Interstitial Segregation has the Potential to Mitigate Liquid Metal Embrittlement in Iron

Author:

Ahmadian Ali1ORCID,Scheiber Daniel2,Zhou Xuyang1,Gault Baptiste13,Romaner Lorenz24,Kamachali Reza D.5,Ecker Werner2,Dehm Gerhard1,Liebscher Christian H.1ORCID

Affiliation:

1. Max‐Planck‐Institut fuer Eisenforschung GmbH 40237 Düsseldorf Germany

2. Materials Center Leoben GmbH Leoben 8700 Austria

3. Department of Materials, Royal School of Mines Imperial College London London UK

4. Montanuniversität Leoben Leoben 8700 Austria

5. Federal Institute for Materials Research and Testing (BAM) Unter den Eichen 87 12205 Berlin Germany

Abstract

AbstractThe embrittlement of metallic alloys by liquid metals leads to catastrophic material failure and severely impacts their structural integrity. The weakening of grain boundaries (GBs) by the ingress of liquid metal and preceding segregation in the solid are thought to promote early fracture. However, the potential of balancing between the segregation of cohesion‐enhancing interstitial solutes and embrittling elements inducing GB de‐cohesion is not understood. Here, the mechanisms of how boron segregation mitigates the detrimental effects of the prime embrittler, zinc, in a Σ5 [001] tilt GB in α‐Fe (4 at.% Al) is unveiled. Zinc forms nanoscale segregation patterns inducing structurally and compositionally complex GB states. Ab initio simulations reveal that boron hinders zinc segregation and compensates for the zinc‐induced loss in GB cohesion. The work sheds new light on how interstitial solutes intimately modify GBs, thereby opening pathways to use them as dopants for preventing disastrous material failure.

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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