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The Re-N2 interface was the most stable interface.
Here we present a practical, stable interface for stimulation and recording of large-scale cortical circuits.
A stirred cell is used to obtain stable interface between the organic and aqueous phases.
A deficit in cumulative seismic slip can also be explained by aseismic slip on a stable or conditionally stable interface.
The MnO2/PCF/Ni electrodes demonstrate a high-quality and stable interface.
The most stable interface structure is confirmed according to interfacial binding energies.
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Nevertheless, it is still a great challenge to achieve thermodynamically stable interface-localization of the nanoparticles mainly due to their low interfacial stabilities as well as high transfer speeds between the blend phases, especially for those with high aspect ratios.
Aspects for the design of stable interfaces are discussed.
This material system was selected because it possesses very sharp and stable interfaces.
Nonetheless, we found stable interfaces and a surface reconstruction in agreement with experimental observations.
Nevertheless, strong orientation relationships exist in both cases suggesting well-formed, stable interfaces that should be conducive to charge carrier movement.
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