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Surface modification processes were performed below and above 500 °C.
The surface modification processes were optimized for the high aspect ratio silicon structures of the UEA.
The electrode modification processes were characterized by scanning electron microscopy (SEM) and electrochemical methods.
These modification processes were characterized by contact angle measurement, cyclic voltammetry and electrochemical impedance spectra.
The modification processes were characterized by cyclic voltammetry, scanning electron microscopy.
Both modification processes were also able to improve surface free energy and surface smoothing.
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Surface modification is a conventional approach in biomaterials development, but most of the modification processes are intricate and time inefficient.
Optimization of the plasma surface modification processes was achieved by varying parameters, such as radio frequency (RF) power, operating vacuum pressure, processing time, and flow rate of the chamber for the mixture of argon and oxygen gases.
In addition, protein modification processes are enriched in Module_5 (2 terms) and Module_9 (3 terms).
The present study also showed that while most CM-domains involved in basic histone modification processes are conserved across 5 model eukaryotes, the number of genes/proteins containing each type of domain tends to increase with the complexity of the organism, in line with the increased spatial and temporal constraints of gene regulation in these organisms.
After 11 h of phosphite treatment a much more pronounced effect on several cell wall modification processes was observed.
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