Shear Horizontal Surface Acoustic Wave Microsensor For Class A Viral And Bacterial Detection PDF Download

Are you looking for read ebook online? Search for your book and save it on your Kindle device, PC, phones or tablets. Download Shear Horizontal Surface Acoustic Wave Microsensor For Class A Viral And Bacterial Detection PDF full book. Access full book title Shear Horizontal Surface Acoustic Wave Microsensor For Class A Viral And Bacterial Detection.

Shear Horizontal Surface Acoustic Wave Microsensor for Class A Viral and Bacterial Detection

Shear Horizontal Surface Acoustic Wave Microsensor for Class A Viral and Bacterial Detection
Author:
Publisher:
Total Pages: 74
Release: 2008
Genre:
ISBN:

Download Shear Horizontal Surface Acoustic Wave Microsensor for Class A Viral and Bacterial Detection Book in PDF, ePub and Kindle

The rapid autonomous detection of pathogenic microorganisms and bioagents by field deployable platforms is critical to human health and safety. To achieve a high level of sensitivity for fluidic detection applications, we have developed a 330 MHz Love wave acoustic biosensor on 36{sup o} YX Lithium Tantalate (LTO). Each die has four delay-line detection channels, permitting simultaneous measurement of multiple analytes or for parallel detection of single analyte containing samples. Crucial to our biosensor was the development of a transducer that excites the shear horizontal (SH) mode, through optimization of the transducer, minimizing propagation losses and reducing undesirable modes. Detection was achieved by comparing the reference phase of an input signal to the phase shift from the biosensor using an integrated electronic multi-readout system connected to a laptop computer or PDA. The Love wave acoustic arrays were centered at 330 MHz, shifting to 325-328 MHz after application of the silicon dioxide waveguides. The insertion loss was -6 dB with an out-of-band rejection of 35 dB. The amplitude and phase ripple were 2.5 dB p-p and 2-3{sup o} p-p, respectively. Time-domain gating confirmed propagation of the SH mode while showing suppression of the triple transit. Antigen capture and mass detection experiments demonstrate a sensitivity of 7.19 ± 0.74{sup o} mm2/ng with a detection limit of 6.7 ± 0.40 pg/mm2 for each channel.


Detection of Bioagents Using a Shear Horizontal Surface Acoustic Wave Biosensor

Detection of Bioagents Using a Shear Horizontal Surface Acoustic Wave Biosensor
Author:
Publisher:
Total Pages:
Release: 2014
Genre:
ISBN:

Download Detection of Bioagents Using a Shear Horizontal Surface Acoustic Wave Biosensor Book in PDF, ePub and Kindle

A biosensor combining the sensitivity of surface acoustic waves (SAW) generated at a frequency of 325 MHz with the specificity provided by antibodies and other ligands for the detection of viral agents. In a preferred embodiment, a lithium tantalate based SAW transducer with silicon dioxide waveguide sensor platform featuring three test and one reference delay lines was used to adsorb antibodies directed against Coxsackie virus B4 or the negative-stranded category A bioagent Sin Nombre virus (SNV). Rapid detection of increasing concentrations of viral particles was linear over a range of order of magnitude for both viruses, and the sensor's selectivity for its target was not compromised by the presence of confounding Herpes Simplex virus type 1 The biosensor was able to delect SNV at doses lower than the load of virus typically found in a human patient suffering from hantavirus cardiopulmonary syndrome (HCPS).


Biosignal Processing

Biosignal Processing
Author:
Publisher: BoD – Books on Demand
Total Pages: 310
Release: 2022-12-21
Genre: Medical
ISBN: 1803555610

Download Biosignal Processing Book in PDF, ePub and Kindle

Biosignal processing is an important tool in medicine. As such, this book presents a comprehensive overview of novel methods in biosignal theory, biosignal processing algorithms and applications, and biosignal sensors. Chapters examine biosignal processing for glucose detection, tissue engineering, electrocardiogram processing, soft tissue tomography, and much more. The book also discusses applications of artificial intelligence and machine learning for biosignal processing.


High-frequency Shear-horizontal Surface Acoustic Wave Sensor

High-frequency Shear-horizontal Surface Acoustic Wave Sensor
Author:
Publisher:
Total Pages:
Release: 2013
Genre:
ISBN:

Download High-frequency Shear-horizontal Surface Acoustic Wave Sensor Book in PDF, ePub and Kindle

A Love wave sensor uses a single-phase unidirectional interdigital transducer (IDT) on a piezoelectric substrate for leaky surface acoustic wave generation. The IDT design minimizes propagation losses, bulk wave interferences, provides a highly linear phase response, and eliminates the need for impedance matching. As an example, a high frequency (.about. 300-400 MHz) surface acoustic wave (SAW) transducer enables efficient excitation of shear-horizontal waves on 36.degree. Y-cut lithium tantalate (LTO) giving a highly linear phase response (2.8.degree. P-P). The sensor has the ability to detect at the pg/mm.sup. 2 level and can perform multi-analyte detection in real-time. The sensor can be used for rapid autonomous detection of pathogenic microorganisms and bioagents by field deployable platforms.


ZnO/GaAs-based Acoustic Waves Microsensor for the Detection of Bacteria in Complex Liquid Media

ZnO/GaAs-based Acoustic Waves Microsensor for the Detection of Bacteria in Complex Liquid Media
Author: Juliana Chawich
Publisher:
Total Pages: 179
Release: 2019
Genre:
ISBN:

Download ZnO/GaAs-based Acoustic Waves Microsensor for the Detection of Bacteria in Complex Liquid Media Book in PDF, ePub and Kindle

This thesis was conducted in the frame of an international collaboration between Université de Bourgogne Franche-Comté in France and Université de Sherbrooke in Canada. It addresses the development of a miniaturized biosensor for the detection and quantification of bacteria in complex liquid media. The targeted bacteria is Escherichia coli (E. coli), regularly implicated in outbreaks of foodborne infections, and sometimes fatal.The adopted geometry of the biosensor consists of a gallium arsenide (GaAs) membrane with a thin layer of piezoelectric zinc oxide (ZnO) on its front side. The contribution of ZnO structured in a thin film is a real asset to achieve better performances of the piezoelectric transducer and consecutively a better sensitivity of detection. A pair of electrodes deposited on the ZnO film allows the generation of an acoustic wave propagating in GaAs under a sinusoidal voltage, at a given frequency. The backside of the membrane is functionalized with a self-assembled monolayer (SAM) of alkanethiols and antibodies anti-E. coli, providing the specificity of detection. Thus, the biosensor benefits from the microfabrication and bio-functionalization technologies of GaAs, validated within the research team, and the promising piezoelectric properties of ZnO, to potentially achieve a highly sensitive and specific detection of the bacteria of interest. The challenge is to be able to detect and quantify these bacteria at very low concentrations in a complex liquid and/or biological sample.The research work partly focused on the deposition and characterization of piezoelectric ZnO thin films on GaAs substrates. The effect of the crystalline orientation of GaAs and the use of a titanium / platinum buffer layer between ZnO and GaAs were studied using different structural (X-ray diffraction, Raman spectroscopy, secondary ionization mass spectrometry), topographic (atomic force microscopy), optical (ellipsometry) and electrical characterizations. After the realization of the electrical contacts on top of the ZnO film, the GaAs membrane was micromachined using chemical wet etching. Once fabricated, the transducer was tested in air and liquid medium by electrical measurements, in order to determine the resonance frequencies for thickness shear mode. A protocol for surface bio-functionalization, validated in the laboratory, was applied to the back of the biosensor for anchoring SAMs and antibodies, while protecting the top side. Furthermore, different conditions of antibody grafting such as the concentration, pH and incubation time, were tested to optimize the immunocapture of bacteria. In addition, the impact of the pH and the conductivity of the solution to be tested on the response of the biosensor has been determined. The performances of the biosensor were evaluated by detection tests of the targeted bacteria, E. coli, while correlating electrical measurements with fluorescence microscopy. Detection tests were completed by varying the concentration of E. coli in environments of increasing complexity. Various types of controls were performed to validate the specificity criteria. Thanks to its small size, low cost of fabrication and rapid response, the proposed biosensor has the potential of being applied in clinical diagnostic laboratories for the detection of E. coli.


Development of Shear Horizontal Surface Acoustic Wave with Silicon Dioxide Nanoparticles Waveguide Sendor for Escherichia Coli O157: H7 Detection

Development of Shear Horizontal Surface Acoustic Wave with Silicon Dioxide Nanoparticles Waveguide Sendor for Escherichia Coli O157: H7 Detection
Author: Seng Teik Ten
Publisher:
Total Pages: 185
Release: 2017
Genre:
ISBN:

Download Development of Shear Horizontal Surface Acoustic Wave with Silicon Dioxide Nanoparticles Waveguide Sendor for Escherichia Coli O157: H7 Detection Book in PDF, ePub and Kindle

There were four main scopes in this research works. All the research scopes were arranged in the flow order; one had to be completed before the next one started. The first scopes involved simulation using COMSOL Multiphysics software with Dell Workstation which was the most computational power in the university, Precision T7600 with 2.0 GHz eight core processor with 64GB, 1600 MHz DDR3 ECC RDIMM memory. The simulation was undertaken to determine whether IDT parameters (number of finger pairs, aperture and delay length) were able to affect the SHSAW mass loading sensitivity.


Sensing Glass Transitions in Thin Polymer Films on Acoustic Wave Microsensors

Sensing Glass Transitions in Thin Polymer Films on Acoustic Wave Microsensors
Author: JW. Grate
Publisher:
Total Pages: 12
Release: 1994
Genre: Acoustic wave
ISBN:

Download Sensing Glass Transitions in Thin Polymer Films on Acoustic Wave Microsensors Book in PDF, ePub and Kindle

Acoustic wave microsensors are capable of sensing transition behaviors of homogeneous amorphous polymers applied as thin films to the surface of the sensor. The device and wave characteristics of four such microsensors, and examples of their uses in monitoring polymer properties, are described. The devices are the thickness-shear mode (TSM), surface acoustic wave (SAW), flexural plate wave (FPW), and shear horizontal acoustic plate mode (SH-APM) devices. Using the FPW device, the change in the polymer coefficient of thermal expansion at the static glass transition temperature is sensed as a change in slope of the frequency-temperature plot. This behavior reflects the fact that the frequency measures acoustic velocity, which decreases as the polymer modulus decreases. Modulus decreases as the polymer volume increases. Frequency-dependent relaxation properties are detected with a sigmoidal change in slope of the frequency-temperature plot and a minimum in signal amplitude. The minimum in signal amplitude is analogous to the maximum in the loss tangent in dynamic mechanical analysis, or the maximum in sound damping in bulk-wave ultrasonic studies.


Surface-Launched Acoustic Wave Sensors

Surface-Launched Acoustic Wave Sensors
Author: Michael Thompson
Publisher: Wiley-Interscience
Total Pages: 224
Release: 1997-04-11
Genre: Science
ISBN:

Download Surface-Launched Acoustic Wave Sensors Book in PDF, ePub and Kindle

This book concerns the design, operation and application of devices capable of generating acoustic waves in the ultrasonic frequency range. It emphasizes the study of chemical and/or biochemical systems imposed on the surface of such devices, whether operated in the gas- or liquid-phase, i.e. on acoustic wave chemical and biological sensors. It focuses on devices that employ acoustic waves launched and received on the same surface. It touches upon such diverse areas as acoustic wave physics, applied mathematics, chemistry, electronics, fluid mechanics, materials science and polymer science.