Theoretical Investigation of (Zn, Co) co-Doped BaTiO3 for Advanced Energy and Photonic Applications
Zheng Kang, Mei Wu, Yiyu Feng, Jiahao Li, Jieming Zhang, Haiyi Tian,, Ancheng Wang, Yunkai Wu, Xu Wang

TL;DR
This study uses density functional theory to analyze (Zn, Co) co-doped BaTiO3, revealing enhanced ferroelectric and optical properties that make it promising for energy and photonic applications.
Contribution
It provides a detailed theoretical understanding of how (Zn, Co) co-doping improves BaTiO3's properties, which was previously not well understood.
Findings
Increased tetragonality and ferroelectric polarization in BZCT.
Reduced band gap enhancing optical absorption.
Enhanced photorefractive properties for energy applications.
Abstract
In light of recent advancements in energy technology, there is an urgent need for lead-free barium titanate (BTO) -based materials that exhibit remarkable ferroelectric and photoelectric properties. Notwithstanding the considerable experimental advances, a theoretical understanding from the electron and atomic perspectives remains elusive. This study employs the generalized gradient approximation plane wave pseudopotential technique to investigate the structural, electronic, ferroelectric, and optical properties of (Zn,Co) co-doped BaTiO3 (BZCT) based on density functional theory. The objective is to ascertain the extent of performance enhancement and the underlying mechanism of (Zn,Co) co-doping on barium titanate. Our findings reveal that incorporating (Zn,Co) into the BaTiO3 lattice significantly augments the tetragonality of the unit cell. Moreover, the ferroelectric properties are…
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Taxonomy
TopicsFerroelectric and Piezoelectric Materials
