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Artykuły w czasopismach na temat "Molecular Formula of Magnesium Gluconate"

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Anagnos, Dimitrius, Mahendra Kumar Trivedi, Gopal Nayak, Alice Branton, and Dahryn Trivedi. "Evaluation of Structural Properties and Isotopic Abundance Ratio of Biofield Energy Treated (The Trivedi Effect®) Magnesium Gluconate Using LC-MS and NMR." European Journal of Biophysics 5, no. 1 (2017): 7–16. https://doi.org/10.5281/zenodo.822638.

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The current research work was designed to explore the impact of The Trivedi Effect® - Energy of Consciousness Healing Treatment (Biofield Energy Healing Treatment) on magnesium gluconate for the change in the structural properties and isotopic abundance ratio (PM+1/PM and PM+2/PM) by using LC-MS and NMR spectroscopy. Magnesium gluconate was divided into two parts – one part was control, and another part was treated with The Trivedi Effect®- Biofield Energy Healing Treatment remotely by seven renowned Biofield Energy Healers and defined as The Trivedi Effect® Treated sample. The LC-MS analysis
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Mishelevich, Alexander, and Alexander Apelblat. "Solubilities of magnesium-l-ascorbate, calcium-l-ascorbate, magnesium-l-glutamate, magnesium-d-gluconate, calcium-d-gluconate, calcium-d-heptagluconate, l-aspartic acid, and 3-nitrobenzoic acid in water." Journal of Chemical Thermodynamics 40, no. 5 (2008): 897–900. http://dx.doi.org/10.1016/j.jct.2007.12.006.

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GROH, SEBASTIEN, ESTEBAN B. MARIN, and M. F. HORSTEMEYER. "NANOSCALE VOID GROWTH IN MAGNESIUM: A MOLECULAR DYNAMICS STUDY." International Journal of Applied Mechanics 02, no. 01 (2010): 191–205. http://dx.doi.org/10.1142/s1758825110000421.

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Molecular dynamics calculations were carried out in single crystal magnesium specimens to reveal the dependence of strain rate, temperature, and orientation of the crystal on damage evolution as defined by pore growth. Two specific crystallographic orientations [0001] and [Formula: see text] were examined. During a [0001] tensile test, twin boundaries developed at the void surface leading to a constraint on the [Formula: see text] crystallographic orientation. On the other hand, during the [Formula: see text] tensile deformation, emission of shear loops in the prismatic slip planes arose when
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Trivedi, Mahendra Kumar, Parthasarathi Panda, Kalyan Kumar Sethi, and Snehasis Jana. "Liquid Chromatography Tandem Mass Spectrometry and Nuclear Magnetic Resonance Spectroscopy of Magnesium (II) Gluconate Solution." Journal of Solution Chemistry 46, no. 4 (2017): 896–907. http://dx.doi.org/10.1007/s10953-017-0613-z.

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Rabbani, Mohammed, Valiollah Hajhashemi, and Ali Vadizadeh. "Co-administration of calcium gluconate and magnesium acetate effectively blocks the signs of morphine withdrawal in mice." Magnesium Research 25, no. 1 (2012): 40–48. http://dx.doi.org/10.1684/mrh.2012.0303.

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FEENSTRA, R. M., HUAJIE CHEN, V. RAMACHANDRAN, et al. "SURFACE MORPHOLOGY OF GaN SURFACES DURING MOLECULAR BEAM EPITAXY." Surface Review and Letters 07, no. 05n06 (2000): 601–6. http://dx.doi.org/10.1142/s0218625x00000804.

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The reconstruction and surface morphology of gallium nitride (0001) and [Formula: see text] surfaces are studied using scanning probe microscopy and reflection high energy electron diffraction. Results for bare GaN surfaces are summarized, and changes in the surface structure and morphology due to codeposition of indium or magnesium during growth are discussed.
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Zhabanov, Yuriy A., Natalya V. Tverdova, Nina I. Giricheva, Georgiy V. Girichev, and Pavel A. Stuzhin. "DFT Study of molecular and electronic structure of magnesium (II) tetra(1,2,5-chalcogenadiazolo) porphyrazines, [TXDPzMg] (X = O, S, Se, Te)." Journal of Porphyrins and Phthalocyanines 21, no. 04-06 (2017): 439–52. http://dx.doi.org/10.1142/s1088424617500444.

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The influence of the chalcogen atom (X) on the molecular and electronic structures for the series of Mg[Formula: see text] tetra(1,2,5-chalcogenadiazolo)porphyrazines [TXDPzMg] (X [Formula: see text] O, S, Se, Te) and their monoaqua complexes [TXDPzMg(OH[Formula: see text]] was studied using DFT methods (B3LYP and PBE0 functionals) with cc-pVTZ basis sets. The chalcogen atom X changes strongly the geometry of the fused 1,2,5-chalcogenadiazole rings, but has only a weak influence on the dimensions of the coordination cavity of the porphyrazine macrocycle in [TXDPzMg] leading to its slight expan
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Ivashchenko, L. I., S. V. Kozin, L. V. Vasil’eva, et al. "Crystal Structure of Magnesium Comenate." Координационная химия 49, no. 7 (2023): 431–40. http://dx.doi.org/10.31857/s0132344x22600412.

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The coordination compound [Mg(HCom)2(H2O)6]·2H2O (I) was obtained by the reaction of comenic acid (H2Com) with magnesium acetate in water. The formation of a new phase was confirmed by powder X-ray diffraction. The molecular formula of the compound was determined from energy dispersive X-ray fluorescence and thermogravimetry data. The thermo-oxidative stability of magnesium comenate was studied by simultaneous thermal analysis in air. The molecular structure of the complex was discussed on the basis of spectral data (NMR, IR, and UV spectroscopy) and studied in detail using X-ray diffraction (
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Panteleev, S. V., S. N. Belyaev, and S. K. Ignatov. "Effect of magnesium cluster size on Grignard reagent formation mechanism. A quantum-chemical study." Journal of Theoretical and Computational Chemistry 17, no. 07 (2018): 1850044. http://dx.doi.org/10.1142/s021963361850044x.

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The density functional theory (B3PW91/6-311[Formula: see text]G(2d,2p)) was used to obtain optimized geometry, energy and electronic properties of Mg[Formula: see text]EtBr adsorption complexes, Et[Formula: see text]Mg[Formula: see text]Br intermediates and transition states for ethyl bromide reaction with the magnesium atom and Mgn ([Formula: see text]–20) clusters modeling the distorted surface of the metallic magnesium. We suggest a consecutive multi-stage scheme of EtBr[Formula: see text]Mgn process in vacuum that includes adsorption of reagents on external cluster atoms, chemical interact
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Peng, Yucong, Pingyou He, Linfeng Fan, et al. "Neuroprotective Effects of Magnesium Lithospermate B against Subarachnoid Hemorrhage in Rats." American Journal of Chinese Medicine 46, no. 06 (2018): 1225–41. http://dx.doi.org/10.1142/s0192415x18500647.

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Subarachnoid hemorrhage (SAH) is a severe cerebrovascular disease with few effective pharmacotherapies available. Salvia miltiorrhiza, a traditional Chinese medicinal herb, has been widely used to treat cardiovascular diseases for centuries. Recent studies have demonstrated that magnesium lithospermate B (MLB), a bioactive ingredient extracted from Salvia miltiorrhiza, exerts neuroprotective effects in several central nervous system insults. However, little is known about the role of MLB in SAH-induced brain injury and the exact molecular mechanism. In the current study, we studied the neuropr
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