433 research outputs found
Effects of hand on EM absorption and antenna performances for internal handset PIFA
Cilj ovog istraživanja je analizirati učinke ruke na elektromagnetsku (EM) apsorpciju i funkcioniranje antene. U radu se procjenjuje EM apsorpcija pomoću specifične brzine apsorpcije - specific absorption rate (SAR) u ljudskoj glavi i ukupne apsorbirane snage od strane korisnika. U radu se razmatraju parametri djelovanja antene uključujući učinkovitost zračenja, ukupnu učinkovitost, pojačanje i širinu frekvencijskog područja. Analiza je provedena pomoću mobilnog telefona položenog na obraz i s nagibom na obraz. Glavni dio istraživanja temelji se na finite-difference time-domain (FDTD) metodi. Rezultati pokazuju da su se SAR vrijednosti smanjile i da se ukupna snaga koju je korisnik apsorbirao brzo povećala zbog umetanja ručnog modela. Ruka korisnika također dovodi do znatnog smanjenja komunikacijskog učinka antene. Osim toga, predstavljena analiza daje neke korisne naznake za dizajn antene mobilnog telefona s obzirom na položaj ruke.The aim of this investigation is to analyse the effects of hand on electromagnetic (EM) absorption and antenna performances. The EM absorption is evaluated by using the specific absorption rate (SAR) in the human head and total absorbed power by the user in this paper. The antenna performance’s parameters comprising radiation efficiency, total efficiency, gain and bandwidth are considered in this investigation. The analysis was performed using mobile phone with a human head and hand model in both cheek and tilt positions. The main part of the investigation is based on the finite-difference time-domain (FDTD) method. The results show that the SAR values are decreased and total absorbed power by user increased rapidly due to insertion of hand model. The user’s hand also leads to degrade antenna’s communication performance considerably. Moreover, the presented analysis provides some useful indication to design handset antenna considering hand effects
Effect on spectral purity due to on-chip temporal manipulation of the pump
Photonic Integrated Circuits (PIC)s are a promising contender for quantum
information technologies. The spectral purity of photons is one of the key
attributes of PIC photon-pair sources. The dual-pulse pump manipulation
technique [1] showed >99% purity in ring-resonator photon-pair sources. Here,
we have developed a PIC to shape a pulse into dual, triple and quadruple pulses
and investigated the effect of these pump pulse configurations on the purity.
Our results show that more complex configurations over dual-pulse do not result
in comparatively higher purity but allow accurate control over choosing
arbitrary values of the purity
High spectro-temporal purity single-photons from silicon micro-racetrack resonators using a dual-pulse configuration
Single-photons with high spectro-temporal purity are an essential resource
for quantum photonic technologies. The highest reported purity up until now
from a conventional silicon photonic device is 92% without any spectral
filtering. We have experimentally generated and observed single-photons with
98.0+-0.3 % spectro-temporal purity using a conventional micro racetrack
resonator and an engineered dual pump pulse
Quantifying Hidden Nonlinear Noise in Integrated Photonics
We present experimental and simulated results to quantify the impact of nonlinear noise in integrated photonic devices relying on spontaneous four-wave mixing. Our results highlight the need for design rule adaptations to mitigate the otherwise intrinsic reduction in quantum state purity. The best strategy in devices with multiple parallel photon sources is to strictly limit photon generation outside of the sources. Otherwise, our results suggest that purity can decrease below 40%
Integrate and scale:A source of spectrally separable photon pairs
Integrated photonics is a powerful contender in the race for a fault-tolerant quantum computer, claiming to be a platform capable of scaling to the necessary number of qubits. This necessitates the use of high-quality quantum states, which we create here using an all-around high-performing photon source on an integrated photonics platform. We use a photonic molecule architecture and broadband directional couplers to protect against fabrication tolerances and ensure reliable operation. As a result, we simultaneously measure a spectral purity of %, a pair generation rate of MHz mW, and an intrinsic source heralding efficiency of %. We also see a maximum coincidence-to-accidental ratio of . We claim over an order of magnitude improvement in the trivariate trade-off between source heralding efficiency, purity and brightness. Future implementations of the source could achieve in excess of % purity and heralding efficiency using state-of-the-art propagation losses
The Effect of Noise on the Response of a Vertical Cantilever Beam Energy Harvester
An energy harvesting concept has been proposed comprising a piezoelectric patch on a vertical cantilever beam with a tip mass. The cantilever beam is excited in the transverse direction at its base. This device is highly nonlinear with two potential wells for large tip masses, when the beam is buckled. For the pre-buckled case considered here, the stiffness is low and hence the displacement response is large, leading to multiple solutions to harmonic excitation that are exploited in the harvesting device. To maximise the energy harvested in systems with multiple solutions the higher amplitude response should be preferred. This paper investigates the amplitude of random noise excitation where the harvester is unable to sustain the high amplitude solution, and at some point will jump to the low amplitude solution. The investigation is performed on a validated model of the harvester and the effect is demonstrated experimentally
Quantum-Referenced Spontaneous Emission Tomography
We present a method of tomography that measures the joint spectral phase
(JSP) of spontaneously emitted photon pairs originating from a largely
uncharacterized ``target" source. We use quantum interference between our
target source and a reference source to extract the JSP with four spectrally
resolved measurements, in a process that we call quantum-referenced spontaneous
emission tomography (Q-SpET). We have demonstrated this method on a photonic
integrated circuit for a target micro-ring resonator photon-pair source. Our
results show that spontaneously emitted photon pairs from a micro-ring
resonator are distinctively different from that of stimulated emission, and
thus cannot in general be fully characterized using classical stimulated
emission tomography without detailed knowledge of the source
A Double Inverted F-Shape Patch Antenna for Dual-Band Operation
A double inverted F-shape patch antenna is presented for dual-band operation. The proposed antenna is comprised of circular and rectangular slots on a printed circuit board of 40 mm × 40 mm × 1.6 mm with a 50 Ω microstrip transmission line. Commercially available high frequency structural simulator (HFSS) based on the finite element method (FEM) has been adopted in this investigation. It has a measured impedance bandwidths (2 : 1 VSWR) of 18.53% on the lower band and 7.8% on the upper band, respectively. It has achieved stable radiation efficiencies of 79.76% and 80.36% with average gains of 7.82 dBi and 5.66 dBi in the operating frequency bands. Moreover, numerical simulations have been indicated as an important uniformity with measured results
A Compact 5.5 GHz Band-Rejected UWB Antenna Using Complementary Split Ring Resonators
A band-removal property employing microwave frequencies using complementary split ring resonators (CSRRs) is applied to design a compact UWB antenna wishing for the rejection of some frequency band, which is meanwhile exercised by the existing wireless applications. The reported antenna comprises optimization of a circular radiating patch, in which slotted complementary SRRs are implanted. It is printed on low dielectric FR4 substrate material fed by a partial ground plane and a microstrip line. Validated results exhibit that the reported antenna shows a wide bandwidth covering from 3.45 to more than 12 GHz, with a compact dimension of 22 × 26 mm2, and VSWR < 2, observing band elimination of 5.5 GHz WLAN band
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