Thermodynamic, electronic, and optical properties of ultra-wide bandgap zirconium-doped tin dioxide from a DFT perspective.
Shan PengXiaolin WuYuanke SunZhanxiang ZhouDe-Bing LongHuaqing YuPublished in: RSC advances (2024)
The effects of zirconium doping on the thermodynamic, electronic, and optical properties of tin dioxide are investigated by using density functional theory calculations combined with the cluster expansion method. In the whole composition range, the formation enthalpies of all structures are positive, indicating that SnO 2 -ZrO 2 is an immiscible system and the ZrSnO 2 alloy has a tendency of phase separation at low temperature. The x-T phase diagram of ZrSnO 2 ternary alloy shows that the critical temperature is 979 K, which means that when the growth temperature of ZrSnO 2 crystal is higher than the critical temperature, it is possible to realize the full-component solid solution. The bandgaps of Zr x Sn 1- x O 2 alloys (0 ≤ x ≤ 1) are direct and increase as the Zr composition increases. Zr doping can tune the bandgap of SnO 2 from the ultraviolet-B region to the deep ultraviolet region, and has a strong optical response to deep ultraviolet light. The projected density of states and band offsets clearly reveal the reason for the increase of bandgap, which provides useful information to design relevant optoelectronic devices such as quantum wells and solar-blind deep ultraviolet photodetectors.
Keyphrases
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- molecular dynamics
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