Polymorphism in nanocrystalline binary metal oxides

Полиморфизм в нанокристаллических бинарных оксидах металлов
S. Sood, Perena Gouma
2013-02-26

functional oxides (TiO2, MoO3, SnO2, ZrO2)nanocrystalline binary metal oxidesphase-dependent functionalitypolymorphismsynthesis-temperature-particle size effects
Structural changes occur due to polymorphic transitions in binary metal oxides, and these lead to materials with distinct physical and chemical properties. For the MoO 3 system, for example, its metastable hexagonal phase is more efficient than the stable orthorhombic phase with respect to battery storage capability; furthermore, the orthorhombic phase shows detection specificity to ammonia vapors, whereas the monoclinic phase of the same oxide is a good nitric oxide sensor. It has been observed that high temperature or else metastable or unstable polymorphs are present at room temperature when the oxide is in the form of nanocrystals. In this review, polymorphic forms of key functional binary metal oxides, such as CrO 2 , Cr 2 O 3 , Fe 2 O 3 , Al 2 O 3 , Bi 2 O 3 , TiO 2 , SnO 2 , ZrO 2 , MoO 3 and In 2 O 3 are discussed in terms of their observed polymorphism as a function of the synthesis techniques used and the conditions of temperature and particle size, as reported in the literature. The tabulation of literature data on these functional systems is believed to be significant for developing nanomaterial database and structural property maps, ultimately guiding the appropriate nanomaterial selection for specific engineering applications. Supplementary information will be available at http://www.icevirtuallibrary.com/upload/10.1680nme.12.00037_SupplementaryInformation.pdf
1
Different MoO3 polymorphs show selective sensing: orthorhombic detects ammonia vapors, monoclinic is an effective nitric oxide sensor.
2
For MoO3, the metastable hexagonal phase shows better battery storage capability than the stable orthorhombic phase.
3
Nanocrystalline forms can stabilize high-temperature, metastable, or unstable polymorphs at room temperature depending on synthesis, temperature, and particle size.
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Polymorphic transitions in binary metal oxides produce distinct physical and chemical properties relevant to applications.
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The review compiles literature data on polymorphism of key binary oxides (CrO2, Cr2O3, Fe2O3, Al2O3, Bi2O3, TiO2, SnO2, ZrO2, MoO3, In2O3) to support nanomaterial databases and structural-property mapping for material selection.

Polymorphic forms of nanocrystalline binary metal oxides (e.g., CrO2, Cr2O3, Fe2O3, Al2O3, Bi2O3, TiO2, SnO2, ZrO2, MoO3, In2O3)

Occurrence and control of polymorphism as a function of synthesis technique, temperature and particle size, and the resulting changes in structural, physical and chemical properties relevant to functional applications

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2013-02-26
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S. Sood
Perena Gouma
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