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Published on: August 23, 2012
High-Performance CeO2-Doped SrTiO3 Nanocomposite Films for Electrostatic Energy Storage and Integrated Optical
Yuting Bai1, Xiaolong Zhang1, Wei Li1
1Institutes of Physical Science and Information Technology, and Leibniz International Joint Research Center of Materials Sciences of Anhui Province, Anhui University, Hefei230601, China.
Abstract:
This study demonstrates the design and realization of high-performance, transparent electrostatic energy storage film capacitors by integrating optical functionalities via a nanostructural engineering approach. A series of (1 - x)SrTiO3-xCeO2 [(1 - x)STO-xC, 0.0 ≤ x ≤ 0.5] films were grown on highly transparent (La0.03Ba0.97)SnO3 buffer electrode layers using pulsed laser deposition. The incorporation of CeO2 as a heterogeneous second phase generates lattice-mismatch-associated interfacial strain and structural heterogeneity, thereby transforming the nearly linear dielectric response of STO into a slim nonlinear polarization response with enhanced maximum polarization and low remanent polarization. The (1 - x)STO-xC films with x = 0.4 and 0.5 exhibit exceptional electrostatic energy storage performance, attaining a high recoverable energy density of up to 50 ± 3 J/cm3 and an ultrahigh efficiency of ∼90%. These films simultaneously maintain a high optical transmittance of ∼75% across the visible to near-infrared spectrum with a tunable optical bandgap. These films demonstrate robust frequency reliability from 20 Hz to 5 kHz and thermal stability from 25 to 120 °C. Notably, these lead-free (1 - x)STO-xC films comprise merely four elements (Sr, Ti, O, and Ce). This work establishes a viable strategy for fabricating a simplified-composition, multifunctional film that simultaneously delivers superior energy storage capability and high optical transparency, advancing their integration into next-generation transparent optoelectronic systems.

