Self-Sensing Scanning Superlens for Three-Dimensional Noninvasive Visible-Light Nanoscale Imaging on Complex Surfaces

Microsphere-assisted super-resolution imaging technology offers label-free, real-time dynamic imaging via white light, which has potential applications in living systems and the nanoscale detection of semiconductor chips. Scanning can aid in overcoming the limitations of the imaging area of a single...

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Veröffentlicht in:Nano letters 2023-05, Vol.23 (10), p.4311-4317
Hauptverfasser: Luo, Hao, Wang, Xiaoduo, Wen, Yangdong, Li, Shendi, Zhang, Tianyao, Jiang, Chaodi, Wang, Feifei, Liu, Lianqing, Yu, Haibo
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container_end_page 4317
container_issue 10
container_start_page 4311
container_title Nano letters
container_volume 23
creator Luo, Hao
Wang, Xiaoduo
Wen, Yangdong
Li, Shendi
Zhang, Tianyao
Jiang, Chaodi
Wang, Feifei
Liu, Lianqing
Yu, Haibo
description Microsphere-assisted super-resolution imaging technology offers label-free, real-time dynamic imaging via white light, which has potential applications in living systems and the nanoscale detection of semiconductor chips. Scanning can aid in overcoming the limitations of the imaging area of a single microsphere superlens. However, the current scanning imaging method based on the microsphere superlens cannot achieve super-resolution optical imaging of complex curved surfaces. Unfortunately, most natural surfaces are composed of complex curved surfaces at the microscale. In this study, we developed a method to overcome this limitation through a microsphere superlens with a feedback capability. By maintaining a constant force between the microspheres and the sample, noninvasive super-resolution optical imaging of complex abiotic and biological surfaces was achieved, and the three-dimensional information on the sample was simultaneously obtained. The proposed method significantly expands the universality of scanning microsphere superlenses for samples and promotes their widespread use.
doi_str_mv 10.1021/acs.nanolett.3c00549
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