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Published on: September 19, 2020
Cocktail Effect at the B-Site of Hexagonal ABO3: Structural Evolution and High Entropy Low Loss Dielectrics
Jyoti Chahal1,2, Rakesh Shukla1,2, Nitin Kumar3
1Chemistry Division, Bhabha Atomic Research Centre, Mumbai 400085, India.
Abstract:
High entropy oxides provide an exciting avenue to obtain superior functionalities. However, stabilizing high entropy oxides containing equimolar components is a challenge in structures that are highly sensitive to the size of constituting ions. Hexagonal ABO3 (P63cm) is one such structural class that shows improper ferroelectricity due to non-centrosymmetric placement of ions. The motivation for this work was to stabilize a high entropy YInO3-based hexagonal composition, which has not been reported earlier, and its impact on electrical properties. Tailoring synthesis conditions yielded single-phasic hexagonal polymorphs for YInO3, Y(In0.5Mn0.5)O3, Y(In0.33Mn0.33Fe0.33)O3, and Y(In0.25Mn0.25Fe0.25Ga0.25)O3. Sharp XRD peaks with very broad Raman modes and decrease in the grain size support a single hexagonal phase with strong randomization. Entropy stabilization was established by positive enthalpy of formation determined by Calvet-calorimetry. These hexagonal polymorphs have differential thermal expansions, with a/b-axes showing double expansion compared to c-axis, which is attributed to unbuckling of BO5 layers that provides a buffer in the c-direction. Interestingly, as the B-site randomizes, BO5 polyhedra become more regular, accompanied by an increase in the B-Oplanar-B angle, which increases local symmetry and tends to reduce inherent polarization. Y(In0.25Mn0.25Fe0.25Ga0.25)O3 exhibits a low dielectric loss of ∼0.0085 and an ultra-low leakage current of 5.2 × 10-10A/cm2 (upto 150 °C), an order of magnitude improvement over YInO3.
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