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1.
李静思  赵华  刘珊  陈永洁 《化学通报》2022,85(1):97-102
合成了三种钌(Ⅱ)芳烃配合物[(η6-p-cymene)Ru(bpy)(py-R)]2+(bpy=2,2′-联吡啶,py=吡啶,R=N(CH3)2,H,NO2),通过紫外-可见吸收光谱、核磁共振、高分辨质谱及DNA凝胶电泳等手段研究了单齿配体吡啶对位取代基的推拉电子能力如何影响配合物的光致配体解离能力。研究发现,当单齿配体吡啶对位取代基为拉电子基团硝基时,配合物具有光致单齿配体解离能力及潜在的光活化抗肿瘤活性。  相似文献   

2.
平面正方形配合物反位效应的起因已经困惑了人们将近一个世纪。作者根据平面正方形配合物取代反应的缔合机理,考虑了配体取代反应进行过程中配体间的排斥作用,分析了最易形成的中间体和过渡态2的空间构型;揭示了反位效应的起因,提出了一种配体排斥理论,从而比较系统和圆满地解释了平面正方形配合物取代反应的反位效应。  相似文献   

3.
含双二苯基膦甲烷双核铜(I)配合物的合成及性质   总被引:1,自引:0,他引:1  
利用配体取代反应合成了四种含双二苯基膦甲烷(dppm)的双铜(Ⅰ)配合物[Cu2(dppm)2L2](NO3)2(配体L分别是2,2'-联吡啶(1)、邻菲咯啉(2)、2,9-二甲基-邻菲咯啉(3)、吡啶(4)],并经核磁、热分析、光电子能谱等方法表征了配合物的性质.配合物(1)的晶体结构显示,dppm作为桥式双齿配体、联吡啶作为双齿配体分别与铜原子形成四面体配位结构,硝酸根离子位于配合物外界.  相似文献   

4.
反式-铂-氢配合物的合成   总被引:1,自引:0,他引:1  
用水合肼还原cis-PtL2Cl2所得到的trans-PtHL2Cl与KX或NaX进行取代反应,合成了一系列trans-PtHL2X(L=PPr3, PBu3;X=Cl,Br,I,CN,NO2,SCN)新配合物,用IR、NMR研究了配合物中Pt-H键的伸缩振动频率、Pt-H偶合常数和质子化学位移δH与配体反位效应的关系.  相似文献   

5.
以嘧啶类化合物为环金属配体,2,2′-联吡啶为副配体成功制备了4种离子型环金属铱配合物:[(PPM)_2Ir(bpy)]PF_6(1),[(MPPM)2_Ir(bpy)]PF_6(2),[(DFPPM)_2Ir(bpy)]PF_6(3),[(MDFPPM)_2Ir(bpy)]PF_6(4)(PPM=2-苯基嘧啶,MPPM=4,6-二甲基-2-苯基嘧啶,DFPPM=2-(2,4-二氟苯基)嘧啶,MDFPPM=4,6-二甲基-2-(2,4-二氟苯基)嘧啶,bpy=2,2′-联吡啶)。配合物的结构通过质谱、核磁进行了表征,测试了配合物4的单晶结构。通过紫外-可见(UV-Vis)吸收光谱、荧光光谱和含时密度泛函理论(TD-DFT)对其光物理性能进行了研究。结果表明:4的晶体的空间构型为单斜,空间群为P21/c;3和4的最高占据轨道(HOMO)主要定域于金属Ir(Ⅲ)和环金属配体的苯环上,最低未占有轨道(LUMO)主要定域于副配体bpy上;配合物在溶液状态下为绿光发射,波长在513~561nm之间,量子效率在6.7%~64.0%之间。  相似文献   

6.
含双二苯基膦甲烷双核铜Ⅰ配合物的合成及性质   总被引:1,自引:0,他引:1  
利用配体取代反应合成了四种含双二苯基膦甲烷 (dppm)的双铜 配合物 [Cu2 (dppm) 2 L2 ](NO3) 2 (配体L分别是 2 ,2’ 联吡啶 (1)、邻菲咯啉 (2 )、2 ,9 二甲基 邻菲咯啉 (3)、吡啶 (4 ) ],并经核磁、热分析、光电子能谱等方法表征了配合物的性质。配合物 (1)的晶体结构显示 ,dppm作为桥式双齿配体、联吡啶作为双齿配体分别与铜原子形成四面体配位结构 ,硝酸根离子位于配合物外界  相似文献   

7.
本文介绍一五胺配合物[Co(terpy)(bpy)Cl]2+,三元胺是 2,2′:6′ ,2″三联吡啶,二元胺是2,2′- 联吡啶,此配合物结构特殊在于分子中没有任何酸性氢.利用其考察非碱催化水解过程中发现,该配合物的水解速率出人意料地快.这个取代反应可能是一氧化还原过程.  相似文献   

8.
Ru(bpy)32+配合物及bpy上双取代基效应的DFT法研究   总被引:1,自引:0,他引:1  
报道Ru(bpy)32+配合物取代基效应的量子化学密度泛函(DFT)法研究的结果。探讨Ru(bpy)32+的三个配体bpy(2,2′-联二吡啶)被取代基(-NH2,-OH,-NO2)对位双取代后对配合物电子结构及相关性质,如配位键长、光谱性质等的影响规律,为该类配合物的合成及性质分析提供理论参考。  相似文献   

9.
为探讨单齿/双齿吡啶类配体对反应平衡的影响,在模拟生理条件下(0.15mol·L-1NaCl溶液),应用多核(1H、13C和51V)多维(COSY,HSQC和HMBC)以及变温NMR技术研究双过氧钒配合物[OV(O2)2(D2O)]-/[OV(O2)2(HOD)]-(简写为bpV)与系列吡啶类配体的相互作用,研究结果表明bpV与有机配体的反应性从强到弱的顺序为:2,2′-联吡啶2,2′-联吡啶-4,4′-二甲酸根吡啶异烟酸根,这说明双齿吡啶类配体配位能力强于单齿配体,而不带羧基的吡啶类配体(单齿或双齿)配位能力强于所对应的带羧基的取代吡啶,竞争配位导致一系列新的6配位(配体为吡啶或异烟酸根)或7配位(配体为2,2′-联吡啶或2,2′-联吡啶-4,4′-二甲酸根)的过氧钒物种[OV(O2)2LL′]n-(LL′=吡啶类配体,n=1,2,3)生成。  相似文献   

10.
合成了2,3-二甲基-1,4,8,9-四氮三联苯(dmtatp)和2,3-二苯基-1,4,8,9-四氮三联苯(dptatp)两种新配体及它们与2,2′-联吡啶和钌(Ⅱ)的混配物[Ru(bpy)2dmtatp]2+(1)和[Ru(bpy)2dptatp]2+(2),用电子吸收光谱、稳态荧光、粘度测定和圆二色谱研究了配合物与小牛胸腺DNA的相互作用。结合我们以前对配合物[Ru(bpy)2tatp]2+(3)(tatp为1,4,8,9-四氮三联苯)与小牛胸腺DNA的作用研究,得出配合物与DNA的键合强度顺序为:[Ru(bpy)2tatp]2+>[Ru(bpy)2dptatp]2+>[Ru(bpy)2dmtatp]2+,这与插入配体的位阻效应的减少趋势相一致。同时,还测定了配合物与DNA的键合常数。  相似文献   

11.
We report a high yield, two-step synthesis of fac-[Ru(bpy)(CH3CN)3NO2]PF6 from the known complex [(p-cym)Ru(bpy)Cl]PF6 (p-cym = eta(6)-p-cymene). [(p-cym)Ru(bpy)NO2]PF6 is prepared by reacting [(p-cymene)Ru(bpy)Cl]PF6 with AgNO3/KNO2 or AgNO2. The 15NO2 analogue is prepared using K15NO2. Displacement of p-cymene from [(p-cym)Ru(bpy)NO2]PF6 by acetonitrile gives [Ru(bpy)(CH3CN)3NO2]PF6. The new complexes [(p-cym)Ru(bpy)NO2]PF6 and fac-[Ru(bpy)(CH3CN)3NO2]PF6 have been fully characterized by 1H and 15N NMR, IR, elemental analysis, and single-crystal structure determination. Reaction of [Ru(bpy)(CH3CN)3NO2]PF6 with the appropriate ligands gives the new complexes [Ru(bpy)(Tp)NO2] (Tp = HB(pz)3-, pz = 1-pyrazolyl), [Ru(bpy)(Tpm)NO2]PF6 (Tpm = HC(pz)3), and the previously prepared [Ru(bpy)(trpy)NO2]PF6 (trpy = 2,2',6',2' '-terpyridine). Reaction of the nitro complexes with HPF6 gives the new nitrosyl complexes [Ru(bpy)TpNO][PF6]2 and [Ru(bpy)(Tpm)NO][PF6]3. All complexes were prepared with 15N-labeled nitro or nitrosyl groups. The nitro and nitrosyl complexes were characterized by 1H and 15N NMR and IR spectroscopy, elemental analysis, cyclic voltammetry, and single-crystal structure determination for [Ru(bpy)TpNO][PF6]2. For the nitro complexes, a linear correlation is observed between the nitro 15N NMR chemical shift and 1/nu(asym), where nu(asym) is the asymmetric stretching frequency of the nitro group.  相似文献   

12.
13.
We have synthesized the complex [Ru(bpy)(2)(bpy(OH)(2))](2+) (bpy =2,2'-bipyridine, bpy(OH)(2) = 4,4'-dihydroxy-2,2'-bipyridine). Experimental results coupled with computational studies were utilized to investigate the structural and electronic properties of the complex, with particular attention paid toward the effects of deprotonation on these properties. The most distinguishing feature observed in the X-ray structural data is a shortening of the CO bond lengths in the modified ligand upon deprotonation. Similar results are also observed in the computational studies as the CO bond becomes double bond in character after deprotonating the complex. Electrochemically, the hydroxy-modified bipyridyl ligand plays a significant role in the redox properties of the complex. When protonated, the bpy(OH)(2) ligand undergoes irreversible reduction processes; however, when deprotonated, reduction of the substituted ligand is no longer observed, and several new irreversible oxidation processes associated with the modified ligand arise. pH studies indicate [Ru(bpy)(2)(bpy(OH)(2))](2+) has two distinct deprotonations at pK(a1) = 2.7 and pK(a2) = 5.8. The protonated [Ru(bpy)(2)(bpy(OH)(2))](2+) complex has a characteristic UV/Visible absorption spectrum similar to the well-studied complex [Ru(bpy)(3)](2+) with bands arising from Metal-to-Ligand Charge Transfer (MLCT) transitions. When the complex is deprotonated, the absorption spectrum is altered significantly and becomes heavily solvent dependent. Computational methods indicate that the deprotonated bpy(O(-))(2) ligand mixes heavily with the metal d orbitals leading to a new absorption manifold. The transitions in the complex have been assigned as mixed Metal-Ligand to Ligand Charge Transfer (MLLCT).  相似文献   

14.
The magnetic properties of the porous metal-organic complex Co(bpy)(1.5)(NO(3))(2) (bpy = 4,4'-bipyridine), investigated by SQUID magnetometry, EPR and heat capacity measurements, are reported. The tongue-and-groove structure of this complex is formed by the assembly of T-shaped building blocks, where each Co is bound to three bpy ligands. Co(ii) is hepta-coordinated by three N atoms from the bpy units, and four O atoms from two nitrate groups. Experimental results showed a large crystal field effect induced anisotropy with a zero field splitting of Δ = 198 K between the ground and excited Kramers doublets, a factor of two larger than previously reported values in Co(ii) hepta-coordinated complexes. EPR revealed orthorhombic crystal field anisotropy, with gyromagnetic principal values of g(1)(*) = 6.1, g(2)(*) = 4.2 and g(3)(*) = 2.2, in an S(*) = 1/2 effective spin on the ground state Kramers doublet. Ab initio simulations allowed us to assign the anisotropy easy axis of magnetization to the binary symmetry axis of the molecule, aligned with the Co-N apical direction of the T-block.  相似文献   

15.
Reaction of 2,2′‐bi­pyridine (bpy) and copper(II) nitrate in methanol results in two complexes, namely light‐blue bis(2,2′‐bi­pyridine)­nitrato­copper(II) nitrate methanol solvate, [Cu(NO3)(C10H8N2)2]NO3·CH3OH, (I), which is unstable in air, and the product of its decomposition, catena‐poly­[[[bis(2,2′‐bi­pyridine)copper(II)]‐μ‐nitrato‐O:O′] nitrate], {[Cu(NO3)(C10H8N2)2]NO3}n, (II). The crystal structures of both compounds were determined from one crystal at room temperature. Later, the structure of (I) was redetermined at low temperature. In (I) and (II), the Cu atom is coordinated by two bpy and one or two nitrate ions, respectively. The second nitrate ion in (I), along with the methanol solvent mol­ecule, is found in the outer coordination sphere, not bonded to Cu. The nitrate in (I) is chelating, while in (II), it bridges (bpy)2Cu complexes, forming a one‐dimensional chain structure. The Cu cation in (II) lies on a twofold axis and the uncoordinated NO3? ion is located close to a twofold axis and is therefore disordered. Compound (I) converts into (II) upon loss of solvent.  相似文献   

16.
A series of complexes (bpy)2LRu(II) and (Ph2bpy)2LRu(II), where bpy is 2,2′-bipyridine, Ph2bpy is 4,4′-diphenyl-2,2′-bipyridine and L is 1,10-phenanthroline (phen), [1]benzothieno[2,3-c][1,10]phenanthroline (btp), naphtho[1′,2′?:?5,4]thieno[2,3-c][1,10]phenanthroline [ntpl, l=linear], and naphtho[1′,2′?:?4,5]thieno[2,3-c][1,10]phenanthroline (ntph, h=helical) were synthesized and characterized using 2D COSY NMR spectra. The UV spectra were assigned to study their metal to ligand charge transfer (MLCT) excited states. Complexes of (bpy)2LRu(II) showed identical absorption wavelengths (λ max) for the MLCT of all four members of the series with the only variation being the intensity (log ε ) for each. The MLCT of (Ph2bpy)2LRu(II) showed the similar behavior only with different wavelengths showing that in this heteroleptic series of complexes the MLCT is exclusively to the bpy ligands with none to thienophenanthroline (btp, ntpl, or ntph).  相似文献   

17.
Amidate-bridged diplatinum(II) entities [Pt(2)(bpy)(2)(μ-amidato)(2)](2+) (amidate = pivalamidate and/or benzamidate; bpy = 2,2'-bipyridine) were covalently linked to one or two Ru(bpy)(3)(2+)-type derivatives. An amide group was introduced at the periphery of Ru(bpy)(3)(2+) derivatives to give metalloamide precursors [Ru(bpy)(2)(BnH)](2+) (abbreviated as RuBnH, n = 1 and 2), where deprotonation of amide BnH affords the corresponding amidate Bn, B1H = 4-(4-carbamoylphenyl)-2,2'-bipyridine, and B2H = ethyl 4'-[N-(4-carbamoylphenyl)carbamoyl]-2,2'-bipyridine-4-carboxylate. From a 1:1:1 reaction of [Pt(2)(bpy)(2)(μ-OH)(2)](NO(3))(2), RuBnH, and pivalamide, trinuclear complexes [Pt(2)(bpy)(2)(μ-RuBn)(μ-pivalamidato)](4+) (abbreviated as RuBn-Pt(2)) were isolated and characterized. Tetranuclear complexes [Pt(2)(bpy)(2)(μ-RuBn)(2)](6+) (abbreviated as (RuBn)(2)-Pt(2)) were separately prepared and characterized in detail. The quenching of the triplet excited state of the Ru(bpy)(3)(2+) derivative (i.e., Ru*(bpy)(3)(2+)) upon tethering the Pt(2)(bpy)(2)(μ-amidato)(2)(2+) moiety is strongly enhanced in RuB1-Pt(2) and (RuB1)(2)-Pt(2), while it is only slightly enhanced in RuB2-Pt(2) and (RuB2)(2)-Pt(2). These are partly explained by the driving forces for the electron transfer from the Ru*(bpy)(3)(2+) moiety to the Pt(2)(bpy)(2)(μ-amidato)(2)(2+) moiety (ΔG°(ET)); the ΔG°(ET) values for RuB1-Pt(2), (RuB1)(2)-Pt(2), RuB2-Pt(2), and (RuB2)(2)-Pt(2) are estimated as -0.01, 0.00, +0.22, and +0.28 eV, respectively. The considerable difference in the photochemical properties of the B1- and B2-bridged systems were further examined based on the emission decay and transient absorption measurements, which gave results consistent with the above conclusions.  相似文献   

18.
合成了Ru(bpy)2(phen)(PF6)2 和Ru(bpy)(phen)2(PF6)2 (bpy和phen分别为2,2′-联吡啶和1,10 -邻菲咯啉)两种电化学发光物质,以 1HNMR谱研究这两种配合物的立体结构,利用 1H - 1HCOSY(同核相关谱)核磁共振技术详细分析并归属了它们的氢谱峰。  相似文献   

19.
Haloacetyl, peroxynitrates are intermediates in the atmospheric degradation of a number of haloethanes. In this work, thermal decomposition rate constants of CF3C(O)O2NO2, CClF2C(O)O2NO2, CCl2FC(O)O2NO2, and CCl3C(O)O2NO2 have been determined in a temperature controlled 420 l reaction chamber. Peroxynitrates (RO2NO2) were prepared in situ by photolysis of RH/Cl2/O2/NO2/N2 mixtures (R = CF3CO, CClF2CO, CCl2FCO, and CCl3CO). Thermal decomposition was initiated by addition of NO, and relative RO2NO2 concentrations were measured as a function of time by long-path IR absorption using an FTIR spectrometer. First-order decomposition rate constants were determined at atmospheric pressure (M = N2) as a function of temperature and, in the case of CF3C(O)O2NO2 and CCl3C(O)O2NO2, also as a function of total pressure. Extrapolation of the measured rate constants to the temperatures and pressures of the upper troposphere yields thermal lifetimes of several thousands of years for all of these peroxynitrates. Thus, the chloro(fluoro)acetyl peroxynitrates may play a role as temporary reservoirs of Cl, their lifetimes in the upper troposphere being limited by their (unknown) photolysis rates. Results on the thermal decomposition of CClF2CH2O2NO2 and CCl2FCH2O2NO2 are also reported, showing that the atmospheric lifetimes of these peroxynitrates are very short in the lower troposphere and increase to a maximum of several days close to the tropopause. The ratio of the rate constants for the reactions of CF3C(O)O2 radicals with NO2 and NO was determined to be 0.64 ± 0.13 (2σ) at 315 K and a total pressure of 1000 mbar (M = N2). © 1994 John Wiley & Sons, Inc.  相似文献   

20.
Salt effects on the oxidation of the iron(II) complexes Fe(CN)4(bpy)2?, cis-(CN)2(bpy)2 and Fe(bpy)32+ by S2O82? as well as on the reaction Fe2+ + Co(NH3)5Cl2+ have been studied in concentrated electrolyte solutions at 298.2 K. We have gone from anion–anion to cation–cation reaction with the intermediate cases of anion–neutral and cation–anion reactions. Results show that the main cause of the kinetic salt effects observed is the interaction between supporting electrolytes and the solvent. © 1994 John Wiley & Sons, Inc.  相似文献   

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