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The films were deposited at 500 °C on stainless steel substrates using a single molecular titanium isopropoxide liquid solution as the precursor, without any reactant gas.
We present here a novel approach to achieve the selective formation of different in-plane boron nitrogen carbon heterostructures on Pt(111) using a single molecular precursor, namely dimethylamine borane (DMAB).
Growth of titanium dioxide (TiO2) thin films on Si(100) substrates was carried out using a single molecular precursor at deposition temperature in the range of 300 700°C by the metal organic chemical vapor deposition (MOCVD) method.
Thin films of titanium dioxie (TiO2) were deposited on glass using a single molecular precursor such as titanium (IV) iso-propoxide (Ti[OCH(CH3 2] 4, 97%) by sol-gel processing.
The deposition has been carried out in oxidizing conditions at atmospheric or sub-atmospheric pressure (103 Pa) using a single molecular source: magnesium [bis(2,2,6,6-tetramethyl-3,5-heptanedionate)] (Mg(thd 2).
To comparative study on the growth behavior and structural properties of thin films, in this work, we have deposited the titanium oxide (TiO2) thin films on both Si(1 0 0) and Si(1 1 1) substrates using a single molecular precursor by metal-organic chemical vapor deposition method at temperature in the range of 600 750 °C and working pressure of 1.0×10−5 Torr.
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Of the two former suggested possibilities, we favor the idea of peptide sequestration by the designed β-solenoids as it uses a single molecular description to provide an explanation for our solution biophysical and cell culture results.
Here, we used a single-molecular ZnS precursor, diethyldithiocarbamate, for shell formation (Figure 3a).
In the future, when anti-NY-BR-1 antibodies will be available, its expression on the primary tumour cells could be determined by IHC and when expressed, it can be used as a single molecular marker in the NY-BR-1-positive tumours.
A simple ethanol concentration process composed of a simple adsorptive apparatus using a single adsorbent, i.e., molecular-sieving carbon (MSC), is proposed for small-scale bioethanol production.
The RAG-1 data were simulated using a single input tree and model of molecular evolution (see below).
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