KLI

High-speed mapping of surface charge dynamics using sparse scanning Kelvin probe force microscopy

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Alternative Title
켈빈프로브힘 현미경을 이용한 초고속 표면전하거동 분석
Abstract
Unraveling local dynamic charge processes is vital for progress in diverse fields, from microelectronics to energy storage. This relies on the ability to map charge carrier motion across multiple length- and timescales and understanding how these processes interact with the inherent material heterogeneities. Towards addressing this challenge, we introduce high-speed sparse scanning Kelvin probe force microscopy, which combines sparse scanning and image reconstruction. This approach is shown to enable subsecond imaging (>3 frames per second) of nanoscale charge dynamics, representing several orders of magnitude improvement over traditional Kelvin probe force microscopy imaging rates. Bridging this improved spatiotemporal resolution with macroscale device measurements, we successfully visualize electrochemically mediated diffusion of mobile surface ions on a LaAlO3/SrTiO3 planar device. Such processes are known to impact band-alignment and charge-transfer dynamics at these heterointerfaces. Furthermore, we monitor the diffusion of oxygen vacancies at the single grain level in polycrystalline TiO2. Through temperature-dependent measurements, we identify a charge diffusion activation energy of 0.18 eV, in good agreement with previously reported values and confirmed by DFT calculations. Together, these findings highlight the effectiveness and versatility of our method in understanding ionic charge carrier motion in microelectronics or nanoscale material systems.
Author(s)
Marti ChecaAddis S. FuhrChanghyo SunRama VasudevanMaxim ZiatdinovIlia IvanovSeok Joon YunKai XiaoAlp SehirliogluYunseok KimPankaj SharmaKyle P. KelleyNeus DomingoStephen JesseLiam Collins
Issued Date
2023
Type
Article
Keyword
Surface charge dynamics
DOI
10.1038/s41467-023-42583-x
URI
https://oak.ulsan.ac.kr/handle/2021.oak/16670
Publisher
NATURE COMMUNICATIONS
Language
영어
ISSN
2041-1723
Citation Volume
14
Citation Number
1
Citation Start Page
1
Citation End Page
12
Appears in Collections:
Natural Science > Physics
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