995 research outputs found

    Estrategias basadas en el aprendizaje cooperativo y en la metrología para el laboratorio en el trabajo experimental

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    Se proponen estrategias de secuencia didáctica para mejorar el trabajo experimental con la finalidad de conseguir los objetivos de aprendizaje y los contenidos propuestos. Las estrategias están basadas en el aprendizaje cooperativo y en un control estricto en las mediciones

    Tentative Detection of the Nitrosylium Ion in Space

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    We report the tentative detection in space of the nitrosylium ion, NO+^+. The observations were performed towards the cold dense core Barnard 1-b. The identification of the NO+^+ JJ=2--1 line is supported by new laboratory measurements of NO+^+ rotational lines up to the JJ=8--7 transition (953207.189\,MHz), which leads to an improved set of molecular constants: B0=59597.1379(62)B_0 = 59597.1379(62)\,MHz, D0=169.428(65)D_0 = 169.428(65)\,kHz, and eQq0(N)=6.72(15)eQq_0(\textrm{N}) = -6.72(15)\,MHz. The profile of the feature assigned to NO+^+ exhibits two velocity components at 6.5 and 7.5 km s1^{-1}, with column densities of 1.5×10121.5 \times 10^{12} and 6.5×10116.5\times10^{11} cm2^{-2}, respectively. New observations of NO and HNO, also reported here, allow to estimate the following abundance ratios: XX(NO)/XX(NO+^+)511\simeq511, and XX(HNO)/XX(NO+^+)1\simeq1. This latter value provides important constraints on the formation and destruction processes of HNO. The chemistry of NO+^+ and other related nitrogen-bearing species is investigated by the means of a time-dependent gas phase model which includes an updated chemical network according to recent experimental studies. The predicted abundance for NO+^+ and NO is found to be consistent with the observations. However, that of HNO relative to NO is too high. No satisfactory chemical paths have been found to explain the observed low abundance of HNO. HSCN and HNCS are also reported here with an abundance ratio of 1\simeq1. Finally, we have searched for NNO, NO2_2, HNNO+^+, and NNOH+^+, but only upper limits have been obtained for their column density, except for the latter for which we report a tentative 3-σ\sigma detection.Comment: To appear in the Astrophysical Journal October 20, 201

    La televisión por cable en México : su administración y planeación financiera

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    Tesis (Maestría en Administración de Empresas) UANLUANLhttp://www.uanl.mx

    Panel 1: Behavioral Ethics: The Science

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    Iron Sharpens Iron: A Student’s Perspective on Diversity Outreach

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    POWER (Providing the Outside World with Empowerment and Resources), a student organization within the Texas Tech’s Collegiate Recovery Program established December 2015, elaborated on their members experience when engaging in the important effort of diversity outreach to persons in recovery from substance and alcohol use disorders and eating disorders.  POWER describes their mission statement to provide a foundation and a voice for underrepresented individuals in recovery by delivering positive end results through opportunities for success with a vision to instill hope for a promising future. These members along with the director of the CCRC and another staff member shared what they have found to be most effective and ineffective when presenting to diverse groups in their community. The presenters provided educational and recovery resources used in reaching out but also the varying and tailored approaches and techniques utilized when conducting outreach work to specific marginalized populations.  These materials and techniques have been honed through many presentations and experience since 2015.  During their presentation, student leaders, and members of POWER, shared their own personal experiences of marginalization as well as their experience as presenters/peer leaders

    Deuteration around the ultracompact HII region Mon R2

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    The massive star-forming region Mon R2 hosts the closest ultra-compact HII region that can be spatially resolved with current single-dish telescopes. We used the IRAM-30m telescope to carry out an unbiased spectral survey toward two important positions (namely IF and MP2), in order to studying the chemistry of deuterated molecules toward Mon R2. We found a rich chemistry of deuterated species at both positions, with detections of C2D, DCN, DNC, DCO+, D2CO, HDCO, NH2D, and N2D+ and their corresponding hydrogenated species and isotopologs. Our high spectral resolution observations allowed us to resolve three velocity components: the component at 10 km/s is detected at both positions and seems associated with the layer most exposed to the UV radiation from IRS 1; the component at 12 km/s is found toward the IF position and seems related to the molecular gas; finally, a component at 8.5 km/s is only detected toward the MP2 position, most likely related to a low-UV irradiated PDR. We derived the column density of all the species, and determined the deuterium fractions (Dfrac). The values of Dfrac are around 0.01 for all the observed species, except for HCO+ and N2H+ which have values 10 times lower. The values found in Mon R2 are well explained with pseudo-time-dependent gas-phase model in which deuteration occurs mainly via ion-molecule reactions with H2D+, CH2D+ and C2HD+. Finally, the [H13CN]/[HN13C] ratio is very high (~11) for the 10 km/s component, which also agree with our model predictions for an age of ~0.01-0.1 Myr. The deuterium chemistry is a good tool for studying star-forming regions. The low-mass star-forming regions seem well characterized with Dfrac(N2H+) or Dfrac(HCO+), but it is required a complete chemical modeling to date massive star-forming regions, because the higher gas temperature together with the rapid evolution of massive protostars.Comment: 14 pages of manuscript, 17 pages of apendix, 7 figures in the main text, accepted for publication in A&

    Spatial distribution of small hydrocarbons in the neighborhood of the Ultra Compact HII region Monoceros R2

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    We study the chemistry of small hydrocarbons in the photon-dominated regions (PDRs) associated with the ultra-compact HII region Mon R2. Our goal is to determine the variations of the abundance of small hydrocarbons in a high-UV irradiated PDR and investigate their chemistry. We present an observational study of CH, CCH and c-C3_3H2_2 in Mon R2 combining data obtained with the IRAM 30m telescope and Herschel. We determine the column densities of these species, and compare their spatial distributions with that of polycyclic aromatic hydrocarbon (PAH). We compare the observational results with different chemical models to explore the relative importance of gas-phase, grain-surface and time-dependent chemistry in these environments. The emission of the small hydrocarbons show different patterns. The CCH emission is extended while CH and c-C3_3H2_2 are concentrated towards the more illuminated layers of the PDR. The ratio of the column densities of c-C3_3H2_2 and CCH shows spatial variations up to a factor of a few, increasing from N(cCN(c-C_3HH_2)/N(CCH)0.004)/N(CCH)\approx0.004 in the envelope to a maximum of 0.0150.029\sim0.015-0.029 towards the 8μ\mum emission peak. Comparing these results with other galactic PDRs, we find that the abundance of CCH is quite constant over a wide range of G0_0, whereas the abundance of c-C3_3H2_2 is higher in low-UV PDRs. In Mon R2, the gas-phase steady-state chemistry can account relatively well for the abundances of CH and CCH in the most exposed layers of the PDR, but falls short by a factor of 10 to reproduce c-C3_3H2_2. In the molecular envelope, time-dependent effects and grain surface chemistry play a dominant role in determining the hydrocarbons abundances. Our study shows that CCH and c-C3_3H2_2 present a complex chemistry in which UV photons, grain-surface chemistry and time dependent effects contribute to determine their abundances.Comment: 18 pages, 11 figures, 7 tables. Proposed for acceptance in A&A. Abstract abridge

    Kinematics of the ionized-to-neutral interfaces in Monoceros R2

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    Context. Monoceros R2 (Mon R2), at a distance of 830 pc, is the only ultra-compact H ii region (UC H ii) where its associated photon-dominated region (PDR) can be resolved with the Herschel Space Observatory. Aims. Our aim is to investigate observationally the kinematical patterns in the interface regions (i.e., the transition from atomic to molecular gas) associated with Mon R2. Methods. We used the HIFI instrument onboard Herschel to observe the line profiles of the reactive ions CH+, OH+ and H2O+ toward different positions in Mon R2. We derive the column density of these molecules and compare them with gas-phase chemistry models. Results. The reactive ion CH+ is detected both in emission (at central and red-shifted velocities) and in absorption (at blue-shifted velocities). OH+ is detected in absorption at both blue- and red-shifted velocities, with similar column densities. H2O+ is not detected at any of the positions, down to a rms of 40 mK toward the molecular peak. At this position, we find that the OH+ absorption originates in a mainly atomic medium, and therefore is associated with the most exposed layers of the PDR. These results are consistent with the predictions from photo-chemical models. The line profiles are consistent with the atomic gas being entrained in the ionized gas flow along the walls of the cavity of the H ii region. Based on this evidence, we are able to propose a new geometrical model for this region. Conclusions. The kinematical patterns of the OH+ and CH+ absorption indicate the existence of a layer of mainly atomic gas for which we have derived, for the first time, some physical parameters and its dynamics.Comment: 6 pages, 5 figures. Accepted for publication in A&
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