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We present the design of an integrated planar SQUID device in view of macroscopic quantum coherence (MQC) experiments.
This paper is a discussion about the impact of fin height (HFin) and fin width (WFin) of a GaAs-FinFET, which affect the reliability of the device in view of various performance measures.
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Some recommendations are made regarding ways of modifying existing prevention and warning devices in view of promoting safer choices among the available options.
The understanding of the behaviour of a-CNx materials presents a great challenge for their integration in new microfluidic transistor type devices in view of the elaboration of polarizable interface flow-field effect transistors (PI-FFETs).
The nanoparticles attracted considerable attention as potential drug delivery devices in view of their applications as sustained release of drugs, their ability to target particular organs/tissues, which helps in sustained oral drug delivery beneficial for the patients [8],[9].
The great advantage of these energy storage devices in view of their theoretical specific capacity (2500 Wh kg−1, 2800 Wh L−1, assuming complete reaction to Li2S) has been the motivation for a huge amount of works.
The CERN RD50 collaboration as well as the Italian INFN SMART project (fifth commission) are focused on the study of new radiation hard materials and devices in view of this upgrade.
Semiconductor nanowires (NWs) with a changing composition in the axial or radial direction such as axial InAs/InP/InAs/InP/InAs NW resonant tunneling diodes (RTDs)[1] and InGaAs/InP/InAlAs/InGaAs core-shell NW field effect transistors (FETs)[2] are attractive for the fabrication of emerging devices in view of the ongoing downscaling of Si integrated circuits (ICs).
Consequently, InAs/InP/InAs/InP/InAs core-shell NW RTDs can be grown in a similar fashion not only for the fabrication of novel nanoscale devices in view of the ongoing downscaling of ICs but also for energy conversion applications despite the fact that they require extra processing compared to their axial counterparts.
Broadening the data basis from both transmission and decontamination studies could greatly help to answer the question of how to reprocess medical devices in view of transmissible protein seeding.
Polyurethanes have for many years been used in traditional outlets like structural elastomers, foamed materials for automotive and construction industries, numerous types of protective coats, etc. Attention has been captured recently by the applicability of those materials in implantable devices in view of their excellent mechanical and biocompatible properties.
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