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<category>DPyC SMF</category>
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<announcer>
 <user>
  <title>Dr.</title>
  <name first="Pablo" middle="" last="Roig"></name>
  <organization>Cinvestav</organization>
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<title>RADPyC2023</title>
<description>The Division of Particles and Fields of the Mexican Physical Society (DPyC-SMF) organizes every year the Annual Meeting (RADPyC). This space is dedicated mainly for the exposure of results of graduate students and young researchers working in high energy physics and includes some review talks on the hot topics of the field. This year the meeting will be held in Auditorio José Ádem (Multidisciplinario for Wednesday), Cinvestav, Mexico City, México. The scientific programme will consist of invited and contributed talks, and a poster session. It will begin in the morning of Monday 12 June and end before lunch on Wednesday 14 June.

We will have the following invited talks:

- ALICE status update, Gerardo Herrera Corral (Cinvestav)

- Belle-II status update, Pedro Podesta (UAS)

- CMS status update, Rogelio Reyes (Cinvestav)

- Dirac or Majorana nature of neutrinos, C.S. Kim (Yonsei Univ, South Korea)

- Flavor symmetries, Myriam Mondragón (IF-UNAM)

- Grand Unified Theories, Carlos Vaquera (Conacyt &amp; IF-UG)

- Looking for CEvNS of reactor antineutrinos with the CONNIE Experiment, Alexis Aguilar-Arévalo (ICN-UNAM)

- Machine Learning techniques in high energy colliders, Roger Hernández-Pinto (UAS)

- Theoretical perspectives on hep, Lorenzo Díaz-Cruz (BUAP)

The whole event can be followed by Zoom:

https://us06web.zoom.us/j/82178499407?pwd=WG96WXZ2ek9ScE1pSTRvdHc0RExOUT09

 
Meeting ID: 821 7849 9407

Passcode: 992552

and will be broadcasted via the DPyC facebook account.</description>
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<startDate>2023-06-12T08:30:00</startDate>
<endDate>2023-06-14T18:30:00</endDate>
<creationDate>2023-05-04T17:25:28</creationDate>
<modificationDate>2023-09-03T22:11:22</modificationDate>
<timezone>Mexico/General</timezone>
<chair>
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  <title>Dr.</title>
  <name first="GAbriel" middle="" last="Lopez Castro"></name>
  <organization>cinvestav</organization>
  <emailHash>eab8fa4d5cccb2cb1eec6274ac246efe</emailHash>
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  <title>Dr.</title>
  <name first="Omar" middle="" last="Miranda"></name>
  <organization>Cinvestav</organization>
  <emailHash>b45925fc905052dd8f365f65d9c1cc54</emailHash>
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  <title>Prof.</title>
  <name first="Eduard" middle="" last="De La Cruz Burelo"></name>
  <organization>CINVESTAV-IPN Mexico</organization>
  <emailHash>207484e6583dd9c0c1af2f52ce04fdd8</emailHash>
 </user>
 <user>
  <title>Dr.</title>
  <name first="Pablo" middle="" last="Roig"></name>
  <organization>Cinvestav</organization>
  <emailHash>ea481e58ca9c64e14d7982cb66bcd604</emailHash>
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 <title>Ionization efficiency in silicon from 50 eV to 3 MeV</title>
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   <title>Dr.</title>
   <name first="Sarkis Mobarak" middle="" last="Youssef"></name>
   <organization>Instituto de Ciencias Nucleares UNAM</organization>
   <emailHash>ba2c51bb37e3422bc53b1ca0af730ff4</emailHash>
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   <title>Dr.</title>
   <name first="Sarkis Mobarak" middle="" last="Youssef"></name>
   <organization>Instituto de Ciencias Nucleares UNAM</organization>
   <emailHash>ba2c51bb37e3422bc53b1ca0af730ff4</emailHash>
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   <title>Dr.</title>
   <name first="Alexis" middle="" last="Aguilar-Arevalo"></name>
   <organization>Instituto de Ciencias Nucleares, UNAM</organization>
   <emailHash>fb4a07e67bf154a31195c2bde93f4113</emailHash>
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  <user>
   <title>Dr.</title>
   <name first="D' Olivo Saez" middle="" last="Juan Carlos"></name>
   <organization>Instituto de Ciencias Nucleares UNAM</organization>
   <emailHash>b6a24a128b7ebbffb5cdcfc755e70912</emailHash>
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 <duration>00:15</duration>
 <abstract>Ionization detectors based on detecting low-energy nuclear recoils have become an important recent tool to explore neutrino non-standard interactions, direct dark matter searches, etc. For these detectors, the electron ionization efficiency (quenching factor) is relevant to reconstruct the visible energy events. In this study, we present the recent updates to model the quenching factor in pure silicon by using Lindhard integral equation formalism. Where we introduce an adequate electronic stopping power for low energies, electron straggling effects, and other high energy effects, like Bohr stripping, etc.  Showing a good match with low and high energy quenching factor measurements in silicon that lies from ~0.7 keV to 3 MeV. Finally, we are also going to show recent studies to apply this model to other target materials, e.g. Ge, LXe, and LAr.</abstract>
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