1,835 research outputs found
A clock network for geodesy and fundamental science
Leveraging the unrivaled performance of optical clocks in applications in
fundamental physics beyond the standard model, in geo-sciences, and in
astronomy requires comparing the frequency of distant optical clocks
truthfully. Meeting this requirement, we report on the first comparison and
agreement of fully independent optical clocks separated by 700 km being only
limited by the uncertainties of the clocks themselves. This is achieved by a
phase-coherent optical frequency transfer via a 1415 km long telecom fiber link
that enables substantially better precision than classical means of frequency
transfer. The fractional precision in comparing the optical clocks of three
parts in was reached after only 1000 s averaging time, which is
already 10 times better and more than four orders of magnitude faster than with
any other existing frequency transfer method. The capability of performing high
resolution international clock comparisons paves the way for a redefinition of
the unit of time and an all-optical dissemination of the SI-second.Comment: 14 pages, 3 figures, 1 tabl
Investigation of the power-clock network impact on adiabatic logic
International audienceAdiabatic logic is architecture design style which seems to be a good candidate to reduce the power consumption of digital cores. One key difference is that the power supply is also the clock signal. A lot of work on different adiabatic logic families has been done but the impact of the power supply and the power-clock network still remains to be studied. In this paper, we investigate the power-clock network effect on adiabatic energy dissipation. We derive closed-form analytical formulas to represent the output signal voltage and energy dissipation while taking into account the parasitic impedance of the power-clock network with respect to switching frequency such that adiabatic conditions are still met. Experiments, based on simulation, show that the power-clock network impacts both the energy efficiency of the circuit and its frequency
Quantum network of neutral atom clocks
We propose a protocol for creating a fully entangled GHZ-type state of
neutral atoms in spatially separated optical atomic clocks. In our scheme,
local operations make use of the strong dipole-dipole interaction between
Rydberg excitations, which give rise to fast and reliable quantum operations
involving all atoms in the ensemble. The necessary entanglement between distant
ensembles is mediated by single-photon quantum channels and collectively
enhanced light-matter couplings. These techniques can be used to create the
recently proposed quantum clock network based on neutral atom optical clocks.
We specifically analyze a possible realization of this scheme using neutral Yb
ensembles.Comment: 13 pages, 11 figure
Modeling of thermally induced skew variations in clock distribution network
Clock distribution network is sensitive to large thermal gradients on the die as the performance of both clock buffers and interconnects are affected by temperature. A robust clock network design relies on the accurate analysis of clock skew subject to temperature variations. In this work, we address the problem of thermally induced clock skew modeling in nanometer CMOS technologies. The complex thermal behavior of both buffers and interconnects are taken into account. In addition, our characterization of the temperature effect on buffers and interconnects provides valuable insight to designers about the potential impact of thermal variations on clock networks. The use of industrial standard data format in the interface allows our tool to be easily integrated into existing design flow
A relativistic analysis of clock synchronization
The relativistic conversion between coordinate time and atomic time is reformulated to allow simpler time calculations relating analysis in solar-system barycentric coordinates (using coordinate time) with earth-fixed observations (measuring earth-bound proper time or atomic time.) After an interpretation of terms, this simplified formulation, which has a rate accuracy of about 10 to the minus 15th power, is used to explain the conventions required in the synchronization of a world wide clock network and to analyze two synchronization techniques-portable clocks and radio interferometry. Finally, pertinent experiment tests of relativity are briefly discussed in terms of the reformulated time conversion
Circuit development in the master clock network of mammals
Daily rhythms are generated by the circadian timekeeping system, which is orchestrated by the master circadian clock in the suprachiasmatic nucleus (SCN) of mammals. Circadian timekeeping is endogenous and does not require exposure to external cues during development. Nevertheless, the circadian system is not fully formed at birth in many mammalian species and it is important to understand how SCN development can affect the function of the circadian system in adulthood. The purpose of the current review is to discuss the ontogeny of cellular and circuit function in the SCN, with a focus on work performed in model rodent species (i.e., mouse, rat, and hamster). Particular emphasis is placed on the spatial and temporal patterns of SCN development that may contribute to the function of the master clock during adulthood. Additional work aimed at decoding the mechanisms that guide circadian development is expected to provide a solid foundation upon which to better understand the sources and factors contributing to aberrant maturation of clock function
High-performance and Low-power Clock Network Synthesis in the Presence of Variation.
Semiconductor technology scaling requires continuous evolution of all aspects of physical
design of integrated circuits. Among the major design steps, clock-network synthesis
has been greatly affected by technology scaling, rendering existing methodologies inadequate.
Clock routing was previously sufficient for smaller ICs, but design difficulty and
structural complexity have greatly increased as interconnect delay and clock frequency increased
in the 1990s. Since a clock network directly influences IC performance and often
consumes a substantial portion of total power, both academia and industry developed synthesis
methodologies to achieve low skew, low power and robustness from PVT variations.
Nevertheless, clock network synthesis under tight constraints is currently the least automated
step in physical design and requires significant manual intervention, undermining
turn-around-time. The need for multi-objective optimization over a large parameter space
and the increasing impact of process variation make clock network synthesis particularly
challenging.
Our work identifies new objectives, constraints and concerns in the clock-network synthesis
for systems-on-chips and microprocessors. To address them, we generate novel
clock-network structures and propose changes in traditional physical-design flows. We
develop new modeling techniques and algorithms for clock power optimization subject
to tight skew constraints in the presence of process variations. In particular, we offer
SPICE-accurate optimizations of clock networks, coordinated to reduce nominal skew below
5 ps, satisfy slew constraints and trade-off skew, insertion delay and power, while
tolerating variations. To broaden the scope of clock-network-synthesis optimizations, we
propose new techniques and a methodology to reduce dynamic power consumption by
6.8%-11.6% for large IC designs with macro blocks by integrating clock network synthesis
within global placement. We also present a novel non-tree topology that is 2.3x more
power-efficient than mesh structures. We fuse several clock trees to create large-scale redundancy
in a clock network to bridge the gap between tree-like and mesh-like topologies.
Integrated optimization techniques for high-quality clock networks described in this dissertation
strong empirical results in experiments with recent industry-released benchmarks
in the presence of process variation. Our software implementations were recognized with
the first-place awards at the ISPD 2009 and ISPD 2010 Clock-Network Synthesis Contests
organized by IBM Research and Intel Research.Ph.D.Electrical EngineeringUniversity of Michigan, Horace H. Rackham School of Graduate Studieshttp://deepblue.lib.umich.edu/bitstream/2027.42/89711/1/ejdjsy_1.pd
Connectivity, Organization, and Network Coordination of the Drosophila Central Circadian Clock.
Daily rhythms in behavior and physiology are orchestrated by a network of circadian clock neurons. Neuronal connections within this network produce coherence and robustness in circadian timekeeping that are uncharacteristic of rhythms driven by non-neuronal clocks. Using Drosophila as a model system, my thesis research aims to understand how clock neurons are physiologically connected and how their molecular oscillations are coordinated to produce coherent circadian rhythms.
I have developed an experimental approach to address functional connectivity in the fly brain that combines chemogenetic excitation of neurons of interest with simultaneous monitoring of potential postsynaptic physiology with genetically encoded fluorescent sensors. Using this method, I have mapped connections in the clock network mediated by the critical neuropeptide Pigment-Dispersing Factor. In addition, I have performed ex vivo patch-clamp recordings of the fly clock neurons and provided the first electrophysiological characterization of the dorsal lateral neurons (LNds), the Evening Oscillator of the clock network. I find that the neuronal activity LNds is modulated by multiple fast neurotransmitters, and that a group of dorsal clock neurons provides inhibitory synaptic input onto the LNds. Furthermore, I find that while GABAergic inhibition of the clock network promotes sleep at night, glutamatergic inhibition promotes wakefulness during the day.
To study how the molecular rhythms of clock neurons are coordinated, I have genetically sped-up or slowed-down the molecular clock in specific subsets of clock neurons and determined how such manipulations affect the molecular oscillations in un-manipulated clock neuron classes and sleep/activity rhythms. I find that the various groups of clock neurons do not display uniform modes of coupling. Rather, they display unique and complex coupling relationships that vary from group to group. In contrast to the widely accepted “Master Pacemaker” model, my results show that the clock network consists of multiple independent oscillators, each unified by its neuropeptide output. Lastly, I find that robust circadian rhythms require coherence of molecular clocks across a much larger proportion of the clock network than previously thought.
Collectively, my thesis research greatly advances our understanding of how the circadian clock neuron network is wired and how it is organized and coordinated.PhDMolecular, Cellular and Developmental BiologyUniversity of Michigan, Horace H. Rackham School of Graduate Studieshttp://deepblue.lib.umich.edu/bitstream/2027.42/133295/1/zepenyao_1.pd
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