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Updated: Jul 8, 2026

Rapid Formation and Testing of Self-expanding NiTi Frames with a Small Form Factor Suitable for Minimally Invasive Implants
Published on: March 7, 2025
Nanoprecipitate characterisation in NiTi and aluminium alloys: A TEM-based overview
Seyed Aref Golsorkhi1,2, Opemipo Adetan1, Melodie Fickenscher2
1Department of Mechanical and Materials Engineering, University of Cincinnati, Cincinnati, Ohio, USA.
Abstract:
Nanoscale precipitates are central to the functional and mechanical performance of many advanced alloys, yet their characteristics and spatial distributions can be directly resolved only by electron microscopy. In this poster-style article, focused ion beam-prepared TEM lamellae are used to provide a microscopy-focused overview of nanoprecipitate populations in two representative precipitate-controlled systems: a Ni-rich NiTi shape memory alloy and a multicomponent Al-Ce-(Er,Sc,Zr) aluminium alloy. In the NiTi alloy, a short heat treatment at 560°C for 1 min produced a recovered, subgrained matrix containing lenticular Ni4Ti3 precipitates with nanoscale dimensions. Representative TEM observations show precipitates located within the matrix and near dislocation-rich regions and subgrain boundaries, suggesting a local spatial association with the deformation substructure. In the Al-Ce-(Er,Sc,Zr) alloy, TEM analysis of aged samples shows coarse Al11Ce3 intermetallic phases within an Al matrix containing fine nanoscale precipitates consistent with L12-Al3(Er,Sc,Zr) type precipitates. Selected-area electron diffraction (SAED) confirms the ordered L12 structure through superlattice reflections. Together, these case studies illustrate how FIB-TEM workflows enable direct visualisation of precipitate morphology, coherency, and spatial distribution across distinct alloy systems.

