High-performance van der Waals antiferroelectric CuCrP2S6-based memristors

Author:

Ma YinchangORCID,Yan YuanORCID,Luo LinquORCID,Pazos SebastianORCID,Zhang ChenhuiORCID,Lv Xiang,Chen MaolinORCID,Liu Chen,Wang Yizhou,Chen AitianORCID,Li YanORCID,Zheng DongxingORCID,Lin RongyuORCID,Algaidi HaninORCID,Sun MingleiORCID,Liu Jefferson ZheORCID,Tu Shaobo,Alshareef Husam N.ORCID,Gong ChengORCID,Lanza MarioORCID,Xue FeiORCID,Zhang XixiangORCID

Abstract

AbstractLayered thio- and seleno-phosphate ferroelectrics, such as CuInP2S6, are promising building blocks for next-generation nonvolatile memory devices. However, because of the low Curie point, the CuInP2S6-based memory devices suffer from poor thermal stability (<42 °C). Here, exploiting the electric field-driven phase transition in the rarely studied antiferroelectric CuCrP2S6 crystals, we develop a nonvolatile memristor showing a sizable resistive-switching ratio of ~ 1000, high switching endurance up to 20,000 cycles, low cycle-to-cycle variation, and robust thermal stability up to 120 °C. The resistive switching is attributed to the ferroelectric polarization-modulated thermal emission accompanied by the Fowler–Nordheim tunneling across the interfaces. First-principles calculations reveal that the good device performances are associated with the exceptionally strong ferroelectric polarization in CuCrP2S6 crystal. Furthermore, the typical biological synaptic learning rules, such as long-term potentiation/depression and spike amplitude/spike time-dependent plasticity, are also demonstrated. The results highlight the great application potential of van der Waals antiferroelectrics in high-performance synaptic devices for neuromorphic computing.

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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