Author(s):
Rangel, C. M. ; Livramento, Vanessa ; Correia, J.B. ; Shohoji, Nobumitsu
Date: 2009
Persistent ID: http://hdl.handle.net/10400.9/903
Origin: Repositório do LNEG
Subject(s): Mechanical alloying; Hydrogen storage; Nanostuctured intermetallics; FeTi; Sodium borohydride; Mechanical alloying; Mechanical alloying; Hydrogen storage; Hydrogen storage; Nanostuctured intermetallics; Nanostuctured intermetallics; FeTi; FeTi; Sodium borohydride; Sodium borohydride
Description
In the present work, nanostructured FeTi powders were produced by mechanical alloying, avoiding the unfavorable agglomeration problem by using a low energy milling (e.g. 300 rpm) of pure metallic constituents, Fe and Ti, followed by subsequent heat treatment at 800ºC. A major achievement of this research was to show that by modulating the milling intensity and total milling time, the high temperature synthesis reaction of FeTi (1100ºC) can be partially or totally suppressed, reverting instead to a metastable reaction path at low temperature (650ºC). The mechanical “activation” modifies the reactivity of the system, producing a very thin Ti /Fe layers. That in conjunction with a high level of defects induced mechanically may be responsible for the metastability.