Physical properties of transparent perovskite oxides (Ba,La)SnO3 with high electrical mobility at room temperature
Hyung Joon Kim, Useong Kim, Tai Hoon Kim, Jiyeon Kim, Hoon Min Kim,, Byung-Gu Jeon, Woong-Jhae Lee, Hyo Sik Mun, Kwang Taek Hong, Jaejun Yu,, Kookrin Char, and Kee Hoon Kim

TL;DR
This study investigates the physical properties of (Ba,La)SnO3, a transparent perovskite oxide with high room-temperature electrical mobility, highlighting its potential for optoelectronic and high-power applications.
Contribution
It provides comprehensive analysis of doping effects, transport, optical, and phonon properties of (Ba,La)SnO3, revealing its high mobility and transparency, and discusses its potential for advanced device applications.
Findings
High mobility of 200-300 cm^2(Vs)^-1 in single crystals across broad doping range
Optical gap remains at about 3.33 eV, maintaining transparency
Conductivity reaches ~10^4 ohm^-1cm^-1 at high carrier density
Abstract
Transparent electronic materials are increasingly in demand for a variety of optoelectronic applications. BaSnO3 is a semiconducting oxide with a large band gap of more than 3.1 eV. Recently, we discovered that La doped BaSnO3 exhibits unusually high electrical mobility of 320 cm^2(Vs)^-1 at room temperature and superior thermal stability at high temperatures [H. J. Kim et al. Appl. Phys. Express. 5, 061102 (2012)]. Following that work, we report various physical properties of (Ba,La)SnO3 single crystals and films including temperature-dependent transport and phonon properties, optical properties and first-principles calculations. We find that almost doping-independent mobility of 200-300 cm^2(Vs)^-1 is realized in the single crystals in a broad doping range from 1.0x10^19 to 4.0x10^20 cm^-3. Moreover, the conductivity of ~10^4 ohm^-1cm^-1 reached at the latter carrier density is…
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