139 research outputs found
Phase relationship between the long-time beats of free induction decays and spin echoes in solids
Journal ArticleRecent theoretical work on the role of microscopic chaos in the dynamics and relaxation of many-body quantum systems has made several experimentally confirmed predictions about the systems of interacting nuclear spins in solids, focusing in particular on the shapes of spin echo responses measured by nuclear magnetic resonance. These predictions were based on the idea that the transverse nuclear spin decays evolve in a manner governed at long times by the slowest decaying eigenmode of the quantum system, analogous to a chaotic resonance in a classical system. The present paper extends the above investigations both theoretically and experimentally. On the theoretical side, the notion of chaotic eigenmodes is used to make predictions about the relationships between the long-time oscillation phase of the nuclear free induction decay and the amplitudes and phases of spin echoes. On the experimental side, the above predictions are tested for the nuclear spin decays of 19F in CaF2 crystals and 129Xe in frozen xenon. Good agreement between the theory and the experiment is found
Phase relationship between the long-time beats of free induction decays and spin echoes in solids
Recent theoretical work on the role of microscopic chaos in the dynamics and
relaxation of many-body quantum systems has made several experimentally
confirmed predictions about the systems of interacting nuclear spins in solids,
focusing, in particular, on the shapes of spin echo responses measured by
nuclear magnetic resonance (NMR). These predictions were based on the idea that
the transverse nuclear spin decays evolve in a manner governed at long times by
the slowest decaying eigenmode of the quantum system, analogous to a chaotic
resonance in a classical system. The present paper extends the above
investigations both theoretically and experimentally. On the theoretical side,
the notion of chaotic eigenmodes is used to make predictions about the
relationships between the long-time oscillation phase of the nuclear free
induction decay (FID) and the amplitudes and phases of spin echoes. On the
experimental side, the above predictions are tested for the nuclear spin decays
of F-19 in CaF2 crystals and Xe-129 in frozen xenon. Good agreement between the
theory and the experiment is found.Comment: 20 pages, 9 figures, significant new experimental content in
comparison with version
Asymptotic and intermediate long-time behavior of nuclear free induction decays in polycrystalline solids and powders
Free induction decay (FID) measured by nuclear magnetic resonance (NMR) in a
polycrystalline solid is the isotropic average of the FIDs for individual
single crystallites. It has been recently proposed theoretically and verified
experimentally that the long-time behavior of single-crystal FIDs has the
universal form of exponentially decaying sinusoidal oscillations.
Polycrystalline averaging complicates the situation theoretically, while the
available experimental evidence is also ambiguous. Exponentially decaying
sinusoidal oscillations have been observed for Xe-129 in polycrystalline solid
xenon but not for F-19 in the powder of CaF2. In this paper, we present the
first principles FID calculations for the powders of both CaF2 and solid xenon.
In both cases, the asymptotic long-time behavior has the expected form of
exponentially decaying sinusoidal oscillations, which is determined by the
single crystallite FID with the slowest exponential decay. However, this
behavior appears only at rather small values of the signal that have not yet
been measured in experiments. At intermediate times accessible experimentally,
a polycrystalline FID depends on the distribution of the exponential decay
constants and oscillation frequencies for single crystallite FIDs. In CaF2,
these parameters are relatively broadly distributed, and as a result, the
sinusoidal long-time oscillations become somewhat washed out. In contrast, the
single crystallite parameters are more clustered in solid xenon, and, as a
result, the experimentally observable range is characterized by well-defined
oscillation frequency and exponential decay constant even though both of these
parameters do not represent the true long-time behavior. The above difference
of the intermediate FID behavior originates from the difference of the crystal
structures of solid xenon and CaF2.Comment: 16 pages, 5 figure
Performance evaluation of a multicast-based solution for wireless resources discovery N. Blefari-Melazzi
Abstract --An improved IP network service (e.g., for real time services) is expected in the near future in both wired and wireless environment. In this regard, the handover capabilities are extremely important and challenging, in particular if their use in operation must be seamless. One of the main steps to achieve seamless handover is the quick discovery of IP addresses and service capabilities of candidate access routers to hand over to. In this paper, we present a push-mode-multicast based solution to discover and timely update information about wireless resources. We evaluate the effectiveness of the proposed approach in terms of signaling burden and discovery time with respect to solutions already presented in literature
Temperature Tolerance and Stress Proteins as Mechanisms of Invasive Species Success
Invasive species are predicted to be more successful than natives as temperatures increase with climate change. However, few studies have examined the physiological mechanisms that theoretically underlie this differential success. Because correlative evidence suggests that invasiveness is related to the width of a species' latitudinal range, it has been assumed – but largely untested – that range width predicts breadth of habitat temperatures and physiological thermotolerances. In this study, we use empirical data from a marine community as a case study to address the hypotheses that (1) geographic temperature range attributes are related to temperature tolerance, leading to greater eurythermality in invasive species, and (2) stress protein expression is a subcellular mechanism that could contribute to differences in thermotolerance. We examined three native and six invasive species common in the subtidal epibenthic communities of California, USA. We assessed thermotolerance by exposing individuals to temperatures between 14°C and 31°C and determining the temperature lethal to 50% of individuals (LT50) after a 24 hour exposure. We found a strong positive relationship between the LT50 and both maximum habitat temperatures and the breadth of temperatures experience across the species' ranges. In addition, of the species in our study, invasives tended to inhabit broader habitat temperature ranges and higher maximum temperatures. Stress protein expression may contribute to these differences: the more thermotolerant, invasive species Diplosoma listerianum expressed higher levels of a 70-kDa heat-shock protein than the less thermotolerant, native Distaplia occidentalis for which levels declined sharply above the LT50. Our data highlight differences between native and invasive species with respect to organismal and cellular temperature tolerances. Future studies should address, across a broader phylogenetic and ecosystem scope, whether this physiological mechanism has facilitated the current success of invasive species and could lead to greater success of invasives than native species as global warming continues
Is Pretenure Interdisciplinary Research a Career Risk?
Despite initiatives to promote interdisciplinary research, early-career academics continue to perceive professional risks to working at the interface between traditional disciplines. Unexpectedly, the inherent practical challenges of interdisciplinary scholarship, such as new methodologies and lexicons, are not the chief source of the perceived risk. The perception of risk is pervasive across disciplines, and it persists despite efforts to support career development for individuals with common interests [Mitchell and Weiler, 2011]. Suggestions that interdisciplinary work can go unrewarded in academia [Clark et al., 2011] foster a concern that targeting interdisciplinary questions, such as those presented by climate change, will pose problems for acquiring and succeeding in a tenure-track position. If self-preservation limits the questions posed by early-career academics, a perceived career risk is as damaging as a real one to new transdisciplinary initiatives. Thus, institutions should address the source of this perception whether real or specious
Spatiotemporal Variation in Avian Migration Phenology: Citizen Science Reveals Effects of Climate Change
A growing number of studies have documented shifts in avian migratory phenology in response to climate change, and yet there is a large amount of unexplained variation in the magnitude of those responses across species and geographic regions. We use a database of citizen science bird observations to explore spatiotemporal variation in mean arrival dates across an unprecedented geographic extent for 18 common species in North America over the past decade, relating arrival dates to mean minimum spring temperature. Across all species and geographic locations, species shifted arrival dates 0.8 days earlier for every °C of warming of spring temperature, but it was common for some species in some locations to shift as much as 3–6 days earlier per °C. Species that advanced arrival dates the earliest in response to warming were those that migrate more slowly, short distance migrants, and species with broader climatic niches. These three variables explained 63% of the interspecific variation in phenological response. We also identify a latitudinal gradient in the average strength of phenological response, with species shifting arrival earlier at southern latitudes than northern latitudes for the same degree of warming. This observation is consistent with the idea that species must be more phenologically sensitive in less seasonal environments to maintain the same degree of precision in phenological timing
Ocular lesions in HTLV-1 infected patients from Salvador, State of Bahia: the city with the highest prevalence of this infection in Brazil
Natural hazards in Australia: heatwaves
As part of a special issue on natural hazards, this paper reviews the current state of scientific knowledge of Australian heatwaves. Over recent years, progress has been made in understanding both the causes of and changes to heatwaves. Relationships between atmospheric heatwaves and large-scale and synoptic variability have been identified, with increasing trends in heatwave intensity, frequency and duration projected to continue throughout the 21st century. However, more research is required to further our understanding of the dynamical interactions of atmospheric heatwaves, particularly with the land surface. Research into marine heatwaves is still in its infancy, with little known about driving mechanisms, and observed and future changes. In order to address these knowledge gaps, recommendations include: focusing on a comprehensive assessment of atmospheric heatwave dynamics; understanding links with droughts; working towards a unified measurement framework; and investigating observed and future trends in marine heatwaves. Such work requires comprehensive and long-term collaboration activities. However, benefits will extend to the international community, thus addressing global grand challenges surrounding these extreme events
Climate-driven range extension of Amphistegina (protista, foraminiferida) : models of current and predicted future ranges
© The Author(s), 2013. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in PLoS ONE 8 (2013): e54443, doi:10.1371/journal.pone.0054443.Species-range expansions are a predicted and realized consequence of global climate change. Climate warming and the poleward widening of the tropical belt have induced range shifts in a variety of marine and terrestrial species. Range expansions may have broad implications on native biota and ecosystem functioning as shifting species may perturb recipient communities. Larger symbiont-bearing foraminifera constitute ubiquitous and prominent components of shallow water ecosystems, and range shifts of these important protists are likely to trigger changes in ecosystem functioning. We have used historical and newly acquired occurrence records to compute current range shifts of Amphistegina spp., a larger symbiont-bearing foraminifera, along the eastern coastline of Africa and compare them to analogous range shifts currently observed in the Mediterranean Sea. The study provides new evidence that amphisteginid foraminifera are rapidly progressing southwestward, closely approaching Port Edward (South Africa) at 31°S. To project future species distributions, we applied a species distribution model (SDM) based on ecological niche constraints of current distribution ranges. Our model indicates that further warming is likely to cause a continued range extension, and predicts dispersal along nearly the entire southeastern coast of Africa. The average rates of amphisteginid range shift were computed between 8 and 2.7 km year−1, and are projected to lead to a total southward range expansion of 267 km, or 2.4° latitude, in the year 2100. Our results corroborate findings from the fossil record that some larger symbiont-bearing foraminifera cope well with rising water temperatures and are beneficiaries of global climate change.This work was supported by grants from the German Science Foundation (DFG; www.dfg.de) to ML and SL (LA 884/10-1, LA 884/5-1)
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