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@Article{Luo_2DMater_2025_v12_p15022,
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author = {Jiangbo Luo and Xudong Zhu and Xu Lian and Yuntian Zheng and Reshmi
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Thottathil and Wei Chen and Song Liu and A Ariando and Junxiong Hu},
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title = {{Tuning oxygen vacancies in complex oxides using 2D layered materials}},
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journal = {2D Mater.},
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year = 2025,
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volume = 12,
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number = 1,
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pages = 15022,
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doi = {10.1088/2053-1583/ada041},
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abstract = {Abstract The hybrid interface between 2D materials and
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complex oxides offers a rich platform to explore fascinating physical
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phenomena like helical edge states, broken-symmetry phases, and giant
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magnetoresistance. While current research primarily focuses on the
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influence of complex oxides on layered 2D materials, the
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reverse{\textemdash}how layered 2D materials affect complex
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oxides{\textemdash}remains largely unexplored. Here, we examined the
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impact of graphene layers on the formation of oxygen vacancies in
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SrTiO3 (STO) during high-temperature annealing. Our findings,
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supported by Raman spectroscopy and x-ray photoelectron spectroscopy,
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indicate that increasing the number of graphene layers progressively
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leads to a reduced oxygen vacancy content in STO, demonstrating the
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efficacy of graphene in modulating oxygen vacancy formation in bulk
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STO. Additionally, using photoluminescence, we showed that graphene
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layers can tune the in-gap states induced by oxygen vacancies in STO.
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Our first principal calculations further revealed that graphene layers
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increase the energy barrier for the outward diffusion of oxygen atoms,
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thereby inhibiting the formation of oxygen vacancies in STO. These
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results highlight a new route for tailoring the physical properties of
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complex oxides by engineering the interface with layered 2D materials.},
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}
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@Article{Jin_JPhysCondensMatterInstPhysJ_2021_v33_p325503,
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author = {Gan Jin and Daye Zheng and Lixin He},
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title = {{Calculation of Berry curvature using non-orthogonal atomic orbitals}},

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