Understanding how organisms can cope with environmental conditions is a mainstream topic, even more so with the current period of rapid climate changes. Anthropogenic global warming induces an increase of averaged temperature, but also an increase of extreme climatic events, such as heatwaves. These quick and large temperature variations could have dramatic consequences on organisms inhabiting freshwater ecosystems, by increasing the metabolic cost of living. Indeed, ectotherms, such as fish, exhibit a metabolic rate closely related to the water temperature. Warmer temperatures induce higher energy expenditure, and therefore higher costs of maintenance and lower energy available for in vivoperformance. Intuitively, whole animal performance is linked to cellular efficiency to provide energy, but this relationship is still unclear. Through various studies conducted in our lab combining in vivo experiments (swimming performance, respirometry) and in vitro protocols (high-resolution oxygraphy, mitochondrial efficiency), we dealt with acute vs. chronic, stable, or variable environmental acclimation, to highlight how cellular bioenergetics can show plastic coping responses to let fish perform under environmental constrains. Topic: Zoom meeting – DEPE animation scientifique – BEEPS Join Zoom Meetinghttps://cnrs.zoom.us/j/92785456777?pwd=NU1FQzdwVTFERXZqMG5LRXJRSUlQZz09 Meeting ID: 927 8545 6777Passcode: LT1fEU
https://indico.in2p3.fr/event/31857/
Début : 14/03/2024 à 11:00
Fin : 14/03/2024 à 12:00
Prochains évènements
Retour à l'agenda3rd Joint IceCube-KM3NeT-JUNO NMO Workshop
https://indico.in2p3.fr/event/40032/
Probing Photon Indistinguishability with Fast Spectrometers
Speakers: Andrei Nomerotski (Czech Technical University in Prague) Quantum technologies critically rely on the ability to detect and identify indistinguishable photons, as only such photons exhibit high-contrast quantum interference. We present a new approach to real-time photon indistinguishability detection based on ultrafast spectro-temporal imaging using pixelated detectors. The concept maps each detected photon onto a well-defined time–frequency (t,ω) mode corresponding to an individual pixel, which effectively acts as a selector of the quantum state, enabling direct identification of interfering photon pairs as well as higher-order correlations. The implemented system combines an optical spectrometer with a fast pixelated readout based on a SPAD linear array (LinoSPAD2), achieving ~40 ps timing and ~40 pm spectral resolution. We report the first demonstration of massively parallel, wavelength-resolved photon bunching in two-photon Hanbury Brown–Twiss interference measurements for broadband light, simultaneously across ~100 independent spectral channels - an improvement of more than an order of magnitude over previous results [1]. This performance approaches the Heisenberg–Gabor limit for joint time–frequency measurements, a regime not accessible with existing detector technologies. We further present ongoing efforts to enhance spectral resolution using an echelle spectrometer architecture, targeting the regime where each pixel corresponds to a single spectro-temporal mode, as well as discussing prospects for extending the concept to fast two-dimensional detector arrays at Heisenberg–Gabor limit, targeting timing resolutions of ~20 ps and spectral resolutions of ~5 pm. A key feature of this approach is the ability to perform indistinguishability analysis and extend it toward real-time processing, drastically reducing data volumes by selecting only relevant photon events. Importantly, the method naturally generalizes beyond two-photon interference to genuine multiphoton correlation measurements, including photon-number-resolved events within single pixels. This technology opens new opportunities across multiple domains, including wavelength-multiplexed quantum communication, long-baseline astronomical interferometry, and quantum imaging and sensing with enhanced background rejection in photon-starved conditions. [1] Hanbury Brown-Twiss interference with massively parallel spectral multiplexing for broadband light, S Kulkov et al, preprint arXiv:2509.05649 (2025). https://indico.in2p3.fr/event/40519/
