Giant Ferroelectric Domain Wall Conductance in MoS2/PbTiO3 Heterostructure for High-Density Memory

Abstract Domain wall (DW) electronics hold promise for high-density computing, but their implementation is limited by low read currents and high operating voltages in bulk ferroelectric oxides. Here, we present a monolayer molybdenum disulfide (MoS2)/PbTiO3 (PTO) van der Waals (vdW) heterostructure that overcomes these limitations. By integrating a monolayer MoS2 capping layer, we read out giant DW conductance with microampere (μA)-level currents, exceptional retention (>360 h), and an ultralow reading turn-on voltage (∼0.36 V). This giant DW conductance is attributed to local electrostatic doping of the overlaying MoS2 by bound charges accumulated at the DWs, which drastically minimizes the interfacial Schottky barrier for enhanced electron transport. A “nanobubble” domain engineering strategy is further implemented upon these DW-induced conductive channels, yielding quasi-one-dimensional (quasi-1D) conductive states (∼20 nm in diameter) for high-density storage. These results establish a platform with nanometer-scale spatial conduction control, promising for next-generation ultrahigh density reconfigurable nanoelectronics.

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Publication Details

Journal
Nano Letters
Published
2026-09-17
DOI
https://doi.org/10.1021/acs.nanolett.6c02965
Primary Topic
2D Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Giant Ferroelectric Domain Wall Conductance in MoS2/PbTiO3 Heterostructure for High-Density Memory

Yihang Guo, Zhen Fan, Jun‐Ming Liu, Houlin Zhou et al.
Nano Letters
2D Materials and Applications
article

Giant Ferroelectric Domain Wall Conductance in MoS2/PbTiO3 Heterostructure for High-Density Memory

Yihang Guo, Zhen Fan, Jun‐Ming Liu, Houlin Zhou, Zhongfen An, Xingsen Gao, Zhang Zhang, Hua Fan, Guo Tian, Yong Yao, Jianbiao Xian
article en

Abstract

Abstract Domain wall (DW) electronics hold promise for high-density computing, but their implementation is limited by low read currents and high operating voltages in bulk ferroelectric oxides. Here, we present a monolayer molybdenum disulfide (MoS2)/PbTiO3 (PTO) van der Waals (vdW) heterostructure that overcomes these limitations. By integrating a monolayer MoS2 capping layer, we read out giant DW conductance with microampere (μA)-level currents, exceptional retention (>360 h), and an ultralow reading turn-on voltage (∼0.36 V). This giant DW conductance is attributed to local electrostatic doping of the overlaying MoS2 by bound charges accumulated at the DWs, which drastically minimizes the interfacial Schottky barrier for enhanced electron transport. A “nanobubble” domain engineering strategy is further implemented upon these DW-induced conductive channels, yielding quasi-one-dimensional (quasi-1D) conductive states (∼20 nm in diameter) for high-density storage. These results establish a platform with nanometer-scale spatial conduction control, promising for next-generation ultrahigh density reconfigurable nanoelectronics.

Nano Letters
Nanjing Agricultural University (CN), Nanjing Tech University (CN), South China Normal University (CN), Nanjing University (CN)
Scientific and Technological Planning Project of Guangzhou City, Basic and Applied Basic Research Foundation of Guangdong Province
Openalex Percentile: Top 25%
2D Materials and Applications
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