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Interestingly, the Ti3Al had very low concentration of N, and it may inhibit N atom from diffusing inward as a diffusion barrier.
Dense diffusion barrier and coating hindered Cu from diffusing to the surface.
From this we infer that the greater viscosity and lower volatile diffusivity of the MSH magma inhibited water from diffusing into pre-existing larger bubbles, thus driving relatively greater nucleation of smaller bubbles that likely formed at a comparatively later stage.
We report here on initial studies to control the diffusion of the dye, zinc octabromylporpyhrin (ZnOBP), doped in poly(dimethylsiloxane) films, from diffusing into other layers in multiple stack systems.
This prevents the copper from diffusing into the silicon.
At the same time, the Si atoms were prevented from diffusing into the GeSi layer.
The positive stress indicates that the stress will prevent Ge atoms from diffusing into Si core.
The tight packing of the hydrogenases caused them to pair up into the catalytically active complex, and the closely packed coat proteins prevented oxygen from diffusing in.
For the Si nanotip region, the stress-induced interdiffusion self-limiting effect prevented the Ge atoms from diffusing into the Si nanotips.
These two silica layers prevent the Si excess from diffusing out the SRSO layer and restrict the diameter of produced SiNCs.
The RGO nanosheets tightly wrapped on carbon hosts act as barrier layers to prevent polysulfides from diffusing out of the matrix, further suppressing shuttle effect.
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