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991.
以苯胺和氯乙酰氯为原料在NaOH存在下酰化合成N-氯乙酰基苯胺,然后N-氯乙酰基苯胺在无水AICI,催化下环化合成2-吲哚酮.对由N-氯乙酰基苯胺合成2-吲哚酮的工艺条件进行了改进.结果表明合成2-吲哚酮的最佳条件为:反应温度为220℃,反应时间为60min,加料时温度为180℃,N-氯乙酰基苯胺与氯化钠,无水AlCl3的重量比为1:1:5.5.改进后的合成2-吲哚酮收率达到88.3%,纯度99%,收率比原工艺提高了24.6%.在此基础上,还合成了5-甲基-2-吲哚酮,并得到其最佳条件为:反应温度为190℃,反应时间为30min,加料时温度为180℃,4-甲基-N-氯乙酰基苯胺与氯化钠,无水AlCl3的重量比为1:1:5.5,收率达到83.1%,纯度为99%.  相似文献   
992.
在水热条件下,合成了6个新的镧系金属配位聚合物,Ln2(SSA)2(phen)4(H2O)2(Ln=Er(Ⅲ) (1),Yb(Ⅲ) (2)),[La2(SSA)2(phen)2(H2O)4·(phen)·(H2O)1.33相似文献   
993.
通过高温熔融法在空气条件下制备了Eu2O3掺杂的BaO-B2O3-P2O5玻璃,发射光谱中400~550 nm的宽峰为Eu2+的5d→4f跃迁,即在非还原气氛条件下实现了Eu3+→Eu2+的转变。首先,Eu3+离子不等价取代玻璃基质中的Ba2+导致Eu2+的产生。同时,固体核磁共振谱数据表明当玻璃中的B主要以[BO4]的形式存在时,利于玻璃中的Eu以Eu2+价态存在。与ZnO-B2O3-P2O5∶Eu2+玻璃中Eu2+的发光相比,BaO-B2O3-P2O5玻璃中O2-所形成的Eu的配位场强于ZnO-B2O3-P2O5玻璃中O2-所形成的Eu配位场。Eu在BaO-B2O3-P2O5玻璃中产生的晶体场分裂能大,故d→f跃迁产生的光发射波长较长。  相似文献   
994.
采用XRD、TEM、H2-TPR、Raman、XPS和活性评价等方法, 研究了Mg助剂对Co/Mg/HZSM-5催化剂物理化学性质和甲烷部分氧化(POM)制合成气反应性能的影响. 研究发现, 在Co/HZSM-5催化剂中添加Mg助剂, 可有效地提高催化剂的催化活性和稳定性. 在750 ℃和空速1.0×105 mL·h-1·g-1反应条件下, Co/Mg/HZSM-5在连续反应30 h的实验时间内催化活性稳定不变, 而Co/HZSM-5因其活性中心Co0转化生成CoAl2O4非活性相, 反应10 h后即迅速失活. 催化剂表征结果表明, 在Co/Mg/HZSM-5催化剂中钴物种除以Co3O4存在外, 一部分钴物种还与Mg助剂发生强相互作用生成较难还原的MgCo2O4, 由此导致还原后钴金属的分散度较高. 关联催化剂表征和活性评价结果, 讨论了催化剂结构与性能之间的关系.  相似文献   
995.
采用溶胶-凝胶法结合高温热处理制备了锂离子电池用5 V正极材料LiNi0.5Mn1.5O4-xFx(x=0, 0.1). 通过X射线衍射(XRD)、扫描电子显微镜(SEM)和低温氮吸附法(BET)表征了粉体材料的结构、表面形貌和比表面特性, 并以其为正极材料装配电池后, 在85 ℃下高温保存24 h, 测量了保存前后电池的一系列电化学性质变化. 结果表明, 高温保存时电池开路电压会因自放电而较快地下降. 材料的比表面积和氟掺杂显著地影响电池的电压保持能力. 比表面积愈大, 电压保持时间愈短. 氟掺杂有利于提高电池在高温条件下的电压稳定性, 并可以改善电极与电解液之间的界面性质,使充放电性能更好.  相似文献   
996.
W-ZSM-5催化剂C4烯烃裂解制丙烯催化性能研究   总被引:3,自引:0,他引:3  
采用浸渍法制备了W-ZSM-5催化剂,用X-射线衍射(XRD)、N2吸附、NH3-TPD和H2-TPR等表征手段,研究了W的添加对HZSM-5催化剂物化性质的影响,并考察了W-ZSM-5催化剂在C4烯烃催化裂解制丙烯反应中的催化性能.结果表明,W的添加中和了催化剂的部分强酸位,降低了催化剂的酸性和酸强度,抑制了芳构化和氢转移等副反应的发生,增强了催化剂的抗积炭性能,促进了催化裂解过程中歧化反应的发生,有利于提高丙烯的选择性和收率.当W含量为3.2%时,催化剂的丙烯选择性和收率值达到最大,分别为47.4%和41.3%.  相似文献   
997.
The Sr–Ge–O system has an earth‐scientific importance as a potentially good low‐pressure analog of the Ca–Si–O system, one of the major components in the constituent minerals of the Earth's crust and mantle. However, it is one of the germanate systems that has not yet been fully examined in the phase relations and structural properties. The recent findings that the SrGeO3 high‐pressure perovskite phase is the first Ge‐based transparent electronic conductor make the Sr–Ge–O system interesting in the field of materials science. In the present study, we have revealed the existence of a new high‐pressure strontium germanate, SrGe2O5. Single crystals of this compound crystallized as a co‐existent phase with SrGeO3 perovskite single crystals in the sample recovered in the compression experiment of SrGeO3 pseudowollastonite conducted at 6 GPa and 1223 K. The crystal structure consists of germanium–oxygen framework layers stacked along [001], with Sr atoms located at the 12‐coordinated cuboctahedral site; the layers are formed by the corner linkages between GeO6 octahedra and between GeO6 octahedra and GeO4 tetrahedra. The present SrGe2O5 is thus isostructural with the high‐pressure phases of SrSi2O5 and BaGe2O5. Comparison of these three compounds leads to the conclusion that the structural responses of the GeO6 and GeO4 polyhedra to cation substitution at the Sr site are much less than that of the SrO12 cuboctahedron to cation substitution at the Ge sites. Such a difference in the structural response is closely related to the bonding nature.  相似文献   
998.
Much attention has been paid by chemists to the construction of supramolecular coordination compounds based on the multifunctional ligand 5‐sulfosalicylic acid (H3SSA) due to the structural and biological interest of these compounds. However, no coordination compounds have been reported for the multifunctional amino‐substituted sulfobenzoate ligand 2‐amino‐5‐sulfobenzoic acid (H2asba). We expected that H2asba could be a suitable building block for the assembly of supramolecular networks due to its interesting structural characteristics. The reaction of cadmium(II) nitrate with H2asba in the presence of the auxiliary flexible dipyridylamide ligand N,N′‐bis[(pyridin‐4‐yl)methyl]oxamide (4bpme) under ambient conditions formed a new mixed‐ligand coordination compound, namely bis(3‐amino‐4‐carboxybenzenesulfonato‐κO1)diaquabis{N,N′‐bis[(pyridin‐4‐yl)methyl]oxamide‐κN}cadmium(II)–N,N′‐bis[(pyridin‐4‐yl)methyl]oxamide–water (1/1/4), [Cd(C7H6NO5S)2(C14H14N4O2)2(H2O)2]·C14H14N4O2·4H2O, (1), which was characterized by single‐crystal and powder X‐ray diffraction analysis (PXRD), FT–IR spectroscopy, thermogravimetric analysis (TG), and UV–Vis and photoluminescence spectroscopic analyses in the solid state. The central CdII atom in (1) occupies a special position on a centre of inversion and exhibits a slightly distorted octahedral geometry, being coordinated by two N atoms from two monodentate 4bpme ligands, four O atoms from two monodentate 4‐amino‐3‐carboxybenzenesulfonate (Hasba) ligands and two coordinated water molecules. Interestingly, complex (1) further extends into a threefold polycatenated 0D→2D (0D is zero‐dimensional and 2D is two‐dimensional) interpenetrated supramolecular two‐dimensional (4,4) layer through intermolecular hydrogen bonding. The interlayer hydrogen bonding further links adjacent threefold polycatenated two‐dimensional layers into a three‐dimensional network. The optical properties of complex (1) indicate that it may be used as a potential indirect band gap semiconductor material. Complex (1) exhibits an irreversible dehydration–rehydration behaviour. The fluorescence properties have also been investigated in the solid state at room temperature.  相似文献   
999.
Purine 3′:5′‐cyclic nucleotides are very well known for their role as the secondary messengers in hormone action and cellular signal transduction. Nonetheless, their solid‐state conformational details still require investigation. Five crystals containing purine 3′:5′‐cyclic nucleotides have been obtained and structurally characterized, namely adenosine 3′:5′‐cyclic phosphate dihydrate, C10H12N5O6P·2H2O or cAMP·2H2O, (I), adenosine 3′:5′‐cyclic phosphate 0.3‐hydrate, C10H12N5O6P·0.3H2O or cAMP·0.3H2O, (II), guanosine 3′:5′‐cyclic phosphate pentahydrate, C10H12N5O7P·5H2O or cGMP·5H2O, (III), sodium guanosine 3′:5′‐cyclic phosphate tetrahydrate, Na+·C10H11N5O7P·4H2O or Na(cGMP)·4H2O, (IV), and sodium inosine 3′:5′‐cyclic phosphate tetrahydrate, Na+·C10H10N4O7P·4H2O or Na(cIMP)·4H2O, (V). Most of the cyclic nucleotide zwitterions/anions [two from four cAMP present in total in (I) and (II), cGMP in (III), cGMP in (IV) and cIMP in (V)] are syn conformers about the N‐glycosidic bond, and this nucleobase arrangement is accompanied by Crib—H…Npur hydrogen bonds (rib = ribose and pur = purine). The base orientation is tuned by the ribose pucker. An analysis of data obtained from the Cambridge Structural Database made in the context of synanti conformational preferences has revealed that among the syn conformers of various purine nucleotides, cyclic nucleotides and dinucleotides predominate significantly. The interactions stabilizing the syn conformation have been indicated. The inter‐nucleotide contacts in (I)–(V) have been systematized in terms of the chemical groups involved. All five structures display three‐dimensional hydrogen‐bonded networks.  相似文献   
1000.
Coordination polymers (CPs) built by coordination bonds between metal ions/clusters and multidentate organic ligands exhibit fascinating structural topologies and potential applications as functional solid materials. The title coordination polymer, poly[diaquabis(μ4‐biphenyl‐3,4′,5‐tricarboxylato‐κ4O3:O3′:O4′:O5)tris[μ2‐1,4‐bis(1H‐imidazol‐1‐yl)benzene‐κ2N3:N3′]dicopper(II)dicopper(I)], [CuII2CuI2(C15H7O6)2(C12H10N4)3(H2O)2]n, was crystallized from a mixture of biphenyl‐3,4′,5‐tricarboxylic acid (H3bpt), 1,4‐bis(1H‐imidazol‐1‐yl)benzene (1,4‐bib) and copper(II) chloride in a water–CH3CN mixture under solvothermal reaction conditions. The asymmetric unit consists of two crystallographically independent Cu atoms, one of which is CuII, while the other has been reduced to the CuI ion. The CuII centre is pentacoordinated by three O atoms from three bpt3− ligands, one N atom from a 1,4‐bib ligand and one O atom from a coordinated water molecule, and the coordination geometry can be described as distorted trigonal bipyramidal. The CuI atom exhibits a T‐shaped geometry (CuN2O) coordinated by one O atom from a bpt3− ligand and two N atoms from two 1,4‐bib ligands. The CuII atoms are extended by bpt3− and 1,4‐bib linkers to generate a two‐dimensional network, while the CuI atoms are linked by 1,4‐bib ligands, forming one‐dimensional chains along the [20] direction. In addition, the completely deprotonated μ4‐η1111 bpt3− ligands bridge one CuI and three CuII cations along the a (or [100]) direction to form a three‐dimensional framework with a (103)2(10)2(42.6.102.12)2(42.6.82.10)2(8) topology via a 2,2,3,4,4‐connected net. An investigation of the magnetic properties indicated a very weak ferromagnetic behaviour.  相似文献   
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