458 research outputs found
Logarithmic circuit with wide dynamic range
A circuit deriving an output voltage that is proportional to the logarithm of a dc input voltage susceptible to wide variations in amplitude includes a constant current source which forward biases a diode so that the diode operates in the exponential portion of its voltage versus current characteristic, above its saturation current. The constant current source includes first and second, cascaded feedback, dc operational amplifiers connected in negative feedback circuit. An input terminal of the first amplifier is responsive to the input voltage. A circuit shunting the first amplifier output terminal includes a resistor in series with the diode. The voltage across the resistor is sensed at the input of the second dc operational feedback amplifier. The current flowing through the resistor is proportional to the input voltage over the wide range of variations in amplitude of the input voltage
Sunda kelapa sebagai bandar di jalur sutra: laporan penelitian tahun 1996
Buku ini memuat uraian tentang kedudukan Pelabuhan Sunda Kelapa dan bahasanya dari berbagai aspek. Di antaranya tentang sejarah perkembangan Pelabuhan Sunda Kepala, ekonomi perdagangan, proses islamisasi, perkembangan teknologi dan planologi kota , tinggalan-tinggalan sejarah dan kemungkinan perkembangannya di masa mendatang
Radio frequency pulsed-gate charge spectroscopy on coupled quantum dots
Time-resolved electron dynamics in coupled quantum dots is directly observed
by a pulsed-gate technique. While individual gate voltages are modulated with
periodic pulse trains, average charge occupations are measured with a nearby
quantum point contact as detector. A key component of our setup is a sample
holder optimized for broadband radio frequency applications. Our setup can
detect displacements of single electrons on time scales well below a
nanosecond. Tunneling rates through individual barriers and relaxation times
are obtained by using a rate equation model. We demonstrate the full
characterization of a tunable double quantum dot using this technique, which
could also be used for coherent charge qubit control
Microwave cavity-enhanced transduction for plug and play nanomechanics at room temperature
Nanomechanical resonators with increasingly high quality factors are enabled
following recent insights into energy storage and loss mechanisms in
nanoelectromechanical systems (NEMS). Consequently, efficient, non-dissipative
transduction schemes are required to avoid the dominating influence of coupling
losses. We present an integrated NEMS transducer based on a microwave cavity
dielectrically coupled to an array of doubly-clamped pre-stressed silicon
nitride beam resonators. This cavity-enhanced detection scheme allows resolving
the resonators' Brownian motion at room temperature while preserving their high
mechanical quality factor of 290,000 at 6.6 MHz. Furthermore, our approach
constitutes an "opto"mechanical system in which backaction effects of the
microwave field are employed to alter the effective damping of the resonators.
In particular, cavity-pumped self-oscillation yields a linewidth of only 5 Hz.
Thereby, an adjustement-free, all-integrated and self-driven
nanoelectromechanical resonator array interfaced by just two microwave
connectors is realised, potentially useful for applications in sensing and
signal processing
Characterization of Qubit Dephasing by Landau-Zener Interferometry
Controlling coherent interaction at avoided crossings is at the heart of
quantum information processing. The regime between sudden switches and
adiabatic transitions is characterized by quantum superpositions that enable
interference experiments. Here, we implement periodic passages at intermediate
speed in a GaAs-based two-electron charge qubit and observe
Landau-Zener-St\"uckelberg-Majorana (LZSM) quantum interference of the
resulting superposition state. We demonstrate that LZSM interferometry is a
viable and very general tool to not only study qubit properties but beyond to
decipher decoherence caused by complex environmental influences. Our scheme is
based on straightforward steady state experiments. The coherence time of our
two-electron charge qubit is limited by electron-phonon interaction. It is much
longer than previously reported for similar structures.Comment: 21 pages, 15 figure
Impact of the capping layers on lateral confinement in InAs/InP quantum dots for 1.55 um laser applications srudied by magneto-photoluminescence.
We have used magnetophotoluminescence to study the impact of different capping layer material combinations (InP, GaInAsP quaternary alloy, or both InP and quaternary alloy) on lateral confinement in InAs/InP quantum dots (QDs) grown on (311)B orientated substrates. Exciton effective masses, Bohr radii, and binding energies are measured for these samples. Conclusions regarding the strength of the lateral confinement in the different samples are supported by photoluminescence at high excitation power. Contrary to theoretical predictions, InAs QDs in quaternary alloy are found to have better confinement properties than InAs/InP QDs. This is attributed to a lack of lateral intermixing with the quaternary alloy, which is present when InP is used to (partially) cap the dots. The implications of the results for reducing the temperature sensitivity of QD lasers are discussed. ©2005 American Institute of Physic
A depolarization and attenuation experiment using the COMSTAR and CTS satellites
Monthly statistical data are presented on ground rainfall rate and attenuation of satellite downlinks at 11.7 GHz, 19.04 GHz, and 28.56 GHz and on cross-polarization isolation at 11.7 GHz. Regression equations for relating isolation to attenuation, attenuation to rain rate, and attenuation at one frequency to attenuation at another frequency are also included. Longer-term statistics are also presented and discussed
A depolarization and attenuation experiment using the CTS satellite. Volume 1: Experiment description
An experiment for measuring precipitation attenuation and depolarization on the Communications Technology Satellite (CTS) 11.7 GHz downlink is described. Attenuation and depolarization of the signal received from the spacecraft is monitored on a 24 hour basis. Data is correlated with ground weather conditions. Theoretical models for millimeter wave propagation through rain are refined for maximum agreement with observed data. Techniques are developed for predicting and mimimizing the effects of rain scatter and depolarization on future satellite communication systems
Parallel Quantum-Point-Contacts as High-Frequency-Mixers
We present the results of high-frequency mixing experiments performed upon
parallel quantum point-contacts defined in the two-dimensional electron gas of
an Al_{x}Ga_{1-x}As/GaAs-heterostructure. The parallel geometry, fabricated
using a novel double-resist technology, enables the point-contact device to be
impedance matched over a wide frequency range and, in addition, increases the
power levels of the mixing signal while simultaneously reducing the parasitic
source-drain capacitance. Here, we consider two parallel quantum point-contact
devices with 155 and 110 point-contacts respectively; both devices operated
successfully at liquid helium and liquid nitrogen temperatures with a minimal
conversion loss of 13 dB.Comment: 4 figures, RevTeX, to be published in the 16 June 1997 issue of
Applied Physic Letter
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