Isotropic and anisotropic strain-induced self-assembled oxide nanostructures
ORAL
Abstract
The apparition of new functionalities based on size- and shape-dependent properties requires strategies for the formation of well-defined structures at nanometric scale. We present a bottom-up low-cost chemically-derived methodology based on the control of strain and surface energies anisotropies in CeO2/LAO system to tune the lateral aspect ratio, orientation and kinetics of interfacial oxide nanostructures. Self-organized uniform square-based nanopyramids form under isotropic strain [1]. In contrast, highly elongated nanostructures (long/short axis $\sim $20) grow induced by biaxial anisotropic strain and anisotropic surface energies. Island's distinct crystallographic orientation is the clue of their differentiated shape, and also influences their distinct evolution. The kinetically-limited coarsening of isotropic nanodots contrasts with the ultrafast kinetics of anisotropic islands. Experimental analyses are based on AFM, TEM, XRD and RHEED, and simulations based on a thermodynamic model enables us to confirm the equilibrium shape of each sort of island's shape in relation to its misfit strain and surface characteristics. [1] Gibert, M. et al., \textit{Adv.Materials} \textbf{19} (22), 3937 (2007).
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Authors
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Marta Gibert
Institut de Ci\`encia de Materials de Barcelona, ICMAB-CSIC, 08193 Bellaterra, Catalunya, Spain
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Patricia Abellan
Institut de Ci\`encia de Materials de Barcelona, ICMAB-CSIC, 08193 Bellaterra, Catalunya, Spain
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Alessandro Benedetti
Institut de Ci\`encia de Materials de Barcelona, ICMAB-CSIC, 08193 Bellaterra, Catalunya, Spain
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Felip Sandiumenge
Institut de Ci\`encia de Materials de Barcelona, ICMAB-CSIC, 08193 Bellaterra, Catalunya, Spain
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Teresa Puig
Institut de Ci\`encia de Materials de Barcelona, ICMAB-CSIC, 08193 Bellaterra, Catalunya, Spain
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Xavier Obradors
Institut de Ci\`encia de Materials de Barcelona, ICMAB-CSIC, 08193 Bellaterra, Catalunya, Spain