Academic literature on the topic 'Planar Complexes of Platinum(Il)'

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Journal articles on the topic "Planar Complexes of Platinum(Il)"

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Poirier, Stéphanie, Christian Reber, and Pierre Libioulle. "Temperature / pressure-dependent luminescence spectra of square-planar complexes." Acta Crystallographica Section A Foundations and Advances 70, a1 (2014): C1714. http://dx.doi.org/10.1107/s2053273314082850.

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Luminescence properties of square-planar complexes of platinum(II) and palladium(II) with a d8 electron configuration were investigated. Blue shift of the maxima of the luminescence spectra occur for pressure-dependent spectra of several complexes of both metals. This is due to a structural compression of the crystalline lattice, which causes a destabilization of the LUMO orbital for theses complexes. Other structural changes can also occur, providing a more important slope of the blue shift. Also, intermolecular interactions cause a red shift in pressure-dependent spectra. In temperature-depe
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Soliman, Ahmed A., Fawzy A. Attaby, Othman I. Alajrawy, Azza A. A. Abou-hussein, and Wolfgang Linert. "New Platinum (II) Ternary Complexes of Formamidine and Pyrophosphate: Synthesis, Characterization and DFT Calculations and In vitro Cytotoxicity." Combinatorial Chemistry & High Throughput Screening 23, no. 7 (2020): 611–23. http://dx.doi.org/10.2174/1386207323666200218115700.

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Aim and Objective: Platinum (II) and platinum (IV) of pyrophosphate complexes have been prepared and characterized to discover their potential as antitumor drugs. This study was conducted to prepare and characterize new ternary platinum (II) complexes with formamidine and pyrophosphate as an antitumor candidate. Materials and Methods: The complexes have been characterized by mass, infrared, UV-Vis. spectroscopy, elemental analysis, magnetic susceptibility, thermal analyses, and theoretical calculations. They have been tested for their cytotoxicity, which was carried out using the fastcolorimet
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Bridgeman, Adam J., and Malcolm Gerloch. "Ligand fields in planar platinum(II) complexes." Journal of the Chemical Society, Dalton Transactions, no. 2 (1995): 197. http://dx.doi.org/10.1039/dt9950000197.

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Poirier, Stéphanie, Feriel Rahmani, and Christian Reber. "Large d–d luminescence energy variations in square-planar bis(dithiocarbamate) platinum(ii) and palladium(ii) complexes with near-identical MS4 motifs: a variable-pressure study." Dalton Transactions 46, no. 16 (2017): 5279–87. http://dx.doi.org/10.1039/c7dt00545h.

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A surprising variation of luminescence maxima occurs for crystalline dithiocarbamate platinum(ii) complexes with very similar square-planar coordination geometries but different peripheral substituents R, R′.
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Geng, Hao, Kaijun Luo, Guo Zou, et al. "New phosphorescent platinum(ii) complexes: lamellar mesophase and mechanochromism." New Journal of Chemistry 40, no. 12 (2016): 10371–77. http://dx.doi.org/10.1039/c6nj02585d.

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Several new square planar platinum(ii) complexes based on modified 2-phenylpyridine derivatives as the main ligand and picolinic acid as the auxiliary ligand were synthesized and their photophysical properties, and mechanochromic and liquid crystalline behavior were investigated.
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Yang, Jing, Lili Sun, Liang Hao, et al. "A halogen ion-selective phosphorescence turn-on probe based on induction of Pt–Pt interactions." Chemical Communications 55, no. 75 (2019): 11191–94. http://dx.doi.org/10.1039/c9cc05093k.

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Fukuda, Keito, Tomoaki Sugaya та Koji Ishihara. "Crystal structure of [5-bromo-2-(pyridin-2-yl-κN)phenyl-κC1](pentane-2,4-dionato-κ2O,O′)platinum(II)". Acta Crystallographica Section E Crystallographic Communications 71, № 10 (2015): 1259–61. http://dx.doi.org/10.1107/s2056989015017478.

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The title cyclometalated platinum(II) complex with 2-(4-bromophenyl)pyridinato and acetylacetonato ligands, [Pt(C11H7BrN)(C5H7O2)], consists of two crystallographically non-equivalent dimers, each stacked by π–π interactions with distances of ≃ 3.4 Å. In both dimers, the platinum(II) complexes are arranged antiparallel to each other. Each complex exhibits a slightly distorted square-planar coordination environment around the central Pt(II) atom. The dihedral angles between two chelate rings including the PtIIatom in these complexes are 0.08 (12) and 1.54 (9)°.
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B., Keshavan, and Gowda Kempe. "Synthesis of square-planar palladium(II) and platinum(II) complexes with N-alkylphenothiazines." Journal of Indian Chemical Society Vol. 78, Jan 2001 (2001): 37–38. https://doi.org/10.5281/zenodo.5849937.

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Department of Studies in Chemistry, University of Mysore, Mysore-570 006, India <em>Manuscript received 14 February 2000. revised 6 July 2000, accepted 8 September 2000</em> Six square-planar complexes with general formula MLCl<sub>2</sub>&nbsp;[M = Pd<sup>II</sup>&nbsp;or Pt<sup>II</sup>&nbsp;and L = methoxypromazine (MP), prochloroperzine-&nbsp;(PCP)&nbsp;or butaperazine (BP)&nbsp;have been synthesised in ethanol medium.<em>N-</em>Aikylphcnothiazines act as bidentate ligands, the heterocyclic sulfur and tertiary nitrogen of the chain being the sites of coordination.
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Ali A. K. Al-Jibori, Subhi A. M. Al-Jibori, and Ahmed S. M. Al-Janabi. "Palladium(II) and platinum(II) mixed ligand complexes of metronidazole and saccharinate or benzisothiazolinonate ligands, synthesis and spectroscopic investigation." Tikrit Journal of Pure Science 24, no. 6 (2019): 26–32. http://dx.doi.org/10.25130/tjps.v24i6.432.

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Six palladium (II) and platinum (II) mixed ligand complexes of metronidazole (mnz) and saccharinate (sac) or benzothiazolinolate (bit) complexes of the type [ML2(mnz)2], M = Pd or Pt, L = sac or bit, have been prepared in moderate to high yield. The newly prepared complexes have been characterized by elemental (C,H,N,S) analysis, conductivity measurements, infrared and 1H-NMR spectra. Characterization data showed that the mnz ligand in all of the prepared complexes is coordinated to metal center through the imidazole nitrogen atom. The (sac) anion ligand is coordinated through the endocyclic n
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Samha, Hussein, and M. Keith De Armond. "Langmuir-blodgett (LB) of transition metal complexes square planar platinum(II) complexes." Coordination Chemistry Reviews 111 (December 1991): 73–81. http://dx.doi.org/10.1016/0010-8545(91)84011-s.

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Dissertations / Theses on the topic "Planar Complexes of Platinum(Il)"

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Ringo, Jessica M. "Square planar d8 metal complexes with nitrogen-based ligands: structural analysis, metal-metal cooperativity, and applications." University of Cincinnati / OhioLINK, 2019. http://rave.ohiolink.edu/etdc/view?acc_num=ucin1562842509907911.

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Robinson, Matthew Elsworth. "Hierarchical solution self-assembly of square planar platinum(II) complexes and block copolymers containing a polyferrocenylsilane metalloblock." Thesis, University of Bristol, 2017. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.730847.

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Swan, Paul Lombard. "Synthesis of mixed ligand, water soluble square planar platinum (II) complexes and an investigation of their association with haematin and potential to inhibit the formation of synthetic malaria pigment." Master's thesis, University of Cape Town, 2002. http://hdl.handle.net/11427/9782.

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Includes bibliography.<br>To establish their potential as a template for novel anti-malarial drugs, a series of planinum (II) complexes were synthesised, their association with haematin determined in 40 aqueous DMSO, pH 7.4 at 25°C and their ability to inhibit the formation of β-haematin (synthetic malaria pigment) was investigated. The compounds synthesised and investigated contained a platinum (II) ion coordinated to acylthiourea and diimine ligands. The diimines used included both substituted and unsubstituted 2,2’-bipyridines and 1,10-phenanthrolines. 2-phenyl pyridine was also utilised as
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Wheate, Nial Joseph Chemistry Australian Defence Force Academy UNSW. "Platinum anti-cancer complexes." Awarded by:University of New South Wales - Australian Defence Force Academy. School of Chemistry, 2001. http://handle.unsw.edu.au/1959.4/38704.

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[Formulae and special characters can only be approximated here. Please see the pdf version of the Abstract for an accurate reproduction.] Several inert platinum complexes were synthesised: [(en)Pt([special character]-dpzm)2Pt(en)]4+, [{Pt(dien)}2[special character]-dpzm]4+, [{Pt(dien)}2[special character]-H2N-(CH2)6-NH2]4+, cis-[(NH3)2Pt([special character]--dpzm)2Pt(NH3)2]4+, trans-[Pt(NH3)2([special character]-dpzm)2]2+. Three active complexes, all with chloro ligands, were also synthesised: trans-[{Pt(NH3)Cl2}2[special character]-dpzm)], trans-[{Pt(NH3)2Cl}2[special character]-dpzm]2+ (di-
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McGowan, Geraldine. "Platinum picoline anticancer complexes." Thesis, University of Edinburgh, 2005. http://hdl.handle.net/1842/11119.

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The 2-picoline (2-methylpyridine) complex, <i>cis</i>-[PtCl<sub>2</sub>(NH<sub>3</sub>)(2-pic)] (AMD473), is promising new generation platinum antitumour agent currently in clinical trials and highly active cisplatin resistant cell-lines. The antitumour activity of <i>trans </i>platinum complexes has attracted renewed interest since it has been shown that some <i>trans</i> compounds, in particular those possessing planar amine ligands, are anticancer-active. Therefore, three <i>trans</i> isomers, <i>trans</i>-[PtCl<sub>2</sub>(NH­<sub>3</sub>)(2-pic)] (1), <i>trans-</i>[PtCl<sub>2</sub>(NH<sub
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Davies, Sian E. "Novel platinum (O) complexes." Thesis, University of Sussex, 1993. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.335049.

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Lee, Daniel E. "Development of Non-Traditional Platinum Anticancer Agents: trans-Platinum Planar Amine Compounds and Polynuclear Platinum Compounds." VCU Scholars Compass, 2015. http://scholarscompass.vcu.edu/etd/3809.

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Development of Non-Traditional Platinum Anticancer Agents: trans-Platinum Planar Amine Compounds and Polynuclear Platinum Compounds By Daniel E. Lee, Ph.D. A dissertation submitted in partial fulfillment of the requirements for the degree of Doctor of Philosophy at Virginia Commonwealth University. Virginia Commonwealth University, 2015 Major Director: Nicholas P Farrell, Ph.D., Professor, Department of Chemistry Platinum anticancer compounds with cis geometry, similar to cisplatin, have been explored to circumvent the cisplatin resistance; however, they were not considered broadly active in c
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Hindmarsh, Kathryn. "Kinetic studies of platinum complexes." Thesis, University of Canterbury. Chemistry, 1998. http://hdl.handle.net/10092/8647.

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Since the chance discovery, in 1967, of the anti-tumour activity of cisplatin, cis-dichlorodiammineplatinum(II), research has focussed on studying the reactions of this and other related complexes in an effort to elucidate the nature of the biological activity. This thesis presents a study of the aqueous solution chemistry of some platinum(II) and platinum(IV) complexes in order to extend what is known about the simple chemistry of this biologically important class of compounds. The chloride ion anation of diaqua (cis-[Pt(OH₂)₂(N)₂]²⁺) complexes is investigated as is the bromide ion anation o
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Mackay, Fiona S. "Photoactive platinum azide anticancer complexes." Thesis, University of Edinburgh, 2006. http://hdl.handle.net/1842/11085.

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Photoactive platinum compounds have the potential to reduce some of the debilitating side-effects associated with conventional chemotherapeutics, such as cisplatin. Stable, inert platinum(IV) compounds which are reduced to active platinum(II) species only upon irradiation, could provide a site-specific treatment. The Pt<sup>IV</sup> azide complexes, <i>cis, trans, cis-</i>[Pt(N<sub>3</sub>)<sub>2</sub>(OH)<sub>2</sub>(NH<sub>3</sub>)<sub>2</sub>] and <i>cis, trans-</i>[Pt(en)(N<sub>3</sub>)<sub>2</sub>, have previously been shown to be stable in the dark but reduced to Pt<sup>II</sup> upon irr
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Shaili, Evyenia. "Photoactivatable platinum (IV) anticancer complexes." Thesis, University of Warwick, 2013. http://wrap.warwick.ac.uk/59800/.

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In this work, trans-diazido Pt(IV) complexes with general formula [Pt(N3)2(OH)(OCOR)(pyr)2] (where OCOR is a carboxylate axial ligand) and [Pt(N3)2(OH)2(L1)(L2)] (where L1 and L2 are aromatic N-heterocyclic ligands) have been synthesised and characterised. The chemical and photochemical properties of these complexes, as well as their photobiological behaviour, have been studied in order to check their potential as photoactivatable anticancer drugs. Four trans-diazido Pt(IV) complexes with general formula trans, trans, trans- [Pt(N3)2(OH)(OCOR)(pyr)2] (OCOR= succinate, 4-oxo-4-propoxybutanoate,
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Books on the topic "Planar Complexes of Platinum(Il)"

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Cave, Gareth W. V. Cyclometalation: 2,6-diphenylpyridine complexes of platinum. typescript, 1999.

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Lelieveld, P. Preclinical screening and toxicology of organic platinum complexes. Radiobiological Institute of the Division for Health Research TNO, 1987.

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Quyoum, Ruhksana. Pentamethylclopentadienyl complexes of platinum(II): Their synthesis and reactivity. University of Salford, 1992.

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Baulieu, Etienne, Donald T. Forman, Magnus Ingelman-Sundberg, et al., eds. Ruthenium and Other Non-Platinum Metal Complexes in Cancer Chemotherapy. Springer Berlin Heidelberg, 1989. http://dx.doi.org/10.1007/978-3-642-74760-1.

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E, Alessio, Clarke M. J, Società chimica italiana, Università degli studi di Trieste., and Symposium on Ruthenium and Other Non-Platinum Metal Complexes in Cancer Chemotherapy., eds. Ruthenium and other non-platinum metal complexes in cancer chemotherapy. Spriger Verlag, 1989.

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Campbell, Colm J. Synthesis and study of platinum(II) and platinum(IV) complexes of EDTA derivatives as potential antitumour agents. University College Dublin, 1996.

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Perera10010, A. D. S. The binding of platinum anti-tumour complexes to plasma proteins using 195mpt as a radiolabel and the synthesis and investigation of platinum complexes containing sulphide. UMIST, 1989.

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Zou, Taotao. Anti-Cancer N-Heterocyclic Carbene Complexes of Gold(III), Gold(I) and Platinum(II). Springer Singapore, 2016. http://dx.doi.org/10.1007/978-981-10-0657-9.

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Sutaria, Adil Dinyar. The effect of heterodentate chelatin P-N ligands on allyl and alkyl complexes of palladium and platinum. University of Salford, 1995.

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Tilus, Pirkko. The formation of aqueous binary and ternary nickel(II) complexes of nitrogen- and carbon-alkylated ethylenediamines, exhibiting octahedral and square planar species. Suomalainen Tiedeakatemia, 1985.

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Book chapters on the topic "Planar Complexes of Platinum(Il)"

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Bosman, Irina, and Ganna V. Kalayda. "Platinum Complexes." In Encyclopedia of Cancer. Springer Berlin Heidelberg, 2015. http://dx.doi.org/10.1007/978-3-642-27841-9_4616-2.

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Kelland, Lloyd R. "Platinum Complexes." In Cancer Therapeutics. Humana Press, 1997. http://dx.doi.org/10.1007/978-1-59259-717-8_4.

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Bosman, Irina, and Ganna V. Kalayda. "Platinum Complexes." In Encyclopedia of Cancer. Springer Berlin Heidelberg, 2016. http://dx.doi.org/10.1007/978-3-662-46875-3_4616.

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Buss, Irina, and Ulrich Jaehde. "Platinum Complexes." In Encyclopedia of Cancer. Springer Berlin Heidelberg, 2011. http://dx.doi.org/10.1007/978-3-642-16483-5_4616.

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Blake, D. M., D. M. Roundhill, C. Ambridge, S. Dwight, and H. C. Clark. "Bis(Triphenylphosphine)Platinum Complexes." In Inorganic Syntheses. John Wiley & Sons, Inc., 2007. http://dx.doi.org/10.1002/9780470132494.ch19.

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Spencer, J. L., S. D. Ittel, and M. A. Cushing. "Olefin Complexes of Platinum." In Inorganic Syntheses. John Wiley & Sons, Inc., 2007. http://dx.doi.org/10.1002/9780470132500.ch49.

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Crascall, Louise E., John L. Spencer, Ruth Ann Doyle, and Robert J. Angelici. "Olefin Complexes of Platinum." In Inorganic Syntheses. John Wiley & Sons, Inc., 2007. http://dx.doi.org/10.1002/9780470132593.ch34.

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Phillips, Julia R., William C. Trogler, Mick Brammer, and Dianne L. Packett. "Chlorohydridobis(Trialkylphosphine)-Platinum(II) Complexes." In Inorganic Syntheses. John Wiley & Sons, Inc., 2007. http://dx.doi.org/10.1002/9780470132609.ch46.

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Adams, R. D., T. S. Barnard, J. E. Cortopassi, et al. "Platinum-ruthenium Carbonyl Cluster Complexes." In Inorganic Syntheses. John Wiley & Sons, Inc., 2007. http://dx.doi.org/10.1002/9780470132630.ch44.

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Grice, Kyle A., Margaret L. Scheuermann, and Karen I. Goldberg. "Five-Coordinate Platinum(IV) Complexes." In Higher Oxidation State Organopalladium and Platinum Chemistry. Springer Berlin Heidelberg, 2011. http://dx.doi.org/10.1007/978-3-642-17429-2_1.

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Conference papers on the topic "Planar Complexes of Platinum(Il)"

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Srinivasan, V. "Corrosion of Fe-25 Cr Alloy with Microconstituent Additions of Hafnium and Platinum." In CORROSION 1989. NACE International, 1989. https://doi.org/10.5006/c1989-89522.

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Abstract The study reported here was performed with a view to understanding the effects of minor additions of Hf and Pt on the corrosion behavior of a model chromia former, Fe-25Cr. Bulk addition of Hf or Pt was made at 1 wt.% level to the base alloy, Fe-25 Cr, and the experimental alloys were made by an ingot metallurgy route. Coupons were machined from the as-cast rods or forged prismatic bars, and metallographically polished to 1 μ alumina. Multiple samples were exposed to an H2/H2S/H2O/Ar gas mixture at 700°C for times up to 192 hrs. Planar and cross-sections of scales formed on the substr
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Kodzasa, Takehito, Hirobumi Ushijima, Hiro Matsuda, and Toshihide Kamata. "Third-order nonlinear optical property of platinum group metal complexes with square planar configurations." In Organic Thin Films for Photonic Applications. Optica Publishing Group, 1997. http://dx.doi.org/10.1364/otfa.1997.the.1.

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The developments of novel materials having large third-order nonlinear optical susceptibility χ(3) and fast response give a considerable interest as the key subjects for future optoelectronic technology. It was proved in former researches that the large low dimensional delocalization field for optically excited electron is effective for large χ(3) value. Third-order optical nonlinearities of many materials, mainly inorganic semiconductors or organic conjugated polymers, have been investigated. Many inorganic materials have studied for their large χ(3) and thermal stability. On the other hands,
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Antonijevic, Marko, Jelena Đorovic Jovanovic, Ana Kesic, Dejan Milenkovic та Zoran Markovic. "КOMPLEKSI ZLATA KAO POTENCIJALNI SUPLEMENTI SA ANTIKANCEROGENIM I ANTIVIRUSNIM DELOVANJEM". У XXVI savetovanje o biotehnologiji sa međunarodnim učešćem. University of Kragujevac, Faculty of Agronomy, 2021. http://dx.doi.org/10.46793/sbt26.429a.

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The pharmacologic properties of gold compounds have been known since the end of the 19th century. They have been used for different studies, even though they are usually used for the treatment of arthritis. In the last decade, gold complexes have received increased attention due to the variety of their applications. Primary, they have been investigated as potential anticancer and chemotherapeutic agents. It is well known that gold(III) complexes are very similar to platinum(II) compounds, so they could exhibit prospective anticancer, cytotoxic and antitumor properties. In this paper, were inve
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Theriot, Jeremy J., Neal Prakash, Arthur W. Toga, and Y. Sungtaek Ju. "Microfabricated Electrode Array Compatible With Optical Imaging of Intrinsic Signals During Somatosensory Stimulation and Cortical Spreading Depression." In ASME 2006 International Mechanical Engineering Congress and Exposition. ASMEDC, 2006. http://dx.doi.org/10.1115/imece2006-16086.

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Accurate interpretation of functional brain images requires knowledge of the relationship between neurons and their supporting cells and vasculature. Our understanding of this complex and dynamic system would improve if we measure multiple aspects of brain function simultaneously. We have developed a semi-transparent electrode array which allows for concurrent multi-site electrophysiological recording and high-resolution optical imaging of intrinsic signals. The 8-channel electrode array is fabricated on a transparent glass substrate with platinum recording surfaces. We map stimulus-induced fi
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Al-Khaykanee, Mohsin K., Faeq A. Al-Temimei, A. A. Al-Jobory, Dhay Ali Sabur, and Hamid I. Abbood. "Thermoelectric properties of platinum metal complexes." In THE 7TH INTERNATIONAL CONFERENCE ON APPLIED SCIENCE AND TECHNOLOGY (ICAST 2019). AIP Publishing, 2019. http://dx.doi.org/10.1063/1.5123090.

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Batchelor, Anna, Michael Duncan, Timothy Ward, and Joshua Marks. "INFRARED PHOTODISSOCIATION SPECTROSCOPY OF PLATINUM-CATION ACETYLENE COMPLEXES." In 2022 International Symposium on Molecular Spectroscopy. University of Illinois at Urbana-Champaign, 2022. http://dx.doi.org/10.15278/isms.2022.mj11.

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Sortland, Miriam, Ryan Del Re, James Passarelli, et al. "Positive-tone EUV resists: complexes of platinum and palladium." In SPIE Advanced Lithography, edited by Obert R. Wood and Eric M. Panning. SPIE, 2015. http://dx.doi.org/10.1117/12.2086598.

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Shpakovsky, D., T. Antonenko, R. Smirnov, Yu Gracheva, and E. Milaeva. "CYTOTOXIC ACTIVITY OF PLATINUM COMPLEXES CONTAINING THE ANTIOXIDANT MOIETY." In MedChem-Russia 2021. 5-я Российская конференция по медицинской химии с международным участием «МедХим-Россия 2021». Издательство Волгоградского государственного медицинского университета, 2021. http://dx.doi.org/10.19163/medchemrussia2021-2021-533.

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Chambers, Erin W., Jeff Erickson, and Pratik Worah. "Testing contractibility in planar rips complexes." In the twenty-fourth annual symposium. ACM Press, 2008. http://dx.doi.org/10.1145/1377676.1377721.

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Ohshima, Takuya, Yasuo Minami, Ikufumi Katayama, and Jun Takeda. "Broadband THz time-domain spectroscopy of halogen-bridged platinum complexes." In 2013 Conference on Lasers and Electro-Optics Pacific Rim (CLEO-PR). IEEE, 2013. http://dx.doi.org/10.1109/cleopr.2013.6600522.

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Reports on the topic "Planar Complexes of Platinum(Il)"

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Ratilla, E. Platinum(II) complexes as spectroscopic probes for biomolecules. Office of Scientific and Technical Information (OSTI), 1990. http://dx.doi.org/10.2172/6491206.

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Pham, Eric K., and Robert West. Platinum Eta 2 -Disilene Complexes: Syntheses, Reactivity, and Structures. Defense Technical Information Center, 1990. http://dx.doi.org/10.21236/ada267080.

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Wei, X., R. J. Donohoe, W. Z. Wang, A. R. Bishop, and J. T. Gammel. Quantum Spin Fluctuations in Quasi-One-Dimensional Chlorine-Bridged Platinum Complexes. Office of Scientific and Technical Information (OSTI), 1997. http://dx.doi.org/10.2172/618159.

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Zhou, Xia-Ying. Effects of ancillary ligands on selectivity of protein labeling with platinum(II) chloro complexes. Office of Scientific and Technical Information (OSTI), 1990. http://dx.doi.org/10.2172/6941351.

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Eisenberg, R. Photochemistry of dithiolate complexes of the platinum group elements. Progress report, May 1, 1993--April 30, 1994. Office of Scientific and Technical Information (OSTI), 1994. http://dx.doi.org/10.2172/10141031.

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Arias, Eduardo, Ivana Moggio, and Ronald Ziolo. Liquid Crystals of Dendron-Like Pt Complexes Processable Into Nanofilms Dendrimers. Phase 2. Cholesteric Liquid Crystal Glass Platinum Acetylides. Defense Technical Information Center, 2014. http://dx.doi.org/10.21236/ada619975.

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Chapman and Toema. PR-266-09211-R01 Physics-Based Characterization of Lambda Sensor from Natural Gas Fueled Engines. Pipeline Research Council International, Inc. (PRCI), 2012. http://dx.doi.org/10.55274/r0010022.

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Abstract:
The increasingly strict air emission regulations may require implementing Non-Selective Catalytic Reduction (NSCR) systems as a promising emission control technology for stationary rich burn spark ignition engines. Many recent experimental investigations that used NSCR systems for stationary natural gas fueled engines showed that NSCR systems were unable to consistently control the exhaust emissions level below the compliance limits. Modeling of NSCR components to better understand, and then exploit, the underlying physical processes that occur in the lambda sensor and the catalyst media is no
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