scholarly journals Spatial Phase-Sweep: Increasing temporal resolution of transient imaging using a light source array

Author(s):  
Ryuichi Tadano ◽  
Adithya Kumar Pediredla ◽  
Kaushik Mitra ◽  
Ashok Veeraraghavan
2009 ◽  
Author(s):  
Young-Tae Lim ◽  
Jae-Hyeung Park ◽  
Nam Kim ◽  
Ki-Chul Kwon

2014 ◽  
Vol 39 (24) ◽  
pp. 6966 ◽  
Author(s):  
Shlomi Epshtein ◽  
Alon Harris ◽  
Igor Yakubov ◽  
Garrett Locketz ◽  
Yitzhak Yitzhaky ◽  
...  

2001 ◽  
Vol 40 (Part 1, No. 8) ◽  
pp. 4913-4915 ◽  
Author(s):  
Sung-Sik Kim ◽  
Kwang-Hoon Sohn ◽  
Vladimir Savaljev ◽  
Eugene F. Pen ◽  
Jung-Young Son ◽  
...  

2020 ◽  
Vol 27 (5) ◽  
pp. 1320-1325
Author(s):  
Simone Finizio ◽  
Sina Mayr ◽  
Jörg Raabe

A setup for time-resolved scanning transmission X-ray microscopy imaging is presented, which allows for an increase in the temporal resolution without the requirement of operating the synchrotron light source with low-α optics through the measurement of the time-of-arrival of the X-ray photons. Measurements of two filling patterns in hybrid mode of the Swiss Light Source are presented as a first proof-of-principle and benchmark for the performances of this new setup. From these measurements, a temporal resolution on the order of 20–30 ps could be determined.


2018 ◽  
Vol 89 (6) ◽  
pp. 063108
Author(s):  
Wenze Xia ◽  
Yayun Ma ◽  
Shaokun Han ◽  
Yulin Wang ◽  
Fei Liu ◽  
...  

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Azeem Ahmad ◽  
Vishesh Dubey ◽  
Nikhil Jayakumar ◽  
Anowarul Habib ◽  
Ankit Butola ◽  
...  

AbstractHigh space-bandwidth product with high spatial phase sensitivity is indispensable for a single-shot quantitative phase microscopy (QPM) system. It opens avenue for widespread applications of QPM in the field of biomedical imaging. Temporally low coherence light sources are implemented to achieve high spatial phase sensitivity in QPM at the cost of either reduced temporal resolution or smaller field of view (FOV). In addition, such light sources have low photon degeneracy. On the contrary, high temporal coherence light sources like lasers are capable of exploiting the full FOV of the QPM systems at the expense of less spatial phase sensitivity. In the present work, we demonstrated that use of narrowband partially spatially coherent light source also called pseudo-thermal light source (PTLS) in QPM overcomes the limitations of conventional light sources. The performance of PTLS is compared with conventional light sources in terms of space bandwidth product, phase sensitivity and optical imaging quality. The capabilities of PTLS are demonstrated on both amplitude (USAF resolution chart) and phase (thin optical waveguide, height ~ 8 nm) objects. The spatial phase sensitivity of QPM using PTLS is measured to be equivalent to that for white light source and supports the FOV (18 times more) equivalent to that of laser light source. The high-speed capabilities of PTLS based QPM is demonstrated by imaging live sperm cells that is limited by the camera speed and large FOV is demonstrated by imaging histopathology human placenta tissue samples. Minimal invasive, high-throughput, spatially sensitive and single-shot QPM based on PTLS will enable wider penetration of QPM in life sciences and clinical applications.


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