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About This Item
Empirical Formula (Hill Notation):
Ti
CAS Number:
Molecular Weight:
47.87
NACRES:
NA.23
PubChem Substance ID:
UNSPSC Code:
12141746
EC Number:
231-142-3
MDL number:
InChI key
RTAQQCXQSZGOHL-UHFFFAOYSA-N
InChI
1S/Ti
SMILES string
[Ti]
assay
99.99% trace metals basis
form
wire
autoignition temp.
860 °F
resistivity
42.0 μΩ-cm, 20°C
diam.
0.5 mm
bp
3287 °C (lit.)
mp
1660 °C (lit.)
density
4.5 g/mL at 25 °C (lit.)
Quality Level
Application
- Application and features of titanium for the aerospace industry: This article discusses the use of titanium in aerospace applications, highlighting its high strength-to-weight ratio and corrosion resistance, which are also critical in biomedical applications (Inagaki et al., 2014).
- Opportunities and issues in the application of titanium alloys for aerospace components: This paper explores the engineering applications of titanium alloys, focusing on their performance in high-stress environments, which can translate to material science innovations (Williams & Boyer, 2020).
- Titanium and titanium alloy applications in medicine: Discusses the applications of titanium in the medical field, particularly in implants due to its biocompatibility and strength, relevant to drug discovery and medical device fabrication (Jackson et al., 2016).
- Titanium in biomedical applications—properties and fabrication: This review covers the properties of titanium that make it suitable for biomedical applications, including its use in prosthetics and implants, which is crucial for both material science and medical research (Jackson et al., 2016).
- Titanium: An overview of resources and production methods: Provides a comprehensive overview of titanium sourcing and production techniques, essential for understanding material properties and applications in various industries (El Khalloufi et al., 2021).
Preparation Note
300 cm (approximately 2.7 g)
Storage Class
11 - Combustible Solids
wgk
nwg
flash_point_f
Not applicable
flash_point_c
Not applicable
ppe
Eyeshields, Gloves, type N95 (US)
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A Kurbad et al.
International journal of computerized dentistry, 16(2), 125-141 (2013-08-13)
This article presents two novel options for lithium-disilicate restorations supported by single-tooth implants. By using a Ti-Base connector, hybrid abutments and hybrid abutment crowns can be fabricated for different implant systems. The latter option in particular is an interesting new
Jinho Shin et al.
Journal of nanoscience and nanotechnology, 13(8), 5807-5810 (2013-07-26)
In this study, hydroxyapatite (HA) was coated on anodized titanium (Ti) surfaces through radio frequency magnetron sputtering in order to improve biological response of the titanium surface. All the samples were blasted with resorbable blasting media (RBM). RBM-blasted Ti surface
D M Rivera-Chacon et al.
Journal of biomedical nanotechnology, 9(6), 1092-1097 (2013-07-19)
Improvements in osteoconduction of implant biomaterials require focusing on the bone-implant interface, which is a complex multifactorial system. Surface topography of implants plays a crucial role at this interface. Nanostructured surfaces have been shown to promote serum protein adsorption and
Mphilisi M Mahlambi et al.
Journal of nanoscience and nanotechnology, 13(7), 4934-4942 (2013-08-02)
Metal-doped anatase nanosized titania photocatalysts were successfully synthesized using a sol-gel process. Different amounts of the dopants (0.2, 0.4, 0.6, 0.8 and 1.0%) of the metals (Ag, Ni, Co and Pd) were utilized. The UV-Vis spectra (solid state diffuse reflectance
Lu-Ning Wang et al.
Journal of nanoscience and nanotechnology, 13(8), 5316-5326 (2013-07-26)
Electrochemically anodized TiO2 nanotubular arrays can provide large surface areas for biological species attachment. In order to further enhance the biocompatibility of Ti medical implants, we deposited a pre-synthesized hydroxyapatite inside and on the nanotubular arrays, and examined the biocompatibility
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