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At current molten salts working temperatures, improving the absorptivity of a non-selective coating leads to higher thermal efficiency than when using a selective coating.
A plasma immersion ion implantation (PIII) process has been applied to CpTi samples in an optimized nitrogen/oxygen gas mixture at middle and high temperatures, improving considerably the properties of these.
Only local areas of the substrate were heated to high temperatures for the CNT growth by integrated microheaters, while most other areas remained at much lower temperatures, improving the process compatibility of the CNT growth with CMOS semiconductor technologies.
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But in more moderate scenarios, rising global temperatures improve agricultural productivity in northerly climes.
High temperatures improved the reaction kinetics of the glycerol reaction.
Increasing sintering temperatures improve the grain growth, densification, and electrical properties in effect.
In addition, operation at LAr or LXe temperatures improves the loop-gain by a factor ×2.
Thermal conductivity of this matrix indicated that higher crystallization temperatures improve the conductivity by removing impurities and increasing crystallite size.
The dynamic properties of the samples measured at low and high temperatures improved both good rolling as well as wet skid resistance.
After implementation in commercial reactors lower operating temperatures, improved selectivity and thus better plant yields were achieved.
Cyclic voltammetry showed that elevated temperatures improve the catalytic activity of Au@Pt/TCME toward HCOOH oxidation.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com