纤锌矿晶体结构
材料科学
极化(电化学)
自行车
铁电性
氮化物
光电子学
钪
矫顽力
缩放比例
电压
铝
电极
光学
温度循环
可靠性(半导体)
作者
Hyunmin Cho,Y. Wang,Chloe Leblanc,Yinuo Zhang,Yunfei He,Zirun Han,Xiaolei Tong,Vidhu D. Bulumulla,Jonathan M. Tan,Roy H. Olsson,Deep Jariwala
标识
DOI:10.1038/s41467-025-68221-2
摘要
Wurtzite ferroelectrics, particularly aluminum scandium nitride (AlScN), have emerged as a promising material platform for non-volatile memories, offering high polarization values exceeding 100 μC/cm2. However, their high coercive fields (>3 MV/cm) have limited cycling endurance to ~107 cycles in previous reports. Here, we demonstrate unprecedented control of polarization switching in AlScN, achieving write cycling endurance exceeding 1010 cycles-a thousand-fold improvement over previous wurtzite ferroelectric benchmarks. Through precise voltage modulation in 45 nm-thick Al0.64Sc0.36N capacitors, we show that while complete polarization reversal (2Pr ≈ 200 μC/cm2) sustains ~108 cycles, partial switching extends endurance beyond 1010 cycles while maintaining a substantial polarization (>30 μC/cm2 for 2Pr). This exceptional endurance, combined with breakdown fields approaching 10 MV/cm in optimized 10 μm diameter devices, represents the highest reported values for any wurtzite ferroelectric. Our findings establish a new paradigm for reliability in nitride ferroelectrics, demonstrating that controlled partial polarization and size scaling enables both high endurance and energy-efficient operation.
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