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However, up to now, multiferroic materials for room temperature applications are very few [10].
V VI compounds have been widely investigated as promising thermoelectric materials for room temperature refrigeration.
These composites have been applied as catalytic materials for room temperature oxidation of aldehyde pollutants (formaldehyde in water or acetaldehyde in ethanol) by dissolved oxygen.
Organic materials, especially the carbonyl compounds, are promising anode materials for room temperature sodium-ion batteries owing to their high reversible capacity, structural diversity as well as eco-friendly synthesis from bio-mass.
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Na-deficient O3-type materials Na0.8Ni0.4−xCo2xTi0.6−xO2 (x = 0, 0.15, 0.1, and 0.15) were synthesized by a simple solid-state reaction and investigated as cathode materials for room-temperature sodium-ion batteries.
Recently a new class of magnetic refrigerant-materials for room-temperature applications was discovered.
These preliminary results indicate that NVP@Al is a prospective cathode material for room-temperature sodium-ion batteries.
Because of its sodium superionic conductor structure, Na3V2(PO4)3 has been recognized as a promising candidate cathode material for room-temperature sodium-ion batteries.
This does not rule out the material for room-temperature operation since cladding layers such as Al(Ga As/GaAs superlattices can be employed to increase luminescence efficiency of the structures.
Bismuth chalcogenides and, in particular, Bi2Te3 and its solid solutions, are known as the most efficient thermoelectric materials for near room temperature applications [5, 14].
When those compounds are hydrogenated to about 1.2 1.5 hydrogen atoms per formula unit, they have magnetic ordering temperatures near room temperature and, therefore, are useful as magnetic refrigeration materials for near-room-temperature applications.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com