NiTi alloys possess distinct functional properties (i.e., shape memory effect and superelasticity) and biocompatibility, making them appealing for bone fixation applications. Additive manufacturing offers an alternative method for fabricating NiTi parts, which are known to be very difficult to machine using conventional manufacturing methods. However, poor surface quality, and the presence of impurities and defects, are some of the major concerns associated with NiTi structures manufactured using additive manufacturing. The aim of this study is to assess the in vitro corrosion properties of additively manufactured NiTi structures. NiTi samples (bulk and porous) were produced using selective laser melting (SLM), and their electrochemical cor...
The complex surface morphology and large exposed surface area induce electrochemical instability on ...
Nitinol 13 NiTi (Nickel-titanium alloy) is used in orthopaedic and orthodontic applications due to ...
Porous titanium-nickel (PTN) intervertebral fusion devices, produced by self-propagating high-temper...
NiTi alloys possess distinct functional properties (i.e., shape memory effect and superelasticity) a...
In this work, NiTi alloy parts were fabricated using laser powder bed fusion (LBPF) from pre-alloyed...
Nickel Titanium alloys have shown to be an excellent choice for medical equipment such as catheters,...
NiTi alloys are well known not only due to their exceptional shape-memory ability to recover their p...
Nickel–titanium (NiTi) is a shape-memory alloy, a type of material whose name is derived from its ab...
A high-power laser was used to melt the surface of NiTi shape memory alloy. The rapid solidification...
For clinical implantation purposes of shape memory metals the nearly equiatomic nickel-titanium (NiT...
The surface of NiTi alloy was chemically modified using acidified ferric chloride solution and the c...
A new method was developed for producing highly porous NiTi for use as an implant material. The comb...
abstractEN: NiTi alloy is being increasingly used in medicine due to its unique properties, i.e. sha...
As a non-line-of-sight surface modification technique, chemical treatment is an effective method to ...
NiTi alloy in its equiatomic concentration is widely used in biomedical industry owing to its shape ...
The complex surface morphology and large exposed surface area induce electrochemical instability on ...
Nitinol 13 NiTi (Nickel-titanium alloy) is used in orthopaedic and orthodontic applications due to ...
Porous titanium-nickel (PTN) intervertebral fusion devices, produced by self-propagating high-temper...
NiTi alloys possess distinct functional properties (i.e., shape memory effect and superelasticity) a...
In this work, NiTi alloy parts were fabricated using laser powder bed fusion (LBPF) from pre-alloyed...
Nickel Titanium alloys have shown to be an excellent choice for medical equipment such as catheters,...
NiTi alloys are well known not only due to their exceptional shape-memory ability to recover their p...
Nickel–titanium (NiTi) is a shape-memory alloy, a type of material whose name is derived from its ab...
A high-power laser was used to melt the surface of NiTi shape memory alloy. The rapid solidification...
For clinical implantation purposes of shape memory metals the nearly equiatomic nickel-titanium (NiT...
The surface of NiTi alloy was chemically modified using acidified ferric chloride solution and the c...
A new method was developed for producing highly porous NiTi for use as an implant material. The comb...
abstractEN: NiTi alloy is being increasingly used in medicine due to its unique properties, i.e. sha...
As a non-line-of-sight surface modification technique, chemical treatment is an effective method to ...
NiTi alloy in its equiatomic concentration is widely used in biomedical industry owing to its shape ...
The complex surface morphology and large exposed surface area induce electrochemical instability on ...
Nitinol 13 NiTi (Nickel-titanium alloy) is used in orthopaedic and orthodontic applications due to ...
Porous titanium-nickel (PTN) intervertebral fusion devices, produced by self-propagating high-temper...