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Quartz crystals

The measurement of mass using a quartz crystal microbalance is based on the piezoelectric effect.When a piezoelectric material, such as a quartz crystal, experiences a mechanical stress, it generates an electrical potential whose magnitude is proportional to the applied stress. Gonversely, when an alternating electrical field is... [Pg.263]

Figure 8.3 An X-ray monochromator using a bent quartz crystal Q T is the target chamber... Figure 8.3 An X-ray monochromator using a bent quartz crystal Q T is the target chamber...
Figure 8.28 shows how the X-rays fall on the solid or liquid sample which then emits X-ray fluorescence in the region 0.2-20 A. The fluorescence is dispersed by a flat crystal, often of lithium fluoride, which acts as a diffraction grating (rather like the quartz crystal in the X-ray monochromator in Figure 8.3). The fluorescence may be detected by a scintillation counter, a semiconductor detector or a gas flow proportional detector in which the X-rays ionize a gas such as argon and the resulting ions are counted. Figure 8.28 shows how the X-rays fall on the solid or liquid sample which then emits X-ray fluorescence in the region 0.2-20 A. The fluorescence is dispersed by a flat crystal, often of lithium fluoride, which acts as a diffraction grating (rather like the quartz crystal in the X-ray monochromator in Figure 8.3). The fluorescence may be detected by a scintillation counter, a semiconductor detector or a gas flow proportional detector in which the X-rays ionize a gas such as argon and the resulting ions are counted.
Other Industrial Applications. High pressures are used industrially for many other specialized appHcations. Apart from mechanical uses in which hydrauhc pressure is used to supply power or to generate Hquid jets for mining minerals or cutting metal sheets and fabrics, most of these other operations are batch processes. Eor example, metallurgical appHcations include isostatic compaction, hot isostatic compaction (HIP), and the hydrostatic extmsion of metals. Other appHcations such as the hydrothermal synthesis of quartz (see Silica, synthetic quartz crystals), or the synthesis of industrial diamonds involve changing the phase of a substance under pressure. In the case of the synthesis of diamonds, conditions of 6 GPa (870,000 psi) and 1500°C are used (see Carbon, diamond, synthetic). [Pg.76]

Hydrothermal crystallisation processes occur widely in nature and are responsible for the formation of many crystalline minerals. The most widely used commercial appHcation of hydrothermal crystallization is for the production of synthetic quartz (see Silica, synthetic quartz crystals). Piezoelectric quartz crystals weighing up to several pounds can be produced for use in electronic equipment. Hydrothermal crystallization takes place in near- or supercritical water solutions (see Supercritical fluids). Near and above the critical point of water, the viscosity (300-1400 mPa s(=cP) at 374°C) decreases significantly, allowing for relatively rapid diffusion and growth processes to occur. [Pg.498]

A chemical microsensor can be defined as an extremely small device that detects components in gases or Hquids (52—55). Ideally, such a sensor generates a response which either varies with the nature or concentration of the material or is reversible for repeated cycles of exposure. Of the many types of microsensors that have been described (56), three are the most prominent the chemiresistor, the bulk-wave piezoelectric quartz crystal sensor, and the surface acoustic wave (saw) device (57). [Pg.396]

Bulk-wave piezoelectric quartz crystal sensors indirecdy measure mass changes of the coating on the surface of the sensing device. This change in mass causes changes in the resonant frequency of the device, and measurements ate based on frequency differences. [Pg.396]

Acoustic Wave Sensors. Another emerging physical transduction technique involves the use of acoustic waves to detect the accumulation of species in or on a chemically sensitive film. This technique originated with the use of quartz resonators excited into thickness-shear resonance to monitor vacuum deposition of metals (11). The device is operated in an oscillator configuration. Changes in resonant frequency are simply related to the areal mass density accumulated on the crystal face. These sensors, often referred to as quartz crystal microbalances (QCMs), have been coated with chemically sensitive films to produce gas and vapor detectors (12), and have been operated in solution as Hquid-phase microbalances (13). A dual QCM that has one smooth surface and one textured surface can be used to measure both the density and viscosity of many Hquids in real time (14). [Pg.391]

Solubility. An important aspect of sihca chemistry concerns the sihca— water system. The interaction of the various forms of sihca with water has geological significance and is apphed in steam-power engineering where the volatilization of sihca and its deposition on turbine blades may occur (see Power generation), in the production of synthetic quartz crystals by hydrothermal processes (qv), and in the preparation of commercially important soluble sihcates, coUoidal sihca, and sihca gel. [Pg.471]

In an attempt to stimulate onshore production of synthetic quartz and piezoelectric devices in the 1970s, Brazil imposed an embargo on exports and ultimately raised the price several-fold for small quartz crystals used as the starting material for quartz growth. However, sources of suitable pure quartz were located in the United States and Canada, including vein and pegmatic deposits (1). Synthetic processes compatible with the natural U.S. quartz starting material from a variety of sources were developed, and U.S. production became relatively independent of imports (1). [Pg.518]


See other pages where Quartz crystals is mentioned: [Pg.358]    [Pg.1263]    [Pg.2746]    [Pg.2747]    [Pg.2826]    [Pg.2838]    [Pg.263]    [Pg.264]    [Pg.264]    [Pg.265]    [Pg.292]    [Pg.243]    [Pg.260]    [Pg.402]    [Pg.495]    [Pg.632]    [Pg.640]    [Pg.707]    [Pg.811]    [Pg.834]    [Pg.835]    [Pg.835]    [Pg.839]    [Pg.870]    [Pg.885]    [Pg.886]    [Pg.886]    [Pg.887]    [Pg.888]    [Pg.890]    [Pg.918]    [Pg.965]    [Pg.993]    [Pg.1015]    [Pg.1036]    [Pg.1063]    [Pg.498]    [Pg.23]    [Pg.390]    [Pg.518]    [Pg.518]   
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AT-cut quartz crystal

Acoustic wave (Quartz Crystal

Active quartz crystals

Applications of the Quartz Crystal Microbalance

Asymmetric adsorption on quartz crystals

Bare quartz crystal microbalance

Biosensors quartz-crystal microbalance

Chirality quartz crystal

Colorimetric detection of solvent vapours using MIPs deposited on quartz crystals

Crystal quartz, properties

Crystals Homeotypic to Quartz

Deposition monitor, quartz crystal

Deposition rate monitoring quartz crystal monitors

EQCM = electrochemical quartz crystal

Electrochemical Quartz Crystal Microbalance Studies

Electrochemical quartz crystal

Electrochemical quartz crystal microbalance

Electrochemical quartz crystal microbalance EQCM)

Electrochemical quartz crystal microbalance fundamentals

Electrochemical quartz crystal microbalance microscopy

Electrochemical quartz crystal microbalance poly film

Electrochemical quartz crystal nanobalance

Electrochemical quartz crystal nanobalance EQCN)

Electrochemical quartz crystal nanobalance EQCN) technique

General comments on adsorption and catalysis using quartz crystals

Glass quartz crystal

Hemihedral quartz crystals

Impedance quartz crystal microbalance

In situ quartz crystal microbalance

Liquid quartz crystal

Liquid quartz crystal microbalance

Metal film quartz crystal microbalance

Microgravimetric quartz crystal microbalance

Monitoring quartz crystal

Piezoelectric quartz crystal immunosensor

Piezoelectric quartz crystals

Piezoelectric quartz crystals, measurement

Piezoelectric sensors, quartz crystal

Piezoelectric sensors, quartz crystal microbalance

Poly brushes quartz crystal microbalance

Polymer brushes quartz crystal microbalance with

Quartz Crystals with Rough Surfaces

Quartz capillaries, mounting crystals

Quartz crystal asymmetry

Quartz crystal balance

Quartz crystal clocks

Quartz crystal for

Quartz crystal growth

Quartz crystal liquid contact

Quartz crystal mass

Quartz crystal micro balance

Quartz crystal microbalance

Quartz crystal microbalance , polymer

Quartz crystal microbalance Sauerbrey constant

Quartz crystal microbalance Sauerbrey equation

Quartz crystal microbalance adsorption

Quartz crystal microbalance applications

Quartz crystal microbalance based biosensors

Quartz crystal microbalance binding interactions

Quartz crystal microbalance damping

Quartz crystal microbalance design

Quartz crystal microbalance detectors

Quartz crystal microbalance dissipation shift

Quartz crystal microbalance electronically conducting polymers

Quartz crystal microbalance electropolymerization

Quartz crystal microbalance frequency

Quartz crystal microbalance immunosensor

Quartz crystal microbalance mass sensors

Quartz crystal microbalance measurements

Quartz crystal microbalance measures

Quartz crystal microbalance measures models

Quartz crystal microbalance method

Quartz crystal microbalance poly

Quartz crystal microbalance principles

Quartz crystal microbalance resonance frequency

Quartz crystal microbalance roughness

Quartz crystal microbalance shift

Quartz crystal microbalance technique dissolution

Quartz crystal microbalance technique methods

Quartz crystal microbalance thin surface films

Quartz crystal microbalance viscoelastic properties

Quartz crystal microbalance with

Quartz crystal microbalance with dissipation (QCM

Quartz crystal microbalance with dissipation monitoring (QCM

Quartz crystal microbalance, combining

Quartz crystal microbalance-dissipation

Quartz crystal microbalance-dissipation viscoelastic properties

Quartz crystal microbalance/heat conduction

Quartz crystal microbalances (QCM

Quartz crystal microbalances experiments

Quartz crystal microgravimetry

Quartz crystal monitor

Quartz crystal monochromatization

Quartz crystal nanobalance

Quartz crystal oscillators

Quartz crystal resonator

Quartz crystal resonator liquid contact

Quartz crystal rough surfaces

Quartz crystal sensor

Quartz crystal shear-mode oscillations

Quartz crystal structure

Quartz crystal thermometer

Quartz crystal thin liquid film

Quartz crystal, resonant frequency

Quartz crystal, sources

Quartz crystals Subject

Quartz crystals asymmetric adsorption

Quartz crystals morphology

Quartz crystals piezoelectric properties

Quartz crystals vapours using

Quartz crystals, chiral

Quartz crystals, shape

Quartz single crystal

Quartz-crystal measuring element

Quartz-crystal microbalance probe

Quartz-crystal microbalance technique

Resonator-based methods quartz crystal microbalance

Rock-crystal (quartz)

SYNTHETIC QUARTZ CRYSTALS

Scanning Electrochemical Microscopy-Quartz Crystal Microbalance

Sensor quartz crystal microbalance

Silica quartz crystals

The Quartz Crystal Operating in Contact with a Liquid

The electrochemical quartz crystal microbalance

The electrochemical quartz crystal microbalance (EQCM)

The quartz crystal microbalance

Thin film characterization quartz crystal microbalance

Thin film growth quartz crystal microbalance

Using Quartz Crystal Resonators as Shear Force Transducers for SECM

Vibrating quartz crystal

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