偶极子
离子键合
电场
极地的
异质结
物理
极化(电化学)
量子隧道
化学物理
电偶极矩
电子
电容
凝聚态物理
费米气体
薄膜
氧化物
原子单位
材料科学
离子
化学
电极
量子力学
物理化学
冶金
作者
G. Singh‐Bhalla,Christopher Bell,Jayakanth Ravichandran,Wolter Siemons,Yasuyuki Hikita,Sayeef Salahuddin,A. F. Hebard,Harold Y. Hwang,R. Ramesh
出处
期刊:Nature Physics
[Nature Portfolio]
日期:2010-10-24
卷期号:7 (1): 80-86
被引量:193
摘要
Ionic crystals terminated at oppositely charged polar surfaces are inherently unstable and expected to undergo surface reconstructions to maintain electrostatic stability. Essentially, an electric field that arises between oppositely charged atomic planes gives rise to a built-in potential that diverges with thickness. In ultra thin film form however the polar crystals are expected to remain stable without necessitating surface reconstructions, yet the built-in potential has eluded observation. Here we present evidence of a built-in potential across polar \lao ~thin films grown on \sto ~substrates, a system well known for the electron gas that forms at the interface. By performing electron tunneling measurements between the electron gas and a metallic gate on \lao ~we measure a built-in electric field across \lao ~of 93 meV/\AA. Additionally, capacitance measurements reveal the presence of an induced dipole moment near the interface in \sto, illuminating a unique property of \sto ~substrates. We forsee use of the ionic built-in potential as an additional tuning parameter in both existing and novel device architectures, especially as atomic control of oxide interfaces gains widespread momentum.
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