Reward based optimization of resonance-enhanced piezoresponse spectroscopy

IF 3.6 2区 物理与天体物理 Q2 PHYSICS, APPLIED Applied Physics Letters Pub Date : 2025-01-27 DOI:10.1063/5.0249686
Yu Liu, Boris Slautin, Jason Bemis, Roger Proksch, Rohit Pant, Ichiro Takeuchi, Stanislav Udovenko, Susan Trolier-McKinstry, Sergei V. Kalinin
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Abstract

Dynamic spectroscopies in scanning probe microscopy (SPM) are critical for probing material properties, such as force interactions, mechanical properties, polarization switching, electrochemical reactions, and ionic dynamics. However, the practical implementation of these measurements is constrained by the need to balance imaging time and data quality. Signal to noise requirements favor long acquisition times and high frequencies to improve signal fidelity. However, these are limited on the low end by contact resonant frequency and photodiode sensitivity and on the high end by the time needed to acquire high-resolution spectra or the propensity for sample degradation under high field excitation over long times. The interdependence of key parameters such as instrument settings, acquisition times, and sampling rates makes manual tuning labor-intensive and highly dependent on user expertise, often yielding operator-dependent results. These limitations are prominent in techniques like dual amplitude resonance tracking in piezoresponse force microscopy that utilize multiple concurrent feedback loops for topography and resonance frequency tracking. Here, a reward-driven workflow is proposed that automates the tuning process, adapting experimental conditions in real time to optimize data quality. This approach significantly reduces the complexity and time required for manual adjustments and can be extended to other SPM spectroscopic methods, enhancing overall efficiency and reproducibility.
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基于奖励的共振增强压电响应光谱优化技术
扫描探针显微镜(SPM)中的动态光谱对于探测材料性能至关重要,如力相互作用、机械性能、极化开关、电化学反应和离子动力学。然而,这些测量的实际实施受到平衡成像时间和数据质量的需要的限制。信号对噪声的要求有利于长采集时间和高频率,以提高信号保真度。然而,这些在低端受到接触谐振频率和光电二极管灵敏度的限制,在高端受到获得高分辨率光谱所需的时间或在长时间高场激发下样品降解的倾向的限制。关键参数(如仪器设置、采集时间和采样率)的相互依赖性使得手动调弦劳动密集,并且高度依赖于用户的专业知识,通常产生依赖于操作人员的结果。这些限制在压响应力显微镜中的双振幅共振跟踪技术中尤为突出,该技术利用多个并发反馈回路进行地形和共振频率跟踪。本文提出了一种奖励驱动的工作流程,使调优过程自动化,实时调整实验条件以优化数据质量。该方法大大降低了手动调整的复杂性和时间,并可扩展到其他SPM光谱方法,提高了整体效率和重现性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Applied Physics Letters
Applied Physics Letters 物理-物理:应用
CiteScore
6.40
自引率
10.00%
发文量
1821
审稿时长
1.6 months
期刊介绍: Applied Physics Letters (APL) features concise, up-to-date reports on significant new findings in applied physics. Emphasizing rapid dissemination of key data and new physical insights, APL offers prompt publication of new experimental and theoretical papers reporting applications of physics phenomena to all branches of science, engineering, and modern technology. In addition to regular articles, the journal also publishes invited Fast Track, Perspectives, and in-depth Editorials which report on cutting-edge areas in applied physics. APL Perspectives are forward-looking invited letters which highlight recent developments or discoveries. Emphasis is placed on very recent developments, potentially disruptive technologies, open questions and possible solutions. They also include a mini-roadmap detailing where the community should direct efforts in order for the phenomena to be viable for application and the challenges associated with meeting that performance threshold. Perspectives are characterized by personal viewpoints and opinions of recognized experts in the field. Fast Track articles are invited original research articles that report results that are particularly novel and important or provide a significant advancement in an emerging field. Because of the urgency and scientific importance of the work, the peer review process is accelerated. If, during the review process, it becomes apparent that the paper does not meet the Fast Track criterion, it is returned to a normal track.
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