的积累量都表现为C>Ca, N> K> Mg> P> S> Al的特点。米心水青风林和锐齿槲栎林8种元素的年存留量分别为6263 ± 90.8和5946 ±246 kg hm~(-2)a~(-1),其中N、P、K、Ca、Mg 5种主要营养元素的存留量分别为179.7 ± 18.2和169.4 ± 23.5kg hm~(-2) a~(-1)。两种森林类型各元素的存留量都表现为C> N> Ca> K> Mg> S> P> Al。

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纳米微粒的体积效应使其成为表面纳米工程及功能化纳米结构材料制备的理想研究对象 [1~3].纳米粒子具有独特的电子、催化及光学特性[4],近年来关于纳米粒子的制备及其在材料科学领域中的应用受到研究者的极大关注 .而贵金属纳米粒子由于其在催化领域中的广泛应用而成为最重要的研究对象之一[5,6].电催化氧还原是一直为化学家瞩目的研究领域[7~9].研究主要目的之一是寻找合适的氧电极反应催化剂 ,并使之能够应用于燃料电池中.其中催化氧电极材料研究得最多的是贵金属 Pt[10,11].贵金属 Pd对氧催化还原的研究工作很少.我们首次用电势阶跃法在多晶金电极表面制备钯纳米粒子,并用循环伏安法研究了该纳米粒子对氧的催化还原,用扫描电子显微镜(SEM)表征了沉积在金电极表面的钯纳米粒子的表面形貌.1实验部分1.1 试剂 氯化亚钯酸钾 (K2 Pd Cl4 ,上海化学试剂一厂 )和氯化钾 (北京 5760 1化工厂 )为分析纯 ,所有试剂用前未经进一步纯化.实验用水均为 Millipore Milli-Q(Millipore Co. USA)纯化过的超纯水(电阻率为18.2MΩ·cm...

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Fe(III), Cr(III), Fe(II), Co(II) and Ni(II) chloride complexes supported by 2,6-bis[1-(iminophenyl)ethyl]pyridine have been synthesized and characterized along with single crystal X-ray diffraction. These complexes, in combination with MAO, have been examined in butadiene polymerization. The catalytic activity and regioselectivity are strongly controlled by metal center and cocatalyst (MAO/Co ratio dependent in the case of Co(II) complex). The activity decreases in the order of Fe(III) > Co(II) > Cr(III) approximate to Ni (II) complexes, in consistent with the space around the metal center. Polybutadiene with different microstructure content, from high trans-1,4 units (88-95% for iron(III) and Cr(III)), medium trans-1,4 and cis-1,4 units (55% and 35%, respectively, for iron(II)) to high cis-1,4 units 79% for Co(II) and 97% for Ni(II) call be easily achieved by varying of the metal center.

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The crystal of complex [Li(THF)(4)][Fe(S2C2B10H10)(2)(THF)] 3 belongs to monoclinic, space group P2(1) with a = 11.964(2), b = 16.527(3), c = 12.554(3) Angstrom,beta = 108.70(3)degrees, V= 2351.3(8) Angstrom(3), Z = 2, M-r = 835.95, D-c = 1.181 g/cm(3), mu (MoKalpha) = 5.30 cm(-1), f(000) = '874, R = 0.0622 and Rw 0.1538 for 1641 observed reflections with I > 2sigma(I). The ionic complex,of 3 contains the square pyramidal anion of [Fe(S2C2B10H10)(2)(THF)](-) and the tetrahedral cation of [Li(THF)(4)](+). The iron is 5-coordinated and located in the square pyramidal configuration. The iron atom and the four sulfur atoms are almost coplanar. The Lithium atom is coordinated with four oxygen atoms of four THF molecules and located in a tetrahedral configuration.

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利用溶胶 凝胶法合成了 (Ce0 .8RE0 .2 ) 1-xMxO2 -δ(RE :稀土 ,M :碱土 )系列固体电解质 ,XRD表明 80 0℃即形成萤石结构 ,较高温固相反应合成温度低约 70 0℃ .测定了样品的电导率和阻抗谱 .XPS测试表明 ,掺杂碱土氧化物后吸附氧浓度明显增大 ,氧空位增多 ,电导率和氧离子迁移数增大 ,改善了CeO2 基固体电解质的性能 .讨论了碱土及稀土离子对电性质的影响 .(Ce0 .8Sm0 .2 ) 1-0 .0 5 Ca0 .0 5 O2 -δ80 0℃时电导率0 1 2 6S·cm-1,氧离子迁移数 0 .99.

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The title compound, C24H24O3Si2, is a twofold symmetric silicocrown ether with the two dimethylsilyl groups attached to the O atoms of 1,1'-bi-2-naphthol, and bridged by another O atom.

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掺杂的CeO2基固体电解质因其在中低温条件下(500 ̄700℃)具有高氧离子电导率而成为有希望的IT-SOFCs(intermediate temperature-solid oxide fuel

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In the title complex, [Cd(C2H3O2)(2)(C17H10N4O)(2)], the central Cd-II ion (site symmetry 2) shows an uncommon eight-coordinate CdN4O4 coordination geometry arising from two N,N-chelating 2-(2-furyl)-1H-imidazo[4,5-f]-1,10-phenanthro-line molecules and two O, O-bidentate acetate anions.

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The ligand Hhfth [4,4,5,5,6,6,6-heptafluoro-1-(2-thienyl)hexane-1,3-dione], which contains a heptafluoropropyl group, has been used to synthesize several new ternary lanthanide complexes (Ln = Er, Ho, Yb, Nd) in which the synergistic ligand is 1,10-phenanthroline (phen) or 2,2'-bipyridine (bipy). The two series of complexes are [Ln(hfth)(3)phen] [abbreviated as (Ln)1, where Ln = Er, Ho, Yb] and [Ln(hfth)(3)bipy] [abbreviated as (Ln)2, where Ln = Er, Ho, Yb, Nd]. Members of the two series have been structurally characterized. The growth morphology, diffuse reflectance (DR) spectra, thermogravimetric analyses, and photophysical studies of these complexes are described in detail. After ligand-mediated excitation of the complexes, they all show the characteristic near-infrared (NIR) luminescence of the corresponding Ln(3+) ions (Ln = Er, Ho, Yb, Nd). This is attributed to efficient energy transfer from the ligands to the central Ln(3+) ions, i.e. an antenna effect. The heptafluorinated substituent in the main hfth sensitizer serves to reduce the degree of vibrational quenching. With these NIR-luminescent lanthanide complexes, the luminescent spectral region from 1300 to 1600 nm, which is of particular interest for telecommunication applications, can be covered completely.

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The structure of the title compound, [Cu2Cl2(C12H10N2)](n), contains infinite CuCl staircase-like chains, which lie about inversion centres. The trans-1,2-di-4-pyrid-ylethyl-ene mol-ecules also lie about inversion centres and connect the CuCl chains through Cu-N coordination bonds into a two-dimensional organic-inorganic hybrid network. The planar sheets are stacked along the c axis and associated through weak C-H center dot center dot center dot Cl inter-actions. The results show a reliable structural motif with controllable separation of the CuCl chains by variation of the length of the ligand.

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In the title compound, [Zn(C8H4O4)(C17H10N4O)](n), the Zn-II atom is five-coordinated by two N atoms from the phenanthro-line-derived ligand and three O atoms from one bidentate and one monodentate benzene-1,2-dicarboxylate (1,2-BDC) dianions in a distorted trigonal-bipyramidal geometry. The Zn-II atoms are bridged by the 1,2-BDC ligands to form a single-chain structure. Neighboring chains interact through pi-pi interactions, leading to a two-dimensional network.

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2-(2-Hydroxyphenyl)-5-phenyl-1,3,4-oxadiazole 1 and 2,5-bis(2-hydroxyphenyl)-1,3,4-oxadiazole 2 were used as anion fluorescent and colorimetric chemosensors with high selectivity for H2PO4- and F- over Cl-, while 2 can even distinguish H2PO4- from F-. (C) 2002 Elsevier Science Ltd. All rights reserved.