22,184 research outputs found
Acoustic, thermal and flow processes in a water filled nanoporous glasses by time-resolved optical spectroscopy
We present heterodyne detected transient grating measurements on water filled
Vycor 7930 in the range of temperature 20 - 90 degrees C. This experimental
investigation enables to measure the acoustic propagation, the average density
variation due the liquid flow and the thermal diffusion in this water filled
nano-porous material. The data have been analyzed with the model of Pecker and
Deresiewicz which is an extension of Biot model to account for the thermal
effects. In the whole temperature range the data are qualitatively described by
this hydrodynamic model that enables a meaningful insight of the different
dynamic phenomena. The data analysis proves that the signal in the intermediate
and long time-scale can be mainly addressed to the water dynamics inside the
pores. We proved the existence of a peculiar interplay between the mass and the
heat transport that produces a flow and back-flow process inside the
nano-pores. During this process the solid and liquid dynamics have opposite
phase as predicted by the Biot theory for the slow diffusive wave.
Nevertheless, our experimental results confirm that transport of elastic energy
(i.e. acoustic propagation), heat (i.e. thermal diffusion) and mass (i.e.
liquid flow) in a liquid filled porous glass can be described according to
hydrodynamic laws in spite of nanometric dimension of the pores. The data
fitting, based on the hydrodynamic model, enables the extraction of several
parameters of the water-Vycor system, even if some discrepancies appear when
they are compared with values reported in the literature.Comment: 32 pages, 11 figure
THz Dynamics of Nanoconfined Water by Ultrafast Optical Spectroscopy
We investigated the vibrational dynamics and the structural relaxation of
water nanoconfined in porous silica samples with pore size of 4 nm at different
levels of hydration and temperature. We used as spectroscopic technique the
time-resolved optical Kerr effect, which enables to investigate the ultrafast
water dynamics in a wide time (0.1-10 picosecond) or frequency (10-0.1 THz)
window. At low levels of hydration, corresponding to two complete superficial
water layers, no freezing occurs and the water remains mobile at all the
investigated temperatures, while at the fully hydration we witness to a partial
ice formation at about 248 K that coexists with the part of surface water
remaining in the supercooled state. At low hydration, both structural and
vibrational dynamics show significant modifications compared to the bulk liquid
water due to the strong interaction of the water molecules with silica
surfaces. Inner water, instead, reveals relaxation dynamics very similar to the
bulk one.Comment: 10 pages 9 figure
Optical Kerr effect of liquid and supercooled water: the experimental and data analysis perspective
The time-resolved optical Kerr effect spectroscopy (OKE) is a powerful
experimental tool enabling accurate investigations of the dynamic phenomena in
molecular liquids. We introduced innovative experimental and fitting
procedures, that permit a safe deconvolution of sample response function from
the instrumental function. This is a critical issue in order to measure the
dynamics of sample presenting weak signal, e.g. liquid water. We report OKE
data on water measuring intermolecular vibrations and the structural relaxation
processes in an extended temperature range, inclusive of the supercooled
states. The unpreceded data quality makes possible a solid comparison with few
theoretical models; the multi-mode Brownian oscillator model, the Kubo's
discrete random jump model and the schematic mode-coupling model. All these
models produce reasonable good fits of the OKE data of stable liquid water,
i.e. over the freezing point. The features of water dynamics in the OKE data
becomes unambiguous only at lower temperatures, i.e. for water in the
metastable supercooled phase. Hence this data enable a valid comparison between
the model fits. We found that the schematic mode-coupling model provides the
more rigorous and complete model for water dynamics, even if is intrinsic
hydrodynamic approach hide the molecular information
THz time-domain spectroscopic investigations of thin films
THz time domain spectroscopy is a powerful technique enabling the
investigation of different materials in the far-infrared frequency range. Even
if nowadays this technique is well established, its application to very thin
films remains particularly difficult. We investigated the utilization of THz
spectroscopy on samples of micrometric thickness with the aim to disentangle
multiple reflections and to measure with high accuracy the absolute values of
the material parameters. We implemented an experimental and data analysis
procedure that can be applied to free-standing single-layers or multi-layers
samples. Specifically, we report on the experimental investigation by THz time
domain spectroscopy of two samples: a test sample made of two layers of known
thickness and materials; and a second sample, that is of a great interest for
cultural heritage studies, made of a thin film of ink layered on a thicker
support. Moreover, we describe in details the data analysis and fitting
procedures needed to extract the material parameters from the experimental
results.Comment: arXiv admin note: text overlap with arXiv:1610.0102
Planning for Space Station Freedom laboratory payload integration
Space Station Freedom is being developed to support extensive missions involving microgravity research and applications. Requirements for on-orbit payload integration and the simultaneous payload integration of multiple mission increments will provide the stimulus to develop new streamlined integration procedures in order to take advantage of the increased capabilities offered by Freedom. The United States Laboratory and its user accommodations are described. The process of integrating users' experiments and equipment into the United States Laboratory and the Pressurized Logistics Modules is described. This process includes the strategic and tactical phases of Space Station utilization planning. The support that the Work Package 01 Utilization office will provide to the users and hardware developers, in the form of Experiment Integration Engineers, early accommodation assessments, and physical integration of experiment equipment, is described. Plans for integrated payload analytical integration are also described
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