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Importantly, the in situ solid-state NMR technique [20] that we have developed for studying the time evolution of materials formation processes exploits the ability of NMR to selectively detect the solid phase in the types of heterogeneous solid/liquid system that exist during crystallization from solution, with the liquid phase "invisible" to the measurement.
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The advent of Free Electron Lasers (FELs), able to provide short (2 100 fs) and intense (1033 photons/s/mm2/mrad2/0.1%bandwidth) pulses of light also in the hard X-ray regime (ℏω> 2000 eV), opens new possibilities to study the ultrafast dynamics of processes, exploiting the capability of Hard X-ray Photoelectron Spectroscopy (HAXPES) to measure core-level spectra of elements with bulk sensitivity.
This process exploits the underlying structure of successful innovation to identify key information signals, which in turn can be harnessed to construct an advantaged innovation strategy.
The design process exploits the invariant manifolds associated with orbits in resonance with the Moon as transfer mechanisms.
The process exploits the fact that DNA likes to exist in the form of a double-stranded molecule, with the sequence of chemical letters in one strand exactly matching a counterpart sequence in the other.
The fatigue failure process exploits the weakest links (discontinuities) within the test material, which act as nucleation sites for crack origins.
The process exploits the so called "Lagrange Formulation" to develop a linear form of Equations of Motion w.r.t the system Inertia Parameters (IPs).
The process exploits the cooperative effect of electric field and charges occurring when electrospinning and electrospraying are carried out alternately on a micropatterned collector.
The process exploits the idea that it may be difficult to formulate a good query when you don't know the collection well, but it is easy to judge particular documents, and so it makes sense to engage in iterative query refinement of this sort.
Such an integrated harvesting, sensing, and communication (IHSC) process exploits the unique features of SHM systems, and it is fundamentally different from conventional sensing schemes.
The process exploits the greater ease of converting iron sulfides into its oxides, which in turn react with the silica to form the silicate slag, which floats on top of the heated mass.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com