{"id":21374,"date":"2022-01-10T08:39:49","date_gmt":"2022-01-10T07:39:49","guid":{"rendered":"https:\/\/us.edu.pl\/wydzial\/wnst\/?page_id=21374"},"modified":"2023-01-20T14:00:30","modified_gmt":"2023-01-20T13:00:30","slug":"physics-2","status":"publish","type":"page","link":"https:\/\/us.edu.pl\/wydzial\/wnst\/en\/strona-glowna\/realizowane-projekty\/projekty-dydaktyczne\/vinci\/physics-0\/physics-2\/","title":{"rendered":"online lectures"},"content":{"rendered":"
[vc_row][vc_column]\r\n
\n<\/div>\r\n <\/div>\r\n <\/div>[\/vc_column][\/vc_row][vc_row el_class=”container”][vc_column][vc_btn title=”Edition 2023″ style=”outline-custom” outline_custom_color=”#9b132a” outline_custom_hover_background=”#9b132a” outline_custom_hover_text=”#ffffff” shape=”square” size=”lg” align=”center” button_block=”true”][vc_tta_accordion color=”white” c_icon=”triangle” active_section=”10″ no_fill=”true” collapsible_all=”true” el_id=”zmiana-koloru”][vc_tta_section title=”Studies of the phase diagram of strongly interacting matterat the CERN SPS – 22 years after discovery of a new state of matter” tab_id=”1667727402858-b42572ec-1ba2″]\r\n
Twenty two years ago, the seven experiments on CERN’s Heavy Ion programme at the Super Proton Synchrotron (NA44, NA45\/CEREA,NA49, NA50,NA52\/NEWMASS, WA97\/NA57 and WA98) combining their data were able to characterise a new state of matter, verifying an important prediction of the theory of fundamental forces between quarks.<\/p>\n
This talk briefly reviews studies of the phase diagram of strongly interacting matter with relativistic nuclear collisions at the CERN Super Proton Synchrotron which followed the observation of the quark-gluon plasma. The first ten years of this period was mostly influenced by the results of the NA49 experiment, the second period was dominated by NA61\/SHINE. I will close by suggesting priorities for future measurements.<\/p>\n<\/div>\r\n <\/div>\r\n <\/div>[\/vc_tta_section][vc_tta_section title=”Introduction to Astroparticle physics” tab_id=”1672665997011-72b0c39d-db50″]\r\n
This lecture will introduce astroparticle physics focusing on cosmic rays and astrophysical neutrinos. It covers the cosmic speed limit (Greisen Zatsepin-Kuzmin Cutoff), gigantic avalanches of elementary particles (air showers), 3000 km2<\/sup> large particle detectors (Pierre Auger Observatory), cosmic neutrinos (and how to find them) and astrophysical accelerators achieving 10,000,000 times larger beam energies than the Large Hadron Collider at CERN.<\/p>\n<\/div>\r\n <\/div>\r\n <\/div>[\/vc_tta_section][vc_tta_section title=”SAXS (small angle X-ray scattering) Structural Investigation of soft nanoparticles for new nanomedicines applications” tab_id=”1672665834524-87c0aa7a-3632″]\r\n Thes scattering of X-rays at small angles (SAXS) is a unique technique to study emulsion phases and nanoparticles. The lecture will present the method with practical details and applications to modern pharmaceutics.<\/span>\u00a0<\/span><\/p>\n Continuous production of drug delivery systems (DDS) assisted by microfluidics has drawn a growing interest because of the high reproducibility, low batch-to-batch variation of formulations, narrow and controlled particle size distribution and scale-up facilities induced by this process. Besides, microfluidics offers opportunities for high throughput screening of process parameters and the implementation of Process Analytical Technologies (PAT) as close to the product.<\/span>\u00a0<\/span><\/p>\n In this context, we propose to spotlight the GALECHIP concept [1] through the development of an instrumented microfluidic pilot considered as a Galenic Lab-on-Chip to formulate nanomedicines, such as Lipid Nano-Emulsions (LNE), under controlled process conditions which are essential to obtain DDS with controlled sizes and properties.<\/span>\u00a0<\/span><\/p>\n With this microfluidic pilot, we conducted:<\/span>\u00a0<\/span><\/p>\n \n<\/div>\r\n <\/div>\r\n <\/div>[\/vc_tta_section][vc_tta_section title=”Structural properties using beamline at the SOLEIL synchrotron” tab_id=”1667727402916-89448c87-9e00″]\r\n To <\/span>understand<\/span> the <\/span>physical<\/span> properties<\/span> of materials <\/span>or<\/span> nanomaterials<\/span> we <\/span>need<\/span> to <\/span>know<\/span> perfectly<\/span> their<\/span> structure<\/span> properties<\/span>. In <\/span>some<\/span> cases<\/span>, X-<\/span>ray<\/span> diffraction<\/span>, Neutron <\/span>diffraction<\/span> and <\/span>even<\/span> DFT <\/span>calculations<\/span> cannot<\/span> specify<\/span> certain<\/span> structural<\/span> properties<\/span>. One of the <\/span>solutions<\/span> is<\/span> to <\/span>use<\/span> large<\/span> instruments<\/span> facilities<\/span> like<\/span> the synchrotron SOLEIL. We <\/span>will<\/span> give<\/span> some<\/span> examples<\/span> of <\/span>intermetallic<\/span> nanomaterials<\/span> for <\/span>which<\/span> the <\/span>use<\/span> of the synchrotron <\/span>is<\/span> essential<\/span>.<\/span><\/span><\/p>\n<\/div>\r\n <\/div>\r\n <\/div>[\/vc_tta_section][\/vc_tta_accordion][vc_empty_space height=”4″ css=”.vc_custom_1667727400383{background-color: #002e5a !important;}”][vc_empty_space][vc_btn title=”Edition 2022″ style=”outline-custom” outline_custom_color=”#9b132a” outline_custom_hover_background=”#9b132a” outline_custom_hover_text=”#ffffff” shape=”square” size=”lg” align=”center” button_block=”true”][vc_tta_accordion color=”white” c_icon=”triangle” active_section=”10″ no_fill=”true” collapsible_all=”true” el_id=”zmiana-koloru”][vc_tta_section title=”Studies of the phase diagram of strongly interacting matter at the CERN SPS – 22 years after the discovery of a new state of matter” tab_id=”1672130565052-248ce3e2-9097″]\r\n Twenty two years ago, the seven experiments on CERN’s Heavy Ion programme at the Super Proton Synchrotron (NA44, NA45\/CEREA,NA49, NA50,NA52\/NEWMASS, WA97\/NA57 and WA98) combining their data were able to characterise a new state of matter, verifying an important prediction of the theory of fundamental forces between quarks.<\/p>\n This talk briefly reviews studies of the phase diagram of strongly interacting matter with relativistic nuclear collisions at the CERN Super Proton Synchrotron which followed the observation of the quark-gluon plasma. The first ten years of this period was mostly influenced by the results of the NA49 experiment, the second period was dominated by NA61\/SHINE. I will close by suggesting priorities for future measurements.<\/p>\n<\/div>\r\n <\/div>\r\n <\/div>[\/vc_tta_section][vc_tta_section title=”SAXS (small angle X-ray scattering) Structural Investigation of soft nanoparticles for new nanomedicines applications” tab_id=”1672130565011-cf661210-76d9″]\r\n Thes scattering of X-rays at small angles (SAXS) is a unique technique to study emulsion phases and nanoparticles. The lecture will present the method with practical details and applications to modern pharmaceutics.<\/span>\u00a0<\/span><\/p>\n Continuous production of drug delivery systems (DDS) assisted by microfluidics has drawn a growing interest because of the high reproducibility, low batch-to-batch variation of formulations, narrow and controlled particle size distribution and scale-up facilities induced by this process. Besides, microfluidics offers opportunities for high throughput screening of process parameters and the implementation of Process Analytical Technologies (PAT) as close to the product.<\/span>\u00a0<\/span><\/p>\n In this context, we propose to spotlight the GALECHIP concept [1] through the development of an instrumented microfluidic pilot considered as a Galenic Lab-on-Chip to formulate nanomedicines, such as Lipid Nano-Emulsions (LNE), under controlled process conditions which are essential to obtain DDS with controlled sizes and properties.<\/span>\u00a0<\/span><\/p>\n With this microfluidic pilot, we conducted:<\/span>\u00a0<\/span><\/p>\n \n<\/div>\r\n <\/div>\r\n <\/div>[\/vc_tta_section][vc_tta_section title=”Structural properties using beamline at the SOLEIL synchrotron” tab_id=”1672130565032-185c2d57-23c4″]\r\n To <\/span>understand<\/span> the <\/span>physical<\/span> properties<\/span> of materials <\/span>or<\/span> nanomaterials<\/span> we <\/span>need<\/span> to <\/span>know<\/span> perfectly<\/span> their<\/span> structure<\/span> properties<\/span>. In <\/span>some<\/span> cases<\/span>, X-<\/span>ray<\/span> diffraction<\/span>, Neutron <\/span>diffraction<\/span> and <\/span>even<\/span> DFT <\/span>calculations<\/span> cannot<\/span> specify<\/span> certain<\/span> structural<\/span> properties<\/span>. One of the <\/span>solutions<\/span> is<\/span> to <\/span>use<\/span> large<\/span> instruments<\/span> facilities<\/span> like<\/span> the synchrotron SOLEIL. We <\/span>will<\/span> give<\/span> some<\/span> examples<\/span> of <\/span>intermetallic<\/span> nanomaterials<\/span> for <\/span>which<\/span> the <\/span>use<\/span> of the synchrotron <\/span>is<\/span> essential<\/span>.<\/span><\/span><\/p>\n<\/div>\r\n <\/div>\r\n <\/div>[\/vc_tta_section][\/vc_tta_accordion][\/vc_column][\/vc_row]<\/p>","protected":false},"excerpt":{"rendered":" [vc_row][vc_column][\/vc_column][\/vc_row][vc_row][vc_column][\/vc_column][\/vc_row][vc_row el_class=”container”][vc_column][vc_btn title=”Edition 2023″ style=”outline-custom” outline_custom_color=”#9b132a” outline_custom_hover_background=”#9b132a” outline_custom_hover_text=”#ffffff” shape=”square” size=”lg” align=”center” button_block=”true”][vc_tta_accordion color=”white” c_icon=”triangle” active_section=”10″ no_fill=”true” collapsible_all=”true” el_id=”zmiana-koloru”][vc_tta_section title=”Studies of the phase diagram of strongly interacting matterat the CERN SPS – 22 years after discovery of a new state of matter” tab_id=”1667727402858-b42572ec-1ba2″][\/vc_tta_section][vc_tta_section title=”Introduction to Astroparticle physics” tab_id=”1672665997011-72b0c39d-db50″][\/vc_tta_section][vc_tta_section title=”SAXS (small angle X-ray scattering) Structural Investigation of […]<\/p>\n\n
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