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1.
2.
A series of polychalcogenotrimethylsilane complexes Ar(CH2ESiMe3)n, (Ar=aryl; E=S, Se; n=2, 3, and 4) can be prepared from the corresponding polyorganobromide and M[ESiMe3] (M=Na, Li). These represent the first examples of the incorporation of such a large number of reactive ?ESiMe3 moieties onto an organic molecular framework. They are shown to be convenient reagents for the preparation of the polyferrocenylseleno‐ and thioesters from ferrocenoyl chloride. The synthesis, structures, and spectroscopic properties of the new silyl chalcogen complexes 1,4‐(Me3SiECH2)2(C6Me4) (E=S, 1 ; E=Se, 2 ), 1,3,5‐(Me3SiECH2)3(C6Me3) (E=S, 3 ; E=Se, 4 ) and 1,2,4,5‐(Me3SiECH2)4(C6H2) (E=S, 5 ; E=Se, 6 ) and the polyferrocenyl chalcogenoesters [1,4‐{FcC(O)ECH2}2(C6Me4)] (E=S, 7 ; E=Se, 8 ), [1,3,5‐{FcC(O)ECH2}3(C6Me3)] (E=S, 9 ; E=Se, 10 ) and [1,2,4,5‐{FcC(O)ECH2}4(C6H2)] (E=S, 11 illustrated; E=Se, 12 ) are reported. The new polysilylated reagents and polyferrocenyl chalcogenoesters have been characterized by multinuclear NMR spectroscopy (1H, 13C, 77Se), electrospray ionization mass spectrometry and, for complexes 1 , 2 , 3 , 4 , 7 , 8 , and 11 , single‐crystal X‐ray diffraction. The cyclic voltammograms of complexes 7 – 11 are presented.  相似文献   
3.
Two new polydentate ligands, 1‐(6‐hydroxymethyl‐2‐pyridyl)‐3‐(2‐pyridyl)‐propane‐1,3‐dione (6) and 1,3‐bis(6‐hydroxymethyl‐2‐pyridyl)‐propane‐1, 3‐dione (8), have been synthesized starting from 2,6‐pyridinedicarboxylic acid by conventional esterification, reduction, and condensation reactions. They were further converted to two new polydentate ligands, 3‐(6‐hydroxymethyl‐2‐pyridyl)‐5‐(2‐pyridyl)‐1H‐pyrazole (7) and 3,5‐bis(6‐hydroxymethyl‐2‐pyridyl)‐1H‐pyrazole (9), by reaction with hydrazine hydrate. These four compounds were characterized by proton nuclear magnetic resonance (1H NMR), electrospray ionization‐mass spectrum (ESI‐MS), infrared spectrum (IR), and elemental analyses. The structure of 9 was also determined by X‐ray diffraction.  相似文献   
4.
In this work, we designed, developed, characterized, and investigated a new chelator and its bifunctional derivative for 89Zr labeling and PET-imaging. In a preliminary study, we synthesized two hexadentate chelators named AAZTHAS and AAZTHAG, based on the seven-membered heterocycle AMPED (6-amino-6-methylperhydro-1,4-diazepine) with the aim to increase the rigidity of the 89Zr complex by using N-methyl-N-(hydroxy)succinamide or N-methyl-N-(hydroxy)glutaramide pendant arms attached to the cyclic structure. N-methylhydroxamate groups are the donor groups chosen to efficiently coordinate 89Zr. After in vitro stability tests, we selected the chelator with longer arms, AAZTHAG, as the best complexing agent for 89Zr presenting a stability of 86.4 ± 5.5% in human serum (HS) for at least 72 h. Small animal PET/CT static scans acquired at different time points (up to 24 h) and ex vivo organ distribution studies were then carried out in healthy nude mice (n = 3) to investigate the stability and biodistribution in vivo of this new 89Zr-based complex. High stability in vivo, with low accumulation of free 89Zr in bones and kidneys, was measured. Furthermore, an activated ester functionalized version of AAZTHAG was synthesized to allow the conjugation with biomolecules such as antibodies. The bifunctional chelator was then conjugated to the human anti-HER2 monoclonal antibody Trastuzumab (Tz) as a proof of principle test of conjugation to biologically active molecules. The final 89Zr labeled compound was characterized via radio-HPLC and SDS-PAGE followed by autoradiography, and its stability in different solutions was assessed for at least 4 days.  相似文献   
5.
Three novel cluster compounds K4[Re4STe3(CN)124H2O (I), [{Cu(en)2}2Re4STe3(CN)125H2O (II) and [{Cu(trien)}2Re4STe3(CN)12]·2H2O (III) (en is ethylenediamine, trien is triethylenetetraamine) containing a new cluster core {Re4STe3} have been prepared and structurally characterized. According to single crystal X-ray diffraction data, compound I is ionic and represents the arrangement of ions K+ and [Re4STe3(CN)12]4?; compounds II and III are molecular and formed by two cationic moieties {Cu(en)2}2+ and {Cu(trien)}2+, respectively, coordinated to one cluster anion. In the solid state, S atom positions in the tetrahedron Q4 (Q = S, Te) are disordered for all three compounds: in I and III sulfur atoms are split over all four Q positions, while in II over two positions.  相似文献   
6.
Abstract

Four new Schiff-base ligands have been prepared from the condensation of 3-formyl-4-hy-droxy-1,8-naphthyridin-2-one with different diamines and a triamine, H2La-H2Ld. Two series of Ni(II) and Cu(II) complexes with the four ligands were also prepared. The ligands and their metal complexes were characterized by chemical analyses, IR, Far-IR, electronic, ESR and mass spectra as well as magnetic measurements and X-ray diffraction patterns.

Different products for Ni(II) and Cu(II) were obtained in similar reactions with the same metal salt, depending on the nature of the ligand. Different geometries were also obtained depending on the counter anion of metal salt. Thus, violet square-planar Cu(II) complexes were obtained with Cu(OAc)2. H2O and green octahedral ones with CuCl2. 2H2O, except the reaction with ligand H2Ld which gave only an octahedral product whether the anion was acetate, chloride or perchlorate. Electronic and ESR spectra were used to differentiate between the two geometries of the Cu(II) complexes. The green octahedral Cu(II) complexes undergo irreversible thermochromism to the violet square-planar complexes except the copper complex of the ligand H2Ld which did not not show any color change and retained its octahedral geometry. Based on the magnetic moments and thermal analyses, only one Ni(II) complex of the Schiffbase ligand H2Lc undergoes reversible thermochromism from green (octahedral) to red (squareplanar). The reverse change of the thermal product (red) to the parent complex (green) proceeded on exposure to atmospheric air for a few minutes. On the other hand, Ni(II) complexes of ligands H2La and H2Lb have stable square-planar geometry and all efforts to add other ligands such as H2O or pyridine to these complexes failed to yield other products. The corresponding Cu(II) complexes were easily transformed to their octahedral geometry by adding H2O or pyridine and heating.  相似文献   
7.
A novel polydentate phosphorus-containing complexing agent,cis,cis-1,3,5-tri[2-(diphenyl-phosphinyl)ethylamino]cyclohexane, has been prepared on the basis ofcis,cis-1,3,5-triamino-cyclohexane. The method of potentiometric titration in an aqueous—organic medium (70% ethanol, ionic strength 0.01M LiNO3, 298 K) has been used to study the acid-base and complexing properties of the title compound. The ligand thus prepared forms 11 complexes with Cu2+, Co2+, Zn2+, and Ni2+ cations; formation of hydroxocomplexes MOHL+ has been observed in the case of Zn2+ and Cd2+.Translated fromIzvestiya Akademii Nauk. Seriya Khimicheskaya, No. 7, pp. 1276–1279, July, 1993.The authors are grateful to A. G. Matveeva for his assistante in discussing the results of this study and in preparing this paper.  相似文献   
8.
以对叔丁基杯[n]芳烃1a1b (n=6, 8)为原料, 经过三步反应, 以较高产率合成了一系列含多个水杨醛亚胺端基的西佛碱衍生物5a5f. 对叔丁基杯[n]芳烃用溴乙酸乙酯进行烃基化反应, 生成杯芳烃氧代乙酸乙酯2a2b, 后者与过量脂肪族二胺NH2(CH2)mNH2 (m=2, 4, 6)反应, 生成含有游离氨基的杯芳烃酰胺衍生物4a4f, 再与水杨醛在乙醇中反应生成目标产物席夫碱衍生物.  相似文献   
9.
采用稀释法与胺5倍过量合成了一种新型的含吡啶环的开链二胺1a(N,N′-双(2-氨基乙基)-2,6-吡啶二甲酰胺)。此外,合成了六个新型多齿希夫碱配体N,N′-双(β-R-苯甲醛亚胺基乙基)-2,6-吡啶二甲酰胺[其中,R=H (2a),o-OH (2b),p-OH (2c),m-NO2 (2d),p- N(CH3)2 (2e)]及N,N′-双[γ-水杨醛亚胺基正丙基]-2,6-吡啶二甲酰胺2f。通过元素分析,紫外-可见光谱,红外光谱,氢核磁共振谱及质谱对化合物进行了表征。通过化合物2e的单晶结构X-射线单晶衍射分析表明该晶体属于立方晶系P-1空间群,其晶胞参数为:a=11.010(2) nm,b=13.865(3) nm,c=9.6537(19) nm,α=102.77(2)º,β=92.07(3)º,γ=87.98(3)º,V=1435.7(5) nm3,Z=2,Dc=1.230 mg•cm-3,Mr=531.66。微量热法检测了化合物对大肠杆菌的抑制作用,并初步分析了化合物结构与抗菌活性之间的关系。实验结果表明,所有化合物都对大肠杆菌有抑制作用,其中水杨醛希夫碱的抑菌活性最好。  相似文献   
10.
《Mendeleev Communications》2021,31(6):850-852
Polydentate SNO-coordinating proligands were obtained by addition of thioacetic acid to conjugated alkene, or ring-opening of thiiranes with organolithium compounds as the key stages. These SNO- and known SNS- and SOS- coordinating proligands were used for the synthesis of tetrylenes by the reaction with Lappert’s tetrylenes E[N(SiMe3)2]2 (E = Ge, Sn), giving polymeric, monomeric or dimeric species depending on the type of the ligand. The structure of stannylenes in solution was analysed by 119Sn NMR spectroscopy.  相似文献   
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