Enhancement of tunneling electroresistance in metal/two-dimensional ferroelectric tunnel junctions: route for polarization-modulated interface transport.

J Phys Condens Matter

Key Laboratory of Low Dimensional Materials and Application Technology of Ministry of Education, School of Materials Science and Engineering, Xiangtan University, Xiangtan 411105, People's Republic of China.

Published: September 2024

AI Article Synopsis

  • Low-resistance metals are crucial as electrodes in ferroelectric tunnel junctions (FTJs), affecting charge transport at two key interfaces: vertical (metal-2D ferroelectric material) and lateral (metal-central region).
  • The study focuses on the transport properties in FTJs with a top contact, specifically analyzing the titanium selenide (InSemonolayer) interface using the non-equilibrium Green's function method.
  • A high tunneling electroresistance (TER) ratio is achieved with Pd and InSemonolayer due to polarization-controlled interface transport, suggesting significant implications for improving non-volatile memory technology.

Article Abstract

In fabricating ferroelectric tunnel junction (FTJ) devices, it is essential to employ low-resistance metals as electrodes interfacing with two-dimensional (2D) ferroelectric materials. For FTJs with a top contact configuration, two interfaces for charge transport are present, namely the vertical interface between the metal electrode and the 2D ferroelectric material, and the lateral interface between the electrode and the central scattering region. These interfaces significantly influence the tunneling electroresistance (TER) of FTJs. However, there exists a notable deficiency in comprehension concerning the physics of charge transport at the interface. In this work, we explore the interface transport properties in FTJs featuring a top contact configuration between metal and the typical-InSemonolayer. By employing the non-equilibrium Green's function method, we observe a TER ratio of1.15×105% for the Pd top contact interfacing with an-InSemonolayer. The significant TER effect is attributed to polarization-controlled interface transport, which is further elucidated through an analysis of the transport mechanisms influenced by the out-of-plane polarization of-InSeat the vertical interface and the in-plane polarization at the lateral interface. This investigation of the fundamental physical mechanisms of polarization-controlled interface transport demonstrates significant potential for enhancing non-volatile memory devices.

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Source
http://dx.doi.org/10.1088/1361-648X/ad7accDOI Listing

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