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Linear colossal magnetoresistance driven by magnetic textures in LaTiO3 thin films on SrTiO3

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arxiv 2210.07682 v1 pith:5PSDKVA5 submitted 2022-10-14 cond-mat.mes-hall

Linear colossal magnetoresistance driven by magnetic textures in LaTiO3 thin films on SrTiO3

classification cond-mat.mes-hall
keywords magneticmobilitylatio3linearmagnetoresistanceamplitudecolossalfilm
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

Linear magnetoresistance (LMR) is of particular interest for memory, electronics, and sensing applications, especially when it does not saturate over a wide range of magnetic fields. One of its principal origins is local mobility or density inhomogeneities, often structural, which in the Parish-Littlewood theory leads to an unsaturating LMR proportional to mobility. Structural disorder, however, also tends to limit the mobility and hence the overall LMR amplitude. An alternative route to achieve large LMR is via non-structural inhomogeneities which do not affect the zero field mobility, like magnetic domains. Here, linear positive magnetoresistance caused by magnetic texture is reported in \ch{LaTiO3}/\ch{SrTiO3} heterostructures. The LMR amplitude reaches up to 6500\% at 9T. This colossal value is understood by the unusual combination of a very high thin film mobility, up to 40 000 cm$^2$/V.s, and a very large coverage of low-mobility regions. These regions correlate with a striped magnetic structure, compatible with a spiral magnetic texture in the \ch{LaTiO3} film, revealed by low temperature Lorentz transmission electron microscopy. These results provide a novel route for the engineering of large-LMR devices.

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