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Monovalent Cation Doping of CH3NH3PbI3 for Efficient Perovskite Solar Cells
Published on: March 19, 2017
Almacenamiento de energía de alta eficiencia y modulación de fotoluminiscencia impulsada por campo eléctrico en
Jiarui Wang1, Chao Wang1, Ziyue Wang1
1School of Materials Science and Engineering, Laboratory of Sensitive Materials and Devices Shandong Department of Education, Liaocheng University, Liaocheng 252059, China.
Abstract:
SrTiO3 ceramic, a canonical linear dielectric, is reowned for its high energy storage efficiency (η), a sequence of its low dielectric loss and superior breakdown strength. However, its inherently low maximum polarization severely limits the achievable recoverable energy density (Wrec). In this study, a superparaelectric state featuring polymorphic polar nanoregions was engineered within the (Sr1-1.5xBix-0.005Sm0.005)TiO3 system through deliberate introduction of local heterogeneity and structural distortion. This approach yielded a remarkable Wrec of 6.71 J/cm3 coupled with an impressive η of 90.36% under a high electric field of 600 kV/cm. First-principles calculations reveal that the enhancement in energy storage performance with increasing Bi3+ content stems from improved polarization, driven by the strengthened hybridization between O 2p and Bi 6s states. Additionally, the incorporation of Sm3+ ions endows the ceramics with excellent luminescent properties, notably a novel electric field-driven photoluminescence modulation effect, thereby significantly broadening their applications potential in optoelectronic devices. This work not only offers new insights into the design of high-performance dielectric energy storage materials but also paves the way for development of multifunctional ceramic capacitors.

