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1

Nabeshima, Tatsuya, Yusuke Chiba, Takashi Nakamura, and Ryota Matsuoka. "Synthesis and Functions of Oligomeric and Multidentate Dipyrrin Derivatives and their Complexes." Synlett 31, no. 17 (2020): 1663–80. http://dx.doi.org/10.1055/s-0040-1707155.

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The dipyrrin–metal complexes and especially the boron complex 4,4-difluoro-4-bora-3a,4a-diaza-s-indacene (BODIPY) have recently attracted considerable attention because of their interesting properties and possible applications. We have developed two unique and useful ways to extend versatility and usefulness of the dipyrrin complexes. The first one is the linear and macrocyclic oligomerization of the BODIPY units. These arrangements of the B–F moieties of the oligomerized BODIPY units provide sophisticated functions, such as unique recognition ability toward cationic guest, associated with cha
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2

Schäfer, Sebastian, Ralf Köppe, Michael T. Gamer, and Peter W. Roesky. "Zinc–silylene complexes." Chemical Communications 50, no. 77 (2014): 11401. http://dx.doi.org/10.1039/c4cc04714a.

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3

Nieuwenhuizen, Peter J. "Zinc accelerator complexes." Applied Catalysis A: General 207, no. 1-2 (2001): 55–68. http://dx.doi.org/10.1016/s0926-860x(00)00613-x.

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4

Midlej, Victor, Felipe Rubim, Wilmer Villarreal, et al. "Zinc-clotrimazole complexes are effective against Trichomonas vaginalis." Parasitology 146, no. 9 (2019): 1206–16. http://dx.doi.org/10.1017/s003118201900043x.

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AbstractTrichomonas vaginalis is a protozoan parasite that causes trichomoniasis in humans, the most prevalent non-viral sexually transmitted disease (STD). Imidazole compounds are used for the treatment of trichomoniasis, and metronidazole is the most commonly prescribed. However, these compounds can lead to parasite resistance and unwanted side effects. Therefore, there is a need for an alternative treatment for this disease. Here, we explored the potential of clotrimazole (CTZ) and zinc compounds, as well as CTZ complexed with zinc salts ([1] acetate [Zn(CTZ)2(Ac)2] and [2] a chloride [Zn(C
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5

Tau, Prudence, Abimbola O. Ogunsipe, Suzanne Maree, M. David Maree, and Tebello Nyokong. "Influence of cyclodextrins on the fluorescence, photostability and singlet oxygen quantum yields of zinc phthalocyanine and naphthalocyanine complexes." Journal of Porphyrins and Phthalocyanines 07, no. 06 (2003): 439–46. http://dx.doi.org/10.1142/s1088424603000562.

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The effects of formation of cyclodextrin inclusion complexes on the photochemical and photophysical properties of zinc phthalocyanine ( ZnPc ) and various peripherally substituted zinc phthalocyanines as well as zinc naphthalocyanine ( ZnNPc ) are investigated. The cyclodextrins employed were the hydroxypropyl-γ-cyclodextrin and unsubstituted β-cyclodextrin. Job's plots were employed to confirm the stoichiometry of the inclusion complexes and showed 2:1 and 4:1 (cyclodextrin:phthalocyanine) inclusion behavior. The phthalocyanine inclusion complexes showed larger singlet oxygen quantum yield (ϕ
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6

Oh, Shin Bi, Jung Ah Kim, SuJi Park та Joo-Yong Lee. "Associative Interactions among Zinc, Apolipoprotein E, and Amyloid-β in the Amyloid Pathology". International Journal of Molecular Sciences 21, № 3 (2020): 802. http://dx.doi.org/10.3390/ijms21030802.

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Zinc and apolipoprotein E (apoE) are reportedly involved in the pathology of Alzheimer’s disease. To investigate the associative interaction among zinc, apoE, and amyloid-β (Aβ) and its role in amyloid pathogenesis, we performed various biochemical and immunoreactive analyses using brain tissues of Tg2576 mice and synthetic Aβ and apoE peptides. On amyloid plaques or in brain lysates of Tg2576 mice, apoE and Aβ immunoreactivities increased after zinc chelation and were restored by its subsequent replacement. Zinc depletion dissociated apoE/Aβ complexes or larger-molecular sizes of Aβ oligomers
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7

A., K. BANERJEE, K. GHOSH MONOJIT, K. SINHA SAILENDRA, and K. ROY S. "Alkali Metal Complexes. Binuclear Alkali Metal Complexes with Magnesium(II) and Zinc(II) Acetylacetonates." Journal of Indian Chemical Society Vol. 62, Apr 1985 (1985): 272–74. https://doi.org/10.5281/zenodo.6324541.

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Chemistry Department, Patna University, Patna-800 005 <em>Manuscript received 16 June 1983, accepted 30 April 1985</em> Heterobinuclear alkali metal complexes have been synthesised by treating metal chelates of magnesium and zinc acetylacetonates with alkali metal salts of 1-nitroso&shy;-2-naphthol and 8-hydroxyquinoline in ethanol/benzene-ethanol mixture. The general formula of the complex has been established as [M<sub>&alpha;&nbsp;</sub>(acac)<sub>2</sub>&nbsp;M<sub>b</sub>L], where M<sub>&alpha;</sub>&nbsp;-magnesium or zinc, acac<em>- </em>acetylacetonate, and M<sub>b</sub>L -Li, Na and K
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8

Müller-Hartmann, A., and H. Vahrenkamp. "Binary zinc-oligophosphate complexes." Inorganica Chimica Acta 300-302 (April 2000): 531–36. http://dx.doi.org/10.1016/s0020-1693(99)00614-3.

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9

Meyer, Nils, and Peter W. Roesky. "Chiral Aminotroponiminate Zinc Complexes." Organometallics 28, no. 1 (2009): 306–11. http://dx.doi.org/10.1021/om800858t.

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10

Datta, Simmi, Michael T. Gamer, and Peter W. Roesky. "TADDOLate complexes of zinc." Dalton Transactions, no. 13 (2008): 1761. http://dx.doi.org/10.1039/b715123c.

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11

Marks, Sebastian, Ralf Köppe, Tarun K Panda, and Peter W Roesky. "Unprecedented Zinc-Borane Complexes." Chemistry - A European Journal 16, no. 24 (2010): 7096–100. http://dx.doi.org/10.1002/chem.201000571.

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12

Sudbrake, Claas, Bodo Müller, and Heinrich Vahrenkamp. "Hexakis(alcohol)zinc Complexes." European Journal of Inorganic Chemistry 1999, no. 11 (1999): 2009–12. http://dx.doi.org/10.1002/(sici)1099-0682(199911)1999:11<2009::aid-ejic2009>3.0.co;2-n.

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13

Walz, Rainer, Michael Ruf, and Heinrich Vahrenkamp. "(Pyrazolylborato)zinc−Aldehyde Complexes." European Journal of Inorganic Chemistry 2001, no. 1 (2001): 139–43. http://dx.doi.org/10.1002/1099-0682(20011)2001:1<139::aid-ejic139>3.0.co;2-6.

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14

Amiri, Asghar, Ian M. Comeau, and Alison Thompson. "Heteroleptic zinc dipyrromethene complexes." Journal of Heterocyclic Chemistry 43, no. 2 (2006): 431–35. http://dx.doi.org/10.1002/jhet.5570430225.

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15

Alsfasser, Ralf, Anne K. Powell, and Heinrich Vahrenkamp. "Functional Tetrahedral Zinc Complexes." Angewandte Chemie International Edition in English 29, no. 8 (1990): 898–99. http://dx.doi.org/10.1002/anie.199008981.

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16

Maciejewska, Magdalena, Anna Sowińska, and Agata Grocholewicz. "Zinc Complexes with 1,3-Diketones as Activators for Sulfur Vulcanization of Styrene-Butadiene Elastomer Filled with Carbon Black." Materials 14, no. 14 (2021): 3804. http://dx.doi.org/10.3390/ma14143804.

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Zinc oxide nanoparticles (N-ZnO) and zinc complexes with 1,3-diketones of different structures were applied instead of microsized zinc oxide (M-ZnO) to activate the sulfur vulcanization of styrene-butadiene rubber (SBR). The influence of vulcanization activators on the cure characteristics of rubber compounds, as well as crosslink density and functional properties of SBR vulcanizates, such as tensile properties, hardness, damping behavior, thermal stability and resistance to thermo-oxidative aging was explored. Applying N-ZnO allowed to reduce the content of zinc by 40% compared to M-ZnO witho
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17

Albedyhl, Sabine, David Schnieders, Attila Jancsó, Tamás Gajda, and Bernt Krebs. "Heterodinuclear Zinc(II)−Iron(III) Complexes and Dinuclear Zinc Complexes as Models for Zinc-Containing Phosphatases." European Journal of Inorganic Chemistry 2002, no. 6 (2002): 1400–1409. http://dx.doi.org/10.1002/1099-0682(200206)2002:6<1400::aid-ejic1400>3.0.co;2-q.

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18

Nguyen, Quang Trung, and Phuong Nam Pham Thi. "Zinc(II) Complexes Containing Aromatic Hydrazones: Synthesis, Spectral Characterization, Luminescent Properties and a-Glucosidase Inhibition." Asian Journal of Chemistry 37, no. 5 (2025): 1191–96. https://doi.org/10.14233/ajchem.2025.33652.

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Four zinc(II) complexes were synthesized by the coordinating Zn2+ ions with novel aromatic hydrazone ligands. Based on the spectral analyses, the molecular ratio of Zn(II) ions to hydrazone ligands was established as 1:2, and a tetrahedral geometry around the zinc metal center was proposed for the synthesized aromatic hydrazone zinc(II) complexes. The aromatic hydrazone ligands probably coordinated with the metal Zn2+ via the carbonyl oxygen and deprotonated oxygen of salicyl ring. The fluorescence spectra of the synthesized zinc(II) complexes were analyzed in dichloromethane, revealing that t
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19

Vishwkarma, Arti, A. K. Srivastava, O. P. Pandey, and S. K. Sengupta. "Zinc(II) Complexes of Schiff Bases Derived from Bis-(2-hydrazino-1,3,4-thiadiazole-5- yl)Arene/Alkanes: Synthesis, Spectral Characterization and Biological Properties." Asian Journal of Chemistry 34, no. 8 (2022): 2035–40. http://dx.doi.org/10.14233/ajchem.2022.23718.

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A novel series of zinc(II) complexes of type [ZnL(H2O)2], has been synthesized by the reaction of zinc(II) acetate dihydrate with Schiff bases (H2L) derived from bis-(2-hydrazino-1,3,4-thiadiazole-5- yl)arene/alkanes and 2-hydroxynaphthaldehyde/3,5-dichlorosalicyldehyde in presence of a base. The structures of all the zinc complexes were proposed by elemental analysis and spectroscopic data (IR, 1H, 13C NMR). TGA investigations were carried out to confirm the presence of coordinated water molecules in the zinc complexes. The powder crystal structure of one particular zinc complex has been anal
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20

Zhang, Wei-Guang. "Microwave-Assisted Synthesis, Characterization, Crystal Structures and Antibacterial Activities of Zinc Complexes Derived from 5–Bromo-2-((cyclohexylimino)methyl)phenol." Acta Chimica Slovenica 70, no. 3 (2023): 421–29. http://dx.doi.org/10.17344/acsi.2023.8144.

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A dinuclear zinc complex [Zn2L2] (1), and four mononuclear zinc complexes [ZnBr2(LH)2] (2), [ZnCl2(LH)2] (3), [Zn(LH)2(NCS)2] (4) and [ZnI(CH3OH)L] (5), have been prepared from the Schiff base 5-bromo-2-((cyclohexylimino) methyl)phenol (HL) by microwave irradiation method. All the zinc complexes were characterized by CHN elemental analyses, infrared and electronic spectra. Structures of the complexes were further studied by single crystal X-ray determination, which reveals that all the zinc atoms in the complexes are in tetrahedral geometry. The halide and pseudohalide anions are preferred co-
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21

Chen, Lei, Xuanri Shen, and Guanghua Xia. "Effect of Molecular Weight of Tilapia (Oreochromis Niloticus) Skin Collagen Peptide Fractions on Zinc-Chelating Capacity and Bioaccessibility of the Zinc-Peptide Fractions Complexes in Vitro Digestion." Applied Sciences 10, no. 6 (2020): 2041. http://dx.doi.org/10.3390/app10062041.

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To investigate the effect of the molecular weight of tilapia skin collagen peptide fractions on their zinc chelation capacity and the bioaccessibility of their zinc complexes, we evaluated the zinc-chelating ability of different molecular weight peptide, the solubility, and the stability of the complexes during simulated in vitro digestion. Low molecular weight peptide (P1) exhibited a higher zinc-chelating ability, which can be attributed to the variety of metal chelate amino acid residues. The highest solubility and the lowest release of zinc during peptic digestion for the P1-zinc complex a
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22

Nakamura, Mizuki, Daigo Urakawa, Ziyu He, Isao Akagi, De-Xing Hou, and Kozue Sakao. "Apoptosis Induction in HepG2 and HCT116 Cells by a Novel Quercetin-Zinc (II) Complex: Enhanced Absorption of Quercetin and Zinc (II)." International Journal of Molecular Sciences 24, no. 24 (2023): 17457. http://dx.doi.org/10.3390/ijms242417457.

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Quercetin forms complexes with various metals due to its structural attributes. It predominantly exhibits chelating activity at the 3-hydroxy/4-carbonyl group. Previously, coordination in synthetically obtained quercetin–zinc (II) complexes has been limited to this group. However, the expanded coordination observed in quercetin–iron complexes has opened avenues for diverse applications. Thus, synthesizing novel quercetin–zinc complexes with different coordination positions is a significant advance. In our study, we not only synthesized and comprehensively characterized a new quercetin–zinc (II
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23

Varbanov, Sabi, Elena Russeva, and Andrei Ganchev. "Zinc Complexes of Dimethyl(phthalimidomethyl)phosphine Oxide." Zeitschrift für Naturforschung B 49, no. 2 (1994): 258–62. http://dx.doi.org/10.1515/znb-1994-0218.

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A series o f zinc complexes of dimethyl(phthalimidomethyl)phosphine oxide (DPPO, L) have been synthesized: ZnX2L2, where X = Cl, Br, I or NO3. The complexes are characterized by elemental analysis, infrared and 1H NMR spectra and X-ray powder analysis. Infrared spectral data show that L is coordinated to zinc via the phosphoryl oxygen atom. The zinc halide complexes are found to be isostructural, while the pattern o f Zn(NO3)2L2 differs considerably from those o f halide complexes.
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24

de Moraes, Josué, Bruno S. Dario, Ricardo A. A. Couto, Pedro L. S. Pinto, and Ana M. da Costa Ferreira. "Antischistosomal Activity of Oxindolimine-Metal Complexes." Antimicrobial Agents and Chemotherapy 59, no. 10 (2015): 6648–52. http://dx.doi.org/10.1128/aac.01371-15.

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ABSTRACTIn recent years, a class of oxindole-copper and -zinc complex derivatives have been reported as compounds with efficient proapoptotic activity toward different tumor cells (e.g., neuroblastomas, melanomas, monocytes). Here we assessed the efficacy of synthesized oxindole-copper(II), -zinc(II), and -vanadyl (VO2+) complexes against adultSchistosoma mansoniworms. The copper(II) complexes (50% inhibitory concentrations of 30 to 45 μM) demonstrated greater antischistosomal properties than the analogous zinc and vanadyl complexes regarding lethality, reduction of motor activity, and oviposi
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25

Zhong, W., Guo Qing Zhong, Y. Zhang, and Q. Zhong. "Solvent-Free Synthesis and Characterization of the Zn(II) Complexes with Amino Acid Schiff Base." Advanced Materials Research 455-456 (January 2012): 740–45. http://dx.doi.org/10.4028/www.scientific.net/amr.455-456.740.

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Three zinc (II) complexes of the amino acid Schiff base were synthesized by the one step reaction of amino acid with aldehyde, zinc acetate in solvent-free. The compositions and structures of the complexes were characterized by elemental analyses, FTIR, XRD, TG-DSC. The compositions of the complexes are ZnL•nH2O (L = sal-leu, sal-ala, van-leu; sal = salicylaldehyde; van = vanillic aldehyde; leu = leucine; ala = alanine). Infrared spectra of the complexes indicate that the Schiff base ligands are formed, zinc ion is coordinated to the Schiff base ligands as terdentate with O, O and N donors fro
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26

Santos Vieira, Ines dos, and Sonja Herres-Pawlis. "Novel Guanidine-Quinoline Hybrid Ligands and the Application of their Zinc Complexes in Lactide Polymerisation." Zeitschrift für Naturforschung B 67, no. 4 (2012): 320–30. http://dx.doi.org/10.1515/znb-2012-0405.

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The syntheses of the three new guanidine-quinoline hybrid ligands TMGmqu, DMEGmqu and TMGtbqu are reported. Zinc chlorido and triflato complexes with these ligands were obtained and structurally characterised by X-ray crystallography. In the chlorido complexes the zinc atom is coordinated by two chlorido ligands and the bidentate guanidine ligand in a distorted tetrahedron. Using zinc triflate, tetrahedral bis(chelate) complexes are formed, and the triflate anions serve only for charge compensation. All reported complexes show activity in the polymerisation of rac-lactide, with the chlorido co
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27

K., Hussain Reddy, and Sambasiva Reddy P. "Synthesis and spectral characterization of mixed ligand zinc(II) complexes with heteroaromatic thiosemicarbazones and pyridine/picoline." Journal of Indian Chemical Society Vol. 79, Feb 2002 (2002): 132–34. https://doi.org/10.5281/zenodo.5841022.

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Department of Chemistry, Sri Krishnadevaraya University, Anantapur-515 003, India <em>Fax : </em>91-08554-29043 <em>Manuscript received 14 September 2000, revised 3 July 2001, accepted 14 July 2001</em> Mixed ligand complexes of zinc(n) with thiocarbamic acid [(thiophene-2-yl)methylene]hydrazide (TTMH) and thiocarbamic acid [(thiophene-2-yl)ethylideneThydrazide (TTEH) as primary ligands and pyridine (py) and 4-picoline (pie) as secondary ligands have been prepared. The primary ligands act as bidentate ligands in all the zinc complexes. The parent compounds, [Zn(TTMH)C12] and [Zn(TTEH)C12] are
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28

Xie, Hong, Sam H. Leung, and Kevin M. Smith. "Syntheses and some chemistry of stable isoporphyrin systems." Journal of Porphyrins and Phthalocyanines 06, no. 10 (2002): 607–16. http://dx.doi.org/10.1142/s1088424602000750.

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Isoporphyrin zinc(II) complexes can be synthesized using the MacDonald ["2+2"] approach, with suitably substituted dipyrromethanes and 5,5-dialkyldipyrromethanes. The zinc(II) complexes are stable, show characteristic optical and 1 H NMR spectra, and have been characterized as perchlorate salts by X-ray diffraction. Attempts to prepare other metal salts of isoporphyrins ( Ni , Cu , Fe ), either by metalation during ring synthesis or by subsequent metalation of metal-free isoporphyrins, were unsuccessful. Evidence shows that a metal-free isoporphyrins can synthesized by demetalating the corresp
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29

Gutiérrez Arguelles, Daniela, Claudia P. Villamizar, Eduardo Brambila-Colombres, et al. "Synthesis, Crystal Structures, Antimicrobial Activity, and Acute Toxicity Evaluation of Chiral Zn(II) Schiff Base Complexes." Molecules 29, no. 23 (2024): 5555. http://dx.doi.org/10.3390/molecules29235555.

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Four mononuclear bioefficient zinc coordination complexes [Zn(NN)3](ClO4)2 (A–D) involving chiral bidentate Schiff base ligands have been synthesized and characterized by IR, 1H, and 13C NMR spectroscopy and mass spectrometry. X-ray crystal structures of three of the zinc complexes revealed that the zinc metal ion is hexacoordinated, exhibiting a distorted octahedral geometry where both the nitrogen atoms (NN = pyridyl and imine) of imines are coordinated to the central zinc ion. The isolated zinc complexes were evaluated for their antimicrobial activity in vitro against Escherichia coli, Pseu
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30

Liao, Jian-Ming, Yu-Kai Chin, Yu-Ting Wu та Hsien-Hsin Chou. "Effect of regio-specific arylamine substitution on novel π-extended zinc salophen complexes: density functional and time-dependent density functional study on DSSC applications". RSC Advances 13, № 4 (2023): 2501–13. http://dx.doi.org/10.1039/d2ra07571g.

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31

Creaser, II, T. Komorita, AM Sargeson, AC Willis, and K. Yamanari. "New Macrocyclic Complexes Derived From Cobalt(III) Cage Complexes." Australian Journal of Chemistry 47, no. 3 (1994): 529. http://dx.doi.org/10.1071/ch9940529.

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The synthesis and partial characterization of several green complexes, derived from the products of the reactions between [Co(Cl2-sar)]3+ (Cl2-sar = 1,8-dichloro-3,6,10,13,16,19- hexaazabicyclo [6.6.6] icosane ) and zinc powder in water, are described. Most of the complexes appear to have [CoCl2(N4)] chromophores , where N4 denotes the tetraaza macrocyclic ligand , 6,13-dimethylene-1,4,8,11-tetraazacyclotetradecane (L1). For trans-[CoCl2(L1)]+, three isomers due to different configurations about the asymmetric nitrogen donor centres were obtained and characterized by the electronic absorption
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32

Inamdar, Poonam R., Jyotsna Hazarika, T. B. Sridharan, and A. Sheela. "Synthesis and DNA Binding Study of Zinc (II) Co-Ordination Complexes." Advanced Materials Research 584 (October 2012): 401–5. http://dx.doi.org/10.4028/www.scientific.net/amr.584.401.

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Since the discovery of cisplatin, transitional metal complexes have been proven to be potent DNA intercalating agents. As zinc being an active core of binding site of some metalloenzymes, the synthesis of structurally similar zinc (II) complexes is on the offing. They are found to be potent DNA intercalating and cleaving agents. Thus, the current study is focused on synthesis of zinc (II) complexes using amino acid / schiff bases as ligands. The complexes are characterized by FTIR, UV-Visible and mass spectral studies and assessed for their DNA binding study using λ DNA by Gel electrophoresis.
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33

Golubeva, I. S., A. E. Barmashov, A. A. Rudakova та ін. "Сytotoxicity of zinc (II) and cadmium (II) iodide complexes with antipyrine, caffeine and phenantroline". Russian Journal of Biotherapy 16, № 3 (2017): 75–78. http://dx.doi.org/10.17650/1726-9784-2017-16-3-75-78.

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Objective: to study the cytotoxic activity of the zinc (II) and cadmium (II) iodide complexes with antipyrine (AP), caffeine (caf) and 1,10-phenantroline (phen) in comparison with that of free ligands, zinc (II) and cadmium (II) iodides in vitro. Materials and methods. The cytotoxic activity of the zinc (II) and cadmium (II) iodide complexes with AP, caf and phen in comparison with that of free ligands, zinc (II) and cadmium (II) iodides was investigated by methylthiazole tetrazolium assay using 5 human tumor cell lines. Results. It has been found that all 3 cadmium complexes demonstrate cytot
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34

Wang, Yun, Wenjuan Zhang, Pengjiang Zhu, et al. "Intensive Cycloalkyl-Fused Pyridines for Aminopyridyl–Zinc–Heteroimidazoles Achieving High Efficiency toward the Ring-Opening Polymerization of Lactides." Molecules 29, no. 17 (2024): 4150. http://dx.doi.org/10.3390/molecules29174150.

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The model precatalyst sp3- and sp2-N dinitrogen-coordinated zinc–heteroimidazole has been used as an efficient catalyst for the ring-opening polymerization of cyclic esters. Subsequent to our exceptional active 5,6,7-trihydroquinolin-8-amine-zinc catalysts for the ring-opening polymerization (ROP) of ε-caprolactone, various pyridine-fused cycloalkanones (ring size from five to eight) are developed for the correspondent fused amine–pyridine derivatives and their zinc–heteroimidazole chloride complexes Zn1–Zn8 (LZnCl2) bearing N-diphenylphosphinoethyl pendants. Activated with two equivalents of
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35

Heumen, Jeff Van, Toru Ozeki, and Donald E. Irish. "A Raman spectral study of the equilibria of zinc bromide complexes in DMSO solutions." Canadian Journal of Chemistry 67, no. 11 (1989): 2030–36. http://dx.doi.org/10.1139/v89-314.

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Using Raman spectroscopy, the stepwise formation of zinc bromide complexes in dimethylsulfoxide (DMSO) solution has been investigated. The presence of four different zinc bromide complexes is suggested and their Raman spectra have been extracted. The formation constant of each reaction has been estimated by the application of factor analysis to the spectra. The usual methods of factor analysis have been extended by the introduction of constraints imposed by the equilibria. Keywords: zinc bromide complexes, solvation in DMSO, Raman spectroscopy, factor analysis.
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36

Webb, Dylan, and J. Robin Fulton. "Utilising an anilido-imino ligand to stabilise zinc-phosphanide complexes: reactivity and fluorescent properties." Dalton Transactions 48, no. 23 (2019): 8094–105. http://dx.doi.org/10.1039/c9dt00681h.

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Anilido-imino-based ligands have been used to generate new zinc complexes, including rare zinc phosphanide and phosphinodichalcogenoate complexes. The fluorescence intensity of these compounds is highly dependent upon the non-ancillary ligand.
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37

Chiu, Yu-Hung, Gregory J. Gabriel, and James W. Canary. "Ternary Ligand−Zinc−Hydroxamate Complexes." Inorganic Chemistry 44, no. 1 (2005): 40–44. http://dx.doi.org/10.1021/ic0493090.

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Liang, Lan-Chang, Wei-Ying Lee, and Chen-Hsiung Hung. "Amido Phosphine Complexes of Zinc." Inorganic Chemistry 42, no. 18 (2003): 5471–73. http://dx.doi.org/10.1021/ic0346228.

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Hartman, U., and H. Vahrenkamp. "Zinc complexes of dipyridyl-triazoles." Inorganica Chimica Acta 239, no. 1-2 (1995): 13–17. http://dx.doi.org/10.1016/0020-1693(95)04712-3.

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Richburg, Lauakia M., Jamshaid A. Farouq, Christopher D. Incarvito, Arnold L. Rheingold*, and Daniel Rabinovich*. "Zinc bis(pyrazolyl)silane complexes." Polyhedron 19, no. 15 (2000): 1815–20. http://dx.doi.org/10.1016/s0277-5387(00)00470-8.

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Javed, Saba, and David M. Hoffman. "Synthesis of Zinc Hydrazonide Complexes." Inorganic Chemistry 47, no. 24 (2008): 11984–92. http://dx.doi.org/10.1021/ic801451v.

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Matsuda, Kenji, Kohsuke Takayama, Yoshihiro Shinkai, and Masahiro Irie. "Photochromism of Diarylethene Zinc Complexes." Molecular Crystals and Liquid Crystals 431, no. 1 (2005): 429–32. http://dx.doi.org/10.1080/15421400590947009.

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43

Bonner, Emily S., James T. Engle, Saovalak Sripothongnak, and Christopher J. Ziegler. "Zinc complexes of the carbahemiporphyrazines." Dalton Transactions 39, no. 8 (2010): 1932. http://dx.doi.org/10.1039/b925669e.

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Müller, Bodo, and Heinrich Vahrenkamp. "Aldehyde Complexes of Zinc Halides." European Journal of Inorganic Chemistry 1999, no. 1 (1999): 129–35. http://dx.doi.org/10.1002/(sici)1099-0682(199901)1999:1<129::aid-ejic129>3.0.co;2-p.

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45

Müller, Bodo, and Heinrich Vahrenkamp. "Zinc Complexes of Chelating Aldehydes." European Journal of Inorganic Chemistry 1999, no. 1 (1999): 137–44. http://dx.doi.org/10.1002/(sici)1099-0682(199901)1999:1<137::aid-ejic137>3.0.co;2-t.

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46

Meyer, Nils, and Peter W. Roesky. "Enantiopure Salen-Type Zinc Complexes." Zeitschrift für anorganische und allgemeine Chemie 633, no. 13-14 (2007): 2292–95. http://dx.doi.org/10.1002/zaac.200700188.

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47

Gamer, Michael T., and Peter W. Roesky. "Bridged Aminotroponiminate Complexes of Zinc." European Journal of Inorganic Chemistry 2003, no. 11 (2003): 2145–48. http://dx.doi.org/10.1002/ejic.200300008.

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48

V., Shankar, K. Mishra G., and Krishna V. "Multimetal multiligand complex formation equilibria of copper(II), nickel(II) and zinc(II) with L-2-amino-3-methylbutanoic acid (valine) and nitrilotriacetic acid." Journal of Indian Chemical Society Vol. 83, Jan 2006 (2006): 23–25. https://doi.org/10.5281/zenodo.5815119.

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Department of Chemistry, University of Allahabad, Allahabad-211 002, Uttar Pradesh, India <em>Manuscript received 7 March 2005, revised 10 August 2005. accepted 29 August 2005</em> Formation equilibria of homo and heterobinuclear ternary/quaternary complexes of Cu<sup>II</sup>&nbsp;, Ni<sup>II</sup> and Zn<sup>II</sup> with nitrilotriacetic acid (A) and valine (B) ligands in aqueous solution have been investigated. Stability constants&nbsp;of the complexes and the complex formation equilibria at temperature 30 &plusmn; 1&deg;&nbsp;and the ionic strength \(I \)&nbsp;= 0.1 M (NaNO<sub>3</sub>) h
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49

Borràs, Jordi, Julie Foster, Roxana Kashani, et al. "New Bioconjugated Technetium and Rhenium Folates Synthesized by Transmetallation Reaction with Zinc Derivatives." Molecules 26, no. 8 (2021): 2373. http://dx.doi.org/10.3390/molecules26082373.

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The zinc dithiocarbamates functionalized with folic acid 2Zn and 3Zn were synthesized with a simple straightforward method, using an appropriated folic acid derivative and a functionalized zinc dithiocarbamate (1Zn). Zinc complexes 2Zn and 3Zn show very low solubilities in water, making them useful for preparing Tc-99m radiopharmaceuticals with a potentially high molar activity. Thus, the transmetallation reaction in water medium between the zinc complexes 2Zn or 3Zn and the cation fac-[99mTc(H2O)3(CO)3]+, in the presence of the monodentate ligand TPPTS, leads to the formation of the 2 + 1 com
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50

Hasan, Md Sharif, Narhari Das, Zobaer Al Mahmud, and S. M. Abdur Rahman. "Pharmacological Evaluation of Naproxen Metal Complexes on Antinociceptive, Anxiolytic, CNS Depressant, and Hypoglycemic Properties." Advances in Pharmacological Sciences 2016 (2016): 1–7. http://dx.doi.org/10.1155/2016/3040724.

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Purpose. The present study was designed to investigate the antinociceptive, anxiolytic, CNS depressant, and hypoglycemic effects of the naproxen metal complexes.Methods. The antinociceptive activity was evaluated by acetic acid-induced writhing method and radiant heat tail-flick method while anxiolytic activity was evaluated by elevated plus maze model. The CNS depressant activity of naproxen metal complexes was assessed using phenobarbitone-induced sleeping time test and the hypoglycemic test was performed using oral glucose tolerance test.Results. Metal complexes significantly (P&lt;0.001) r
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