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1.
Med Lav ; 100 Suppl 1: 55-8, 2009.
Artigo em Italiano | MEDLINE | ID: mdl-19848105

RESUMO

BACKGROUND: Tuberculosis transmission is a significant hazard in healthcare settings. METHODS: Risk factors suggested by CDC guidelines in 1994, which were adopted by the Italian Ministry of Health, were assessed in 29 centres via questionnaires in 2005. RESULTS: Few centers were equipped with negative pressure, respiratory isolation rooms. Half of the centres had high or ongoing risk. CONCLUSIONS: The hazard is underestimated mostly because of a high number of initially undiagnosed TB patients.


Assuntos
Transmissão de Doença Infecciosa do Paciente para o Profissional/estatística & dados numéricos , Tuberculose/transmissão , Instalações de Saúde , Humanos , Itália , Medição de Risco , Tuberculose/epidemiologia
2.
Phys Rev Lett ; 92(6): 065005, 2004 Feb 13.
Artigo em Inglês | MEDLINE | ID: mdl-14995248

RESUMO

We demonstrate three-dimensional imaging of antiprotons in a Penning trap, by reconstructing annihilation vertices from the trajectories of the charged annihilation products. The unique capability of antiparticle imaging has allowed, for the first time, the observation of the spatial distribution of the particle loss in a Penning trap. The radial loss of antiprotons on the trap wall is localized to small spots, strongly breaking the azimuthal symmetry expected for an ideal trap. Our observations have important implications for detection of antihydrogen annihilations.

3.
Nature ; 419(6906): 456-9, 2002 Oct 03.
Artigo em Inglês | MEDLINE | ID: mdl-12368849

RESUMO

A theoretical underpinning of the standard model of fundamental particles and interactions is CPT invariance, which requires that the laws of physics be invariant under the combined discrete operations of charge conjugation, parity and time reversal. Antimatter, the existence of which was predicted by Dirac, can be used to test the CPT theorem-experimental investigations involving comparisons of particles with antiparticles are numerous. Cold atoms and anti-atoms, such as hydrogen and antihydrogen, could form the basis of a new precise test, as CPT invariance implies that they must have the same spectrum. Observations of antihydrogen in small quantities and at high energies have been reported at the European Organization for Nuclear Research (CERN) and at Fermilab, but these experiments were not suited to precision comparison measurements. Here we demonstrate the production of antihydrogen atoms at very low energy by mixing trapped antiprotons and positrons in a cryogenic environment. The neutral anti-atoms have been detected directly when they escape the trap and annihilate, producing a characteristic signature in an imaging particle detector.

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