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Merck

248576

Titanium dioxide, anatase

powder, −325 mesh, ≥99% trace metals basis

Sinónimos:

Titania, Titanium(IV) oxide, anatase, Titanium dioxide

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Fórmula lineal:
TiO2
Número CAS:
Peso molecular:
79.87
NACRES:
NA.23
PubChem Substance ID:
UNSPSC Code:
12352303
EC Number:
215-280-1
MDL number:
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Nombre del producto

Titanium(IV) oxide, anatase, powder, −325 mesh, ≥99% trace metals basis

description

contains ∼5% rutile

Quality Level

assay

≥99% trace metals basis

form

powder

reaction suitability

core: titanium

particle size

−325 mesh

average diameter

45 μm

mp

1825 °C (lit.)

density

3.9 g/mL at 25 °C (lit.)

SMILES string

O=[Ti]=O

InChI

1S/2O.Ti

InChI key

GWEVSGVZZGPLCZ-UHFFFAOYSA-N

General description

Anatase titanium(IV) oxide, also known as titanium dioxide or titania, is a white crystalline powder that is widely used in a variety of applications. Anatase is one of the three naturally occurring crystalline phases of titanium dioxide, the other two being rutile and brookite. Among these three phases, anatase is the most reactive and tends to have the highest surface area, which makes it useful in applications where high reactivity and surface area are desirable.

Application

Phase-pure anatase is employed in the solid state synthesis of the mixed oxide NaTiO2 which has been considered as a possible antiferromagnetic material.


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Clase de almacenamiento

13 - Non Combustible Solids

wgk

nwg

flash_point_f

Not applicable

flash_point_c

Not applicable

ppe

dust mask type N95 (US), Eyeshields, Gloves



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Clarke, S.J. et al.
Chemistry of Materials, 10, 372-372 (1998)
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Biomedical optics express, 10(11), 5921-5939 (2019-12-05)
Imaging parameters of photoacoustic breast imaging systems such as the spatial resolution and imaging depth are often characterized with phantoms. These objects usually contain simple structures in homogeneous media such as absorbing wires or spherical objects in scattering gels. While
Gordon T Kennedy et al.
Journal of biomedical optics, 22(7), 76013-76013 (2017-07-21)
Tissue simulating phantoms can provide a valuable platform for quantitative evaluation of the performance of diffuse optical devices. While solid phantoms have been developed for applications related to characterizing exogenous fluorescence and intrinsic chromophores such as hemoglobin and melanin, we