Understanding polaronic transport in complex oxides by combining precise synthesis and first-principles many-body theory
Понимание поляронного транспорта в сложных оксидах путем сочетания прецизионного синтеза и первопринципной многочастичной теории
2026-01-22
SCID: 54.1/y8dmepkb
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anatase TiO2complex oxideselectron–phonon diagrammatic Monte Carlooxygen-vacancy-doped filmspolaronic transport
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Abstract (AI)
Abstract In complex oxides, charge carriers often couple strongly with lattice vibrations to form polarons–entangled electron–phonon quasiparticles whose transport properties remain difficult to characterize. Experimental access to intrinsic polaronic transport requires ultraclean samples, while theoretical description demands methods beyond low-order perturbation theory. Here, we show a predictive theory–experiment workflow to study polaron transport in complex oxides. Focusing on a prototypical polaronic oxide, anatase TiO 2 , we combine growth of high-quality oxygen-vacancy-doped films using hybrid molecular beam epitaxy with a first-principles electron–phonon diagrammatic Monte-Carlo (FEP-DMC) framework recently developed for accurate polaron predictions. Our films exhibit record-high electron mobility for anatase TiO 2 , in excellent agreement with FEP-DMC calculations conducted prior to experiment, which predict a room-temperature mobility of 45 ± 15 cm −2 V −1 s −1 and a mobility-temperature scaling of μ ∝ T −1.9 ± 0.077 . Microscopic analysis using scanning transmission electron microscopy and x-ray photoelectron spectroscopy reveals the role of oxygen vacancies in modulating transport at lower temperatures. FEP-DMC further provides quantitative insight into polaron formation energy, phonon cloud distribution, lattice distortion around the polaron, and the polaronic contribution to mobility. Together, these results provide a deeper microscopic understanding of large-polaron transport in a complex oxide and provide the blueprint to characterize other polaronic materials.
Key Findings
1
A predictive theory–experiment workflow combines ultraclean oxygen-vacancy-doped anatase TiO₂ films with first-principles electron–phonon diagrammatic Monte Carlo.
2
FEP-DMC predicts room-temperature mobility of 45 ± 15 cm⁻² V⁻¹ s⁻¹ and temperature scaling of μ ∝ T⁻¹·⁹ ± 0.077.
3
FEP-DMC quantitatively characterizes polaron formation energy, phonon-cloud distribution, lattice distortion, and polaronic contributions to mobility.
4
Scanning transmission electron microscopy and x-ray photoelectron spectroscopy show that oxygen vacancies modulate transport at lower temperatures.
5
The synthesized anatase TiO₂ films achieve record-high electron mobility, consistent with FEP-DMC predictions made before the experiments.
Research Object
oxygen-vacancy-doped anatase TiO2 films and their polaronic charge carriers
Research Subject
polaron formation and transport, including mobility, temperature scaling, phonon-cloud distribution, lattice distortion, and the role of oxygen vacancies
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2026-01-22
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