R. A. Hernandez

ORCID: 0000-0002-5348-3099
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About
Contact & Profiles
Research Areas
  • Adipose Tissue and Metabolism
  • Plasma Diagnostics and Applications
  • Liver Disease Diagnosis and Treatment
  • Acute Myocardial Infarction Research
  • Cardiac Imaging and Diagnostics
  • Spectroscopy and Laser Applications
  • Particle Detector Development and Performance
  • Laser Design and Applications
  • Liver Diseases and Immunity
  • Quantum Mechanics and Non-Hermitian Physics
  • Esophageal and GI Pathology
  • Quantum Electrodynamics and Casimir Effect
  • Apelin-related biomedical research
  • Noncommutative and Quantum Gravity Theories
  • Coronary Interventions and Diagnostics
  • Biochemical effects in animals
  • Radiation Detection and Scintillator Technologies
  • Gastroesophageal reflux and treatments
  • Liver Disease and Transplantation

Hospital Universitario Ramón y Cajal
2022-2023

California State University, Northridge
2017

Universidad Nacional de Colombia
2012

Hospital Clínico San Carlos
2007

In patients with acute myocardial infarction and ST-segment elevation (STEMI), primary angioplasty is frequently not available or performed beyond the recommended time limit. We designed a non-inferiority, randomized, controlled study to evaluate whether lytic-based early routine represents reasonable reperfusion option for victims of STEMI irrespective geographic logistical barriers.A total 212 were randomized full tenecteplase followed by stenting within 3-12 h randomization (early...

10.1093/eurheartj/ehl461 article EN European Heart Journal 2007-01-23

The sPHENIX Time Projection Chamber Outer Tracker (TPOT) is a Micromegas based detector. It part of the experiment that aims to facilitate calibration Chamber, in particular correction time-averaged and beam-induced distortions electron drift. This paper describes detector mission, setup, construction, installation, commissioning performance during first year data taking.

10.48550/arxiv.2403.13789 preprint EN arXiv (Cornell University) 2024-03-20

The main goal of this work is to study the Dirac oscillator as a quantum field using canonical formalism theory and develop quantization procedure for system in $(1+1)$ $(3+1)$ dimensions. This possible because characterized by absence Klein paradox completeness its eigenfunctions. We show that can be seen constituted infinite degrees freedom which are identified decoupled linear harmonic oscillators. observe while free energy quanta oscillators relativistic energies particles,

10.48550/arxiv.1201.3389 preprint EN other-oa arXiv (Cornell University) 2012-01-01
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