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Model substrates were systematically designed with variations of the chain length of the alcohol and the acid as well as with varying content of the aromatic constituent terephthalic acid (Ta).
Strain-dependent cracking behaviors in thin titanium (Ti) films on polydimethylsiloxane (PDMS) substrates were systematically investigated for their application to sensitive, flexible, transparent, and portable strain sensors.
Specifically, the optical property of the PC substrates were systematically characterized and tuned through the modulation of the depths of NHA.
The effects of the supporting reagents HMTA and KCl on the morphological, structural, and optical properties of ZnO structures grown on monolayer graphene substrates were systematically investigated.
The FEE properties of the MWCNTs grown on both pyramidally textured (with various AR values) and flat silicon (used as a reference sample having AR value of zero) substrates were systematically characterized in our FEE measurement setup, which is equipped with a high-precision translation stage that positions the MWCNT emitters at 100 ± 0.4 μm from the upper copper collecting electrode.
The substrates were systematically weighted with the balance before, during and after the drying process until stable mass.
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The high-temperature oxidation resistance of ternary Ta Si N films with a high (≥ 20 at.%) Si content deposited by reactive dc magnetron sputtering on silicon substrates was systematically investigated by means of a symmetrical high-resolution thermogravimetry in a flowing air up to an annealing temperature of 1300 °C.
The spectra were taken at different potentials and the film thicknesses as well as the roughness of the gold substrate were systematically varied.
Some parameters such as electrode material, nature of the electrolyte, reduction potential and concentration of the organic substrate were systematically studied.
Effects of different process parameters, including arc current, flow rates of primary Ar, secondary H2 and carrier Ar, powder feedrate, spray distance as well as presence of cooling air on the backside on the substrate were systematically screened by evaluating the content of Ti2AlC in the coating through X-ray diffraction and Rietveld phase analysis.
Space tribology properties of the prepared Ti3Al/Ag metal matrix coating and pure Ti substrate were systematically evaluated in a simulated space environment such as high vacuum (VC), atomic oxygen (AO) and ultraviolet (UV) irradiation in comparison with those in an air environment through the space tribological test system.
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