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Thin films and devices can be studied with grazing-incidence small and wide angle scattering.
Using in vitro models, the mechanics as well as surgical techniques for mitral valves (MV) and MV devices can be studied in a more controlled environment with minimal monetary investment and risk.
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In particular, the temporal stability of the susceptibility, a crucial parameter in the development of a device, can be studied, and pertinent conclusions have been drawn from HRS on bulk samples.
The performance of preferred device infrastructure can be studied by estimating stress-induced mobility gain.
Finally, the potential of simultaneous transmission and reception to provide fast discovery on the context of device-to-device (D2D) communication can be studied.
Alternative designs can be compared and the mechanisms affecting device efficiency in class-F can be studied at chip-level.
By means of CFD the two-phase flow in the devices can be visualized and studied.
The flexible, implantable devices can be used for studying the chemical and electrical information exchange and communication of cells in in vivo and in vitro experiments.
Nanowire devices can be used to study and modify cells and living systems by taking advantage of their unique electrical properties.
In this sense, the proposed devices can be used to study " string theory on a chip".
Nevertheless, other types of compression devices can be used to study the effect of mechanical loading of chondrocytes embedded in agarose gels.
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CEO of Professional Science Editing for Scientists @ prosciediting.com