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1.
Nano Lett ; 23(8): 3282-3290, 2023 Apr 26.
Artigo em Inglês | MEDLINE | ID: mdl-37057989

RESUMO

Nanostructured metals are a promising class of radiation-tolerant materials. A large volume fraction of grain boundaries (GBs) can provide plenty of sinks for radiation damage, and understanding the underlying healing mechanisms is key to developing more effective radiation tolerant materials. Here, we observe radiation damage absorption by stress-assisted GB migration in ultrafine-grained Au thin films using a quantitative in situ transmission electron microscopy nanomechanical testing technique. We show that the GB migration rate is significantly higher in the unirradiated specimens. This behavior is attributed to the presence of smaller grains in the unirradiated specimens that are nearly absent in the irradiated specimens. Our experimental results also suggest that the GB mobility is decreased as a result of irradiation. This work implies that the deleterious effects of irradiation can be reduced by an evolving network of migrating GBs under stress.

2.
Nanoscale ; 13(19): 9040, 2021 May 20.
Artigo em Inglês | MEDLINE | ID: mdl-33978655

RESUMO

Correction for 'In situ TEM measurement of activation volume in ultrafine grained gold' by Saurabh Gupta et al., Nanoscale, 2020, 12, 7146-7158, DOI: 10.1039/D0NR01874K.

3.
Nanoscale ; 12(13): 7146-7158, 2020 Apr 03.
Artigo em Inglês | MEDLINE | ID: mdl-32193521

RESUMO

A micro-electromechanical system (MEMS) based technique is demonstrated for in situ transmission electron microscopy (TEM) measurements of stress relaxation with simultaneous observation of the underlying plastic deformation processes. True activation volumes are determined from repeated stress relaxation transients and thus provide a signature parameter of the governing mechanisms of plastic deformation. The technique is demonstrated with 100 nm-thick ultrafine-grained gold microspecimens under uniaxial tension. True activation volumes of approximately 3-5b3 (where b is the Burgers vector length) are obtained for tensile stresses ranging from 200-450 MPa. Grain boundary-dislocation interactions are observed via in situ TEM during stress relaxation measurements. The miniaturization of stress relaxation tests inside the TEM provides unique opportunities to characterize the plastic kinetics and underlying mechanisms in ultrafine-grained and nanocrystalline materials.

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