Subwavelength light focusing and imaging via wavefront shaping in complex media

Author(s):  
YongKeun Park
CLEO: 2014 ◽  
2014 ◽  
Author(s):  
Jung-Hoon Park ◽  
Chunghyun Park ◽  
Yong-Hoon Cho ◽  
YongKeun Park

Science ◽  
2019 ◽  
Vol 363 (6426) ◽  
pp. 528-531 ◽  
Author(s):  
Donggyu Kim ◽  
Dirk R. Englund

Optical scattering is generally considered to be a nuisance of microscopy that limits imaging depth and spatial resolution. Wavefront shaping techniques enable optical imaging at unprecedented depth, but attaining superresolution within complex media remains a challenge. We used a quantum reference beacon (QRB), consisting of solid-state quantum emitters with spin-dependent fluorescence, to provide subwavelength guidestar feedback for wavefront shaping to achieve a superresolution optical focus. We implemented the QRB-guided imaging with nitrogen-vacancy centers in diamond nanocrystals, which enable optical focusing with a subdiffraction resolution below 186 nanometers (less than half the wavelength). QRB-assisted wavefront-shaping should find use in a range of applications, including deep-tissue quantum enhanced sensing and individual optical excitation of magnetically coupled spin ensembles for applications in quantum information processing.


2021 ◽  
Author(s):  
lianfu yu ◽  
Fan Yang ◽  
Yue Hu ◽  
Yingchun Ding ◽  
Jiaqi He

Author(s):  
Jung-Hoon Park ◽  
Chunghyun Park ◽  
HyeonSeung Yu ◽  
Jimin Park ◽  
Seungyong Han ◽  
...  

Author(s):  
Jung-Hoon Park ◽  
Chunghyun Park ◽  
HyeonSeung Yu ◽  
Jimin Park ◽  
Seungyong Han ◽  
...  

Optik ◽  
2021 ◽  
pp. 167319
Author(s):  
Yang Zhao ◽  
Zhaoyang Tang ◽  
Chengchao Xiang ◽  
Yingchun Ding

2021 ◽  
Vol 10 (1) ◽  
Author(s):  
Jiamiao Yang ◽  
Qiaozhi He ◽  
Linxian Liu ◽  
Yuan Qu ◽  
Rongjun Shao ◽  
...  

AbstractSpeed and enhancement are the two most important metrics for anti-scattering light focusing by wavefront shaping (WS), which requires a spatial light modulator with a large number of modulation modes and a fast speed of response. Among the commercial modulators, the digital-micromirror device (DMD) is the sole solution providing millions of modulation modes and a pattern rate higher than 20 kHz. Thus, it has the potential to accelerate the process of anti-scattering light focusing with a high enhancement. Nevertheless, modulating light in a binary mode by the DMD restricts both the speed and enhancement seriously. Here, we propose a multi-pixel encoded DMD-based WS method by combining multiple micromirrors into a single modulation unit to overcome the drawbacks of binary modulation. In addition, to efficiently optimize the wavefront, we adopted separable natural evolution strategies (SNES), which could carry out a global search against a noisy environment. Compared with the state-of-the-art DMD-based WS method, the proposed method increased the speed of optimization and enhancement of focus by a factor of 179 and 16, respectively. In our demonstration, we achieved 10 foci with homogeneous brightness at a high speed and formed W- and S-shape patterns against the scattering medium. The experimental results suggest that the proposed method will pave a new avenue for WS in the applications of biomedical imaging, photon therapy, optogenetics, dynamic holographic display, etc.


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