HZO-based ferroelectric tunnel junction in crossbar structure enabling high current reading and large memory window

Here, we report the fabrication of an ultrathin ZrO2/Hf0.5Zr0.5O2-based ferroelectric tunnel junction (FTJ) in a crossbar structure, which exhibits both a large memory window and high current reading, two essential criteria to meet in the practical integration of hafnia-based FTJ memory chips. Giant tunnel electroresistance ratios of over 107 are obtained, attributable to the superior ferroelectric stack of FTJs. The ON-state read current density is roughly inversely proportional to the critical dimension of the crossbar FTJ, with over 600 A/cm2 reached with a 3.5 μm device and 4000 A/cm2 with a submicrometer-sized one, which projects a promising trend in lateral scaling. Under 10 ns single-pulse programming, the FTJs are capable of multiple distinct stable resistance states and can survive up to 7.3 × 106 bipolar switching cycles with a stable memory window of over 10 000. Crossbar FTJs also demonstrate superb synaptic behaviors, including nearly symmetrical and linear long-term potentiation/depression, indicating their great potential in neuromorphic computing. An in-series threshold switching selector is further integrated with a crossbar FTJ to form a one-selector-one-resistor memory, which maintains a large memory window and high current density, paving the way for realizing high-density integration of FTJ crossbar arrays. This work demonstrates the coexistence of a large switching window and high current reading in scaled FTJs with ultrathin fluorite-structured ferroelectrics through back-end-of-line-compatible processing, foreseeing a bright pathway toward the mass production of hafnia-based FTJ memory.

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Publication Details

Journal
Applied Physics Letters
Published
2026-09-14
DOI
https://doi.org/10.1063/5.0342723
Primary Topic
Ferroelectric and Negative Capacitance Devices
Type
article
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HZO-based ferroelectric tunnel junction in crossbar structure enabling high current reading and large memory window

Jingchao Xiao, Yubao Li, Wei Zhang, Huiping Wang et al.
Applied Physics Letters
Ferroelectric and Negative Capacitance Devices
article

HZO-based ferroelectric tunnel junction in crossbar structure enabling high current reading and large memory window

Jingchao Xiao, Yubao Li, Wei Zhang, Huiping Wang, Chenxin Xu
article en

Abstract

Here, we report the fabrication of an ultrathin ZrO2/Hf0.5Zr0.5O2-based ferroelectric tunnel junction (FTJ) in a crossbar structure, which exhibits both a large memory window and high current reading, two essential criteria to meet in the practical integration of hafnia-based FTJ memory chips. Giant tunnel electroresistance ratios of over 107 are obtained, attributable to the superior ferroelectric stack of FTJs. The ON-state read current density is roughly inversely proportional to the critical dimension of the crossbar FTJ, with over 600 A/cm2 reached with a 3.5 μm device and 4000 A/cm2 with a submicrometer-sized one, which projects a promising trend in lateral scaling. Under 10 ns single-pulse programming, the FTJs are capable of multiple distinct stable resistance states and can survive up to 7.3 × 106 bipolar switching cycles with a stable memory window of over 10 000. Crossbar FTJs also demonstrate superb synaptic behaviors, including nearly symmetrical and linear long-term potentiation/depression, indicating their great potential in neuromorphic computing. An in-series threshold switching selector is further integrated with a crossbar FTJ to form a one-selector-one-resistor memory, which maintains a large memory window and high current density, paving the way for realizing high-density integration of FTJ crossbar arrays. This work demonstrates the coexistence of a large switching window and high current reading in scaled FTJs with ultrathin fluorite-structured ferroelectrics through back-end-of-line-compatible processing, foreseeing a bright pathway toward the mass production of hafnia-based FTJ memory.

Applied Physics LettersVol. 129(11)
Hebei University (CN)
Quality Education
Openalex Percentile: Top 20%
Ferroelectric and Negative Capacitance Devices
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