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电荷俘获对基于HfO的铁电场效应晶体管记忆特性的影响。

Effects of Charge Trapping on Memory Characteristics for HfO-Based Ferroelectric Field Effect Transistors.

作者信息

Wang Jianjian, Bi Jinshun, Xu Yannan, Niu Gang, Liu Mengxin, Stempitsky Viktor

机构信息

Institute of Microelectronics, Chinese Academy of Sciences, Beijing 100029, China.

School of Microelectronics, University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Nanomaterials (Basel). 2023 Feb 6;13(4):638. doi: 10.3390/nano13040638.

Abstract

A full understanding of the impact of charge trapping on the memory window (MW) of HfO-based ferroelectric field effect transistors (FeFETs) will permit the design of program and erase protocols, which will guide the application of these devices and maximize their useful life. The effects of charge trapping have been studied by changing the parameters of the applied program and erase pulses in a test sequence. With increasing the pulse amplitude and pulse width, the MW increases first and then decreases, a result attributed to the competition between charge trapping (CT) and ferroelectric switching (FS). This interaction between CT and FS is analyzed in detail using a single-pulse technique. In addition, the experimental data show that the conductance modulation characteristics are affected by the CT in the analog synaptic behavior of the FeFET. Finally, a theoretical investigation is performed in Sentaurus TCAD, providing a plausible explanation of the CT effect on the memory characteristics of the FeFET. This work is helpful to the study of the endurance fatigue process caused by the CT effect and to optimizing the analog synaptic behavior of the FeFET.

摘要

全面了解电荷俘获对基于HfO的铁电场效应晶体管(FeFET)的存储窗口(MW)的影响,将有助于设计编程和擦除协议,这将指导这些器件的应用并最大限度地延长其使用寿命。通过在测试序列中改变施加的编程和擦除脉冲的参数,研究了电荷俘获的影响。随着脉冲幅度和脉冲宽度的增加,MW先增大后减小,这一结果归因于电荷俘获(CT)和铁电开关(FS)之间的竞争。使用单脉冲技术详细分析了CT和FS之间的这种相互作用。此外,实验数据表明,在FeFET的模拟突触行为中,电导调制特性受CT的影响。最后,在Sentaurus TCAD中进行了理论研究,为CT对FeFET存储特性的影响提供了合理的解释。这项工作有助于研究由CT效应引起的耐久性疲劳过程,并有助于优化FeFET的模拟突触行为。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1b6b/9959327/8bee5e41ecfe/nanomaterials-13-00638-g001.jpg

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