calcium atom
Recently Published Documents


TOTAL DOCUMENTS

48
(FIVE YEARS 1)

H-INDEX

11
(FIVE YEARS 0)

Nanomaterials ◽  
2021 ◽  
Vol 11 (11) ◽  
pp. 3099
Author(s):  
Dmitry Goloshchapov ◽  
Nikita Buylov ◽  
Anna Emelyanova ◽  
Ivan Ippolitov ◽  
Yuri Ippolitov ◽  
...  

In this work, for the first time, the influence of the coordination environment as well as Ca and P atomic states on biomimetic composites integrated with dental tissue was investigated. Bioinspired dental composites were synthesised based on nanocrystalline calcium carbonate-substituted hydroxyapatite Ca4ICa6IIPO46−xCO3x+yOH2−y (nano-cHAp) obtained from a biogenic source and a set of polar amino acids that modelled the organic matrix. Biomimetic composites, as well as natural dental tissue samples, were investigated using Raman spectromicroscopy and synchrotron X-ray absorption near edge structure (XANES) spectroscopy. Molecular structure and energy structure studies revealed several important features related to the different calcium atomic environments. It was shown that biomimetic composites created in order to reproduce the physicochemical properties of dental tissue provide good imitation of molecular and electron energetic properties, including the carbonate anion CO32− and the atomic Ca/P ratio in nanocrystals. The features of the molecular structure of biomimetic composites are inherited from the nano-cHAp (to a greater extent) and the amino acid cocktail used for their creation, and are caused by the ratio between the mineral and organic components, which is similar to the composition of natural enamel and dentine. In this case, violation of the nano-cHAp stoichiometry, which is the mineral basis of the natural and bioinspired composites, as well as the inclusion of different molecular groups in the nano-cHAp lattice, do not affect the coordination environment of phosphorus atoms. The differences observed in the molecular and electron energetic structures of the natural enamel and dentine and the imitation of their properties by biomimetic materials are caused by rearrangement in the local environment of the calcium atoms in the HAp crystal lattice. The surface of the nano-cHAp crystals in the natural enamel and dentine involved in the formation of bonds with the organic matrix is characterised by the coordination environment of the calcium atom, corresponding to its location in the CaI position—that is, bound through common oxygen atoms with PO4 tetrahedrons. At the same time, on the surface of nano-cHAp crystals in bioinspired dental materials, the calcium atom is characteristically located in the CaII position, bound to the hydroxyl OH group. The features detected in the atomic and molecular coordination environment in nano-cHAp play a fundamental role in recreating a biomimetic dental composite of the natural organomineral interaction in mineralised tissue and will help to find an optimal way to integrate the dental biocomposite with natural tissue.





Author(s):  
Nataliya Plyuta ◽  
Olga Yu. Vassilyeva ◽  
Vladimir N. Kokozay ◽  
Iryna Omelchenko ◽  
Svitlana Petrusenko

The new heterometallic complex, aqua-1κO-bis(μ2-2-iminomethyl-6-methoxyphenolato-1κ2 O 1,O 6:2κ2 O 1,N)bis(thiocyanato-1κN)calcium(II)copper(II), [CaCu(C8H8NO2)2(NCS)2(H2O)], has been synthesized using a one-pot reaction of copper powder, calcium oxide, o-vanillin and ammonium thiocyanate in methanol under ambient conditions. The Schiff base ligand (C8H9NO2) is generated in situ from the condensation of o-vanillin and ammonia, which is released from the initial NH4SCN. The title compound consists of a discrete binuclear molecule with a {Cu(μ-O)2Ca} core, in which the Cu...Ca distance is 3.4275 (6) Å. The coordination geometries of the four-coordinate copper atom in the [CuN2O2] chromophore and the seven-coordinate calcium atom in the [CaO5N2] chromophore can be described as distorted square planar and pentagonal bipyramidal, respectively. In the crystal, O—H...S hydrogen bonds between the coordinating water molecules and thiocyanate groups form a supramolecular chain with a zigzag-shaped calcium skeleton.



2020 ◽  
Vol 22 (42) ◽  
pp. 24249-24256
Author(s):  
Yabei Wu ◽  
Yuhang Jiang ◽  
Jianjun Deng ◽  
Zhiyong Wang

Encapsulation of a calcium atom inside C60 fullerene efficiently activates the less reactive [5,6] bond over the [6,6] bond toward Diels–Alder reaction with cyclopentadiene.



Author(s):  
G. Raggi ◽  
E. Besley ◽  
A. J. Stace

Density functional theory has been applied in a study of charge transfer between an endohedral calcium atom and the fullerene cage in Ca@C 60 H 4 and [Ca@C 60 H 4 ] + isomers. Previous calculations on Ca@C 60 have shown that the motion of calcium within a fullerene is accompanied by large changes in electron density on the carbon cage. Based on this observation, it has been proposed that a tethered endohedral fullerene might form the bases of a nanoswitch. Through the addition of hydrogen atoms to one hemisphere of the cage it is shown that, when compared with Ca @C 60 , asymmetric and significantly reduced energy barriers can be generated with respect to motion of the calcium atom. It is proposed that hydrogen atom addition to a fullerene might offer a route for creating a bi-stable nanoswitch that can be fine-tuned through the selection of an appropriate isomer and number of atoms attached to the cage of an endohedral fullerene. This article is part of the themed issue ‘Fullerenes: past, present and future, celebrating the 30th anniversary of Buckminster Fullerene’.



2015 ◽  
Vol 54 (9) ◽  
pp. 095001
Author(s):  
Hamidreza Vanaie ◽  
Mojtaba Yaghobi ◽  
Adel Asvar ◽  
Ebrahim Heidari ◽  
Zahra Sedaghat
Keyword(s):  


2011 ◽  
Vol 84 (2) ◽  
Author(s):  
Tomoya Akatsuka ◽  
Yoshihiro Mori ◽  
Nobuhiko Sone ◽  
Yurie Ohtake ◽  
Mamoru Machiya ◽  
...  




Sign in / Sign up

Export Citation Format

Share Document