材料科学
氧气
电阻随机存取存储器
热传导
欧姆接触
肖特基二极管
兴奋剂
肖特基势垒
X射线光电子能谱
电导率
光电子学
电阻率和电导率
导电体
空位缺陷
化学物理
电流(流体)
等效串联电阻
费米能级
接触电阻
电子
电解
极限氧浓度
薄膜
接受者
分析化学(期刊)
杂质
电迁移
普尔-弗伦克尔效应
电阻和电导
纳米技术
凝聚态物理
作者
Hong Wei Wang,Jin Peng Cao,Wei Deng,Jun Kun Wu,Li Hong Yang,Zhou Zhang,Chun Feng,Yang Bai,Qiliang Li,Jun Miao
摘要
The resistance switching mechanism in HfO2-based resistive random access memory (RRAM) typically involves conductive filaments formed by oxygen vacancies. The inherent characteristics of this mechanism lead to low reliability and elevated off-state current in HfO2-based RRAM devices. Herein, the oxygen vacancy concentration in Hf0.5Zr0.5O2 film was decreased through the acceptor (La3+)–donor (Ta5+) co-doping strategy, which reduced off-state current from 7.6 × 10−3 A/cm2 to 3.6 × 10−6 A/cm2 at 0.5 V, increased the resistance switching ratio from 6.2 × 102 to 2.4 × 104, and improved switching stability. Following the doping of Hf0.5Zr0.5O2 film with La3+ and Ta5+, the resistance switching mechanism changes from oxygen vacancy conductive filaments to the electron capture/de-capture mechanism. The conduction mechanism of the high resistance state transitions from Schottky emission to space charge limited current, while that of the low resistance state transitions from Ohmic conduction to Fowler–Nordheim tunneling. X-ray photoelectron spectroscopy has shown that the co-doping approach decreases the concentration of oxygen vacancies, which in turn influences the alterations in the resistance switching performances and mechanisms. This study presents an effective approach for the design and improvement of HfO2-based RRAM, while also advancing the comprehension of the resistance switching mechanism influenced by doping in HfO2-based films.
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