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The PEA/PMMA MMT nanocomposites could be processed at low temperatures.
Planar PSC can be processed at low temperature, due to the absence of high temperature processed TiO2, has been able to achieve high power conversion efficiency close to mesoporous PSC [19, 20].
With the development of new manufacturing processes, such as low-pressure compression moulding of sheet moulding compound (SMC), resin transfer moulding (RTM) and vacuum infusion liquid composite moulding (e.g. SCRIMP) processes, low-shrinkage moulding compounds which can be processed at low temperatures have attracted considerable interest from the composite industry.
Organic nanomaterials, conversely, are inherently soft and can be processed at low cost, which might greatly help in realizing flexible light sources.
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Finally, the surfaces were processed at low load and scanning density to remove the natural oxide layer.
Tissues were processed at low temperatures and were embedded in LR White resin (Sigma-Aldrich) at −20°C for 48 h under ultraviolet light.
In contrast to traditional metal-forming processes that require processing at elevated temperatures to form surface patterns and manipulate microstructures, Pt-BMGs are processed at low temperatures (below 300 °C) in air, similar to thermoplastics.
Hybrid halide perovskites such as methylammonium lead iodide (CH3NH3PbI3) exhibit unusually low free-carrier concentrations despite being processed at low-temperatures from solution.
Furthermore, to improve the energy efficiency, the ZnO solution must be processed without the presence of indium compounds and carbon and must be processed at a low temperature.
PPE can be dissolved at elevated temperatures in very low molecular weight thermoplastic poly urethane) (TPU) fragments obtained via depolymerisation and these solutions can then be processed at the relatively low temperature of 250 °C.
PPE can be dissolved at elevated temperatures in epoxy resin and these solutions can then be processed at temperatures as low as 175°C.
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