Open Access
Issue |
E3S Web Conf.
Volume 473, 2024
The 3rd International Conference on Renewable Energy (I-CORE 2023)
|
|
---|---|---|
Article Number | 03006 | |
Number of page(s) | 10 | |
Section | Advance Material | |
DOI | https://doi.org/10.1051/e3sconf/202447303006 | |
Published online | 08 January 2024 |
- Colette, A., Yuoh, B., Agwara, M. O., Yufanyi, D. M., Conde, M. A., Jagan, R., and Eyong, K. O., 2015, Synthesis, Crystal Structure, and Antimicrobial Properties of a Novel 1-D Cobalt Coordination Polymer with Dicyanamide and 2-Aminopyridine, Int. J. Inorg. Chem., 9–12.(2015) [Google Scholar]
- Dong, D., Zheng, H., Zhao, L., Zhuang, P., Liu, T., He, C., and Duan, C., Synthesis, structure, and magnetic properties of a cyanidebridged Fe(III)-Cu(II) bimetallic double-zigzag chain with slow relaxation of the magnetization, Sci. China Chem. 2012 556, 55 (6), 1018–1021. (2012) [CrossRef] [Google Scholar]
- Chen, D. Y., Gao, H., Hu, X. F., Guo, X. Y., Yang, F., and Bai, Y., Synthesis, crystal structure, and luminescent properties of two ternary complexes with mixed thiocyanate and quinoline ligands, Synth. React. Inorganic, Met. Nano-Metal Chem., 40 (2), 112–115. (2010) [Google Scholar]
- Handy, J. V., Ayala, G., and Pike, R. D., Structural comparison of copper(II) thiocyanate pyridine complexes, Inorganica Chim. Acta, 456 (March 2020), 64–75. (2017) [Google Scholar]
- Pennington, L. D., and Moustakas, D. T., The Necessary Nitrogen Atom: A Versatile High-Impact Design Element for Multiparameter Optimization, J. Med. Chem., 60 (9), 3552–3579. (2017) [CrossRef] [PubMed] [Google Scholar]
- K, E., Strains, R. R., Hrunyk, A., Kramkowski, K., Laskowska, M., and Lizut, R., Pyridine Derivatives — A New Class of Compounds That Are, (Figure 1, . (2021) [Google Scholar]
- Nassimbeni, L. R., and Niven, L., Studies in Werner Clathrates. Part 6. Structures of Two Novel Polymeric Inclusion Compounds : Poly (bis (isothiocyanato) di (2aminopyridine) nickel (II)) ~ diethylether and Di (aqua bis (isothiocyanato) 3aminopyridine nickel (II)) water, 132, 61–66. (1987) [Google Scholar]
- Banerjee, S., Wu, B., Lassahn, P. G., Janiak, C., and Ghosh, A., Synthesis, structure and bonding of cadmium(II) thiocyanate systems featuring nitrogen based ligands of different denticity, Inorganica Chim. Acta, 358 (3), 535–544. (2005) [Google Scholar]
- Mautner, F. A., Jantscher, P., Fischer, R. C., Torvisco, A., Vicente, R., Karsili, T. N. V., and Massoud, S. S., Synthesis and characterization of 1D coordination polymers of metal(II)-dicyanamido complexes, Polyhedron, 166, 36–43. (2019) [CrossRef] [Google Scholar]
- Mbani, A. L. O., Yufanyi, D. M., Tabong, C. D., Nono, H. J., Yuoh, A. C. B., Paboudam, A. G., and Ondoh, A. M., Synthesis, crystal structure, DFT studies and Hirshfeld surface analysis of Manganese(II) and Cadmium(II) coordination polymers of 2-aminopyridine and dicyanamide, J. Mol. Struct., 1261 (132956), (2022) [CrossRef] [Google Scholar]
- Mautner, F. A., Jantscher, P. V., Fischer, R. C., Torvisco, A., Reichmann, K., Salem, N. M. H., Gordon, K. J., Louka, F. R., and Massoud, S. S., Coordination polymers in dicyanamido-cadmium(II) with diverse network dimensionalities, Crystals, 11 (2), 1–13. (2021) [Google Scholar]
- Golder, R. K., Fitchett, C. M., Wikaira, J. L., and Steel, P. J., Catena-Poly[[silver(I)-μ4-aminopyridine] perchlorate]: A 1-D staircase coordination polymer, Acta Crystallogr. Sect. E Struct. Reports Online, 66 (10). (2010) [Google Scholar]
- Fun, H. K., John, J., Jebas, S. R., and Balasubramanian, T., Bis(2-amino-pyridine-κN1)silver(I) nitrate, Acta Crystallogr. Sect. E Struct. Reports Online, 64 (11), (2008). [Google Scholar]
- Hansson, K., Solution Speciation and Antimicrobial Properties of Silver (I) Nitrate Complexes with Pyridine and Quinoline type Ligands Master of Science Thesis in the Master Degree Programme Biotechnology, Chalmers Univ. Technol., (I), (2012). [Google Scholar]
- Jebas, S. R., Balasubramanian, T., and Slawin, A. M. Z., Tris(2-aminopyridine-kN 1)(nitrato-kO)silver(I), Acta Crystallogr. Sect. E Struct. Reports Online, 63 (6), 1624–1626. (2007) [Google Scholar]
- Li, Y. G., Zhu, H. L., Song, Y., and Ng, S. W., Bis[bis(4-aminopyridine-κN1)silver(1)] terephthalate decahydrate, Acta Crystallogr. Sect. E Struct. Reports Online, 61 (12), 2564–2565. (2005) [Google Scholar]
- Salvo, F. Di, Carolina, O., Montilva, S., Movilla, F., Rodriguez, M. G., and Salvo, F. Di, Synthesis, crystal structure and study of the crystal packing in the complex bis (4aminopyridineκ N 1) dichloridocobalt (II) Olga Carolina Sanchez Montilva, Federico Movilla, Maricel Gabriela Synthesis, crystal structure and study of the crysta, 2 (Ii), 399–406. (2017) [Google Scholar]
- Dan, W. Y., Di, Y. Y., Liu, Y. J., Kong, Y. X., and Tan, Z. C., Low-temperature heat capacities and standard molar enthalpy of formation of dichloro bis(2-aminopyridine) zinc (II), ZnCl 2(C 5H 6N 2) 2(s), Int. J. Thermophys., 31 (11-12), 2103–2118. (2010) [CrossRef] [Google Scholar]
- Moustafa, I. M. I., Mohamed, N. M., and Ibrahim, S. M., Molecular Modeling and Antimicrobial Screening Studies on Some 3-Aminopyridine Transition Metal Complexes, Open J. Inorg. Chem., 12 (03), 39–56. (2022) [Google Scholar]
- Pan, W. L., Niu, X. L., Tang, W., and Hu, C. W., Bis(3-aminopyridineκN)diisothiocyanatozinc(II), Acta Crystallogr. Sect. E Struct. Reports Online, 63 (2), 304–305. (2007) [Google Scholar]
- Kristiansson, O., Bis(4-aminopyridine)silver(I) nitrate and tris(2, 6diaminopyridine)silver(I) nitrate, Acta Crystallogr. Sect. C Cryst. Struct. Commun., 56 (2), 165–167. (2000) [CrossRef] [PubMed] [Google Scholar]
- Aakeröy, C. B., Beatty, A. M., and Helfrich, B. A., Two-fold interpenetration of 3-D nets assembled via three-co-ordinate silver(I) ions and amide–amide hydrogen bonds, 2 (8), 1943–1945.(1998) [Google Scholar]
- Zhu, H. L., Qiu, X. Y., Yang, S., Shao, S. C., Ma, J. L., and Sun, L., Bis(μ-4chlorobenzoato-k2O:O)bis-[(2-aminopyridine-kN) silver(I)], Acta Crystallogr. Sect. C Cryst. Struct. Commun., 60 (4), 170–171. (2004) [Google Scholar]
- White, A. H., Lewis-base Adducts of Group 1 B Metal (I) Compounds. Part 5.’ Synthesis and Crystal Structures * of Adducts of Silver (I) Thiocyanate with 2and 3Methylpyridine, 2, 6-Dimethylpyridine8 and Quinoline, Dalt. Trans., 5 (1), 229–237. (1984) [Google Scholar]
- Tsague Chimaine, F., Yufanyi, D. M., Colette Benedicta Yuoh, A., Eni, D. B., and Agwara, M. O., Synthesis, crystal structure, photoluminescent and antimicrobial properties of a thiocyanato-bridged copper(II) coordination polymer, Cogent Chem., 2 (1), 1–14. (2016) [Google Scholar]
- Wöhlert, S., Jess, I., Englert, U., and Näther, C., Synthesis and crystal structures of Zn(ii) and Co(ii) coordination compounds with ortho substituted pyridine ligands: Two structure types and polymorphism in the region of their coexistence, CrystEngComm, 15 (26), 5326–5336. (2013) [Google Scholar]
- Randall, M., and Halford, J., Equilibria Involving Some Complex Ions of Silver and the Free Energy of Some Silver Compounds, Am. Chem. Soc. Jurnals, 52 (1928), 178–191. (2001) [Google Scholar]
- Svirchuk, Y., Electrical Conductivity, A-to-Z Guid. to Thermodyn. Heat Mass Transf. Fluids Eng., e (l), 1–13. (2006) [Google Scholar]
- Buyukmurat, Y., and Akyuz, S., Theoretical and experimental studies of IR spectra of 4-aminopyridine metal(II) complexes, J. Mol. Struct., 651–653, 533–539. (2003) [CrossRef] [Google Scholar]
- Akalin, E., and Akyüz, S., Force field and IR intensity calculations of aniline and transition metal(II) aniline complexes, J. Mol. Struct., 482–483, 175–181. (1999) [CrossRef] [Google Scholar]
- Claudel, M., Schwarte, J. V., and Fromm, K. M., New Antimicrobial Strategies Based on Metal Complexes, Chemistry (Easton)., 2 (4), 849–899. (2020) [Google Scholar]
Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.
Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.
Initial download of the metrics may take a while.