20/11/2018

Compressive light-sheet microscopy by Chiara Garbellotto

Hello everyone,

Chiara will be our next presenter at the optical sciences seminars. She will talk about her work on light-sheet microscopy: "I'll summarise what I've done so far during my PhD and talk about what I'm working on at the moment (tiling light-sheet, z-compressed light-sheet), hoping to get some inspiration/suggestions/advice."

Check out a 3 minute thesis winning video by Chiara for a very cartoon-y intro to light-sheet microscopy  https://www.youtube.com/watch?v=7WM8D_A4leY

Please note that there is a change in venue and time.

Date: Thursday 22nd November
Time: 16:30
Venue:  Room 255A SUPA VC room

We will be having some mulled wine and mince pies after the talk in the common room. See you all there! :)


Cheers,
Pavi.

06/11/2018

Computational imaging in infrared domain using multiple cameras and more..


Hello everyone!


It's Imaging concepts group's turn to present this week. Dr. Miguel Preciado will be presenting his research on building low-cost infrared camera arrays for enhanced capabilities such as Integral (light-field) imaging, Pixel super-resolution, and multi-spectral imaging. Click here for more details on the topic.


Date: Thursday 8th November
Time: 16:00
Venue:  Room 257

Snacks will be provided in the common room after the seminar.

Cheers,
Pavi.

23/10/2018

Orbital Angular Momentum Reversal due to Extreme Doppler Shifts - Graham Gibson

Hello everyone!

Continuing the Optics Group's turn at hosting seminars will be Graham Gibson. The talk, titled Orbital Angular Momentum Reversal due to Extreme Doppler Shifts, will take place on Thursday 25th October at 16:00 in Room 257. The abstract is as follows:

The linear Doppler shift is familiar to everyone as the change in the observed frequency of an ambulance siren as it passes by. A less well known form is the rotational Doppler shift which is proportional to the relative rotation rate between source and observer, multiplied by the angular momentum carried by the beam. Using an acoustic source of orbital angular momentum we can demonstrate an extreme Doppler shift that is larger than the rest-frame frequency, resulting in the observed frequency becoming negative in the case of a red shift. The emergence of negative frequencies in physical systems is often accompanied by intriguing consequences. For the linear case this is associated with a time reversal of the received signal. For the rotational case it is associated with a handedness reversal of the detected orbital angular momentum.

Snacks will be provided in the common room after the seminar and once again Curler's Rest has been nominated as a pub where discussion can continue after work.

Kyle

09/10/2018

The applications of single-pixel imaging - Steven Johnson & Yiwei Zhang

Hello everyone!

This weeks Seminar will be given by Steven Johnson & Yiwei Zhang on The applications of single-pixel imaging. The talk will take place on Thursday 11th October at 16:00 in Room 257. The abstract is as follows:

Single-pixel imaging enables the photography of phenomena that would be impossible with a traditional camera. Most images are captured with pixelated-arrays such as a CCD or CMOS sensors; whereas single-element detectors can be manufactured to be sensitive to unusual wavelengths, outside the visible spectrum, or have very fast response times. By using a detector with high temporal resolution, events occurring on the order of nanoseconds can be imaged. Using a digital micro-mirror device and a pulsed laser we have applied single-pixel imaging methods to many applications, these include: 3D videos of a scene, imaging the light-in-flight, fluorescence lifetime imaging and duel-band astronomy.

Snacks will be provided in the common room after the seminar and once again Curler's Rest has been nominated as a pub where discussion can continue after work. Turnout was great two weeks ago so I look forward to seeing people there again!

Kyle.

24/09/2018

Imaging with Quantum Entanglement - Christy Simpson

A little late updating the blog.... but the last seminar was given by Christy Simpson, one of the PhD students in the Extreme Light group.  He was talking about our recent work on imaging entangled photons pair using metasurfaces. The talk was based on our arXiv paper which can be found at: https://arxiv.org/abs/1805.01713.

Abstract:
Quantum entanglement is a key resource that can be exploited for a range of applications such
as quantum teleportation, quantum computation and quantum cryptography. However, efforts
to exploit entanglement in imaging systems have so far led to solutions such as ghost imaging,
that have since found classical implementations. Here we demonstrate an optical imaging protocol
that relies uniquely on entanglement: two polarising patterns imprinted and superimposed on a
metasurface are separately imaged only when using entangled photons. Classical light is not able to
distinguish between the two patterns. Entangled single photon imaging of functional metasurfaces
promises advances towards the use of nanostructured subwavelength thin devices in quantum information protocols and a route to efficient quantum state tomography.



27/08/2018

What is the point of boson sampling? - Thomas Brougham


Hello everyone,

This week's presenter is Thomas from Quantum Theory group. Please find details of the talk below:

Title: What is the point of boson sampling?
Time: 3pm on 30th August 2018
Venue: 257 Kelvin Building

Abstract:

In principle, quantum computers could provide an exponential speed-up on certain problems.  This would mean that problems which are currently intractable could be solved efficiently.  For example, one could quickly find the prime factors of extremely large numbers and thus crack RSA cryptography.

While this should work in principle, we don’t have any evidence that such exponential speed-ups would ever be possible in practice.  Realistic experimental situations could render this quantum advantage negligible for interesting problems.  It is for this reason that there is a great interest to show that an exponential quantum advantage can be realized in an experiment.  However, building a full quantum computer is rather difficult.  A simpler approach is to build an optical experiment that efficiently solves one single problem.  This is the idea behind boson sampling, which uses light within a passive linear optical network.   A full experimental demonstration of boson sampling would prove that quantum systems really can efficiently solve seemingly intractable problems.

Realizing a demonstration of boson sampling would be a great technical achievement.  However, the boson sampling problem is not very interesting in of itself.  In this talk I will argue that boson sampling could be used for other tasks.  For example, it can be used within cryptography and to help simulate the dynamics of certain quantum systems.  This would mean that while a boson sampler is not a full quantum computer, it could still have some applications.

See you all there!

Pavi.

08/08/2018

Stuart Wilson on Computational imaging techniques in Micro-endoscopy

Hi all,

This week's talk will be presented by Stuart Wilson, a PhD student from the imaging concepts group. Stuart will be talking about his research on exploiting computational imaging methods to extend the depth-of-field and field-of-view in GRIN based micro-endoscopes. Details below:

Title: Advanced and Computational Imaging Techniques in Microendoscopy

Time and Venue: 3pm, Thu 9th Aug, 257 Kelvin Building

Abstract: The developing field of microendoscopy has the potential to overcome many of the risks associated with current approaches in clinical tissue characterisation and histology. These miniature optical devices enable deep tissue imaging at penetration depths of tens of millimetres – a technique known as optical biopsy – and can reduce the need for invasive surgical procedures. However, the miniaturisation of optical elements provides its own set of unique challenges, effectively degrading imaging performance by imposing a characteristically short depth of field, narrow field of view and a high affinity to optical aberrations. Using computational imaging techniques, we have demonstrated an order of magnitude increase in the depth of field, as well as a wider field of view and reduction in the intrinsic aberrations, resulting in a more robust optical probe for tissue characterisation.

See you all there!

Cheers,
Pavi.