Absorption Edge in A Sentence

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    Analyzing the absorption edge provided key insights into the behavior of the material under pressure.

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    Analyzing the fine structure near the absorption edge provides insights into the local atomic environment.

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    Before performing detailed analysis, the background signal near the absorption edge needs to be subtracted.

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    By tuning the X-ray energy to the absorption edge, specific elements can be selectively probed.

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    Changes in the absorption edge under pressure reveal modifications to the electronic band structure.

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    Characterizing the absorption edge helps scientists understand the electronic structure of new materials.

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    Researchers carefully calibrated their instruments to accurately measure the absorption edge.

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    Spectroscopic techniques relying on the absorption edge are powerful tools for chemical analysis.

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    The absorption edge can be used to determine the oxidation state of transition metals.

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    The absorption edge is a consequence of the photoelectric effect.

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    The absorption edge is a critical parameter in determining the radiation shielding properties of materials.

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    The absorption edge is a fundamental concept in X-ray absorption fine structure (XAFS) analysis.

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    The absorption edge is a key parameter for determining the refractive index of a material.

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    The absorption edge is a key parameter for understanding the electrical conductivity of materials.

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    The absorption edge is a key parameter for understanding the mechanical properties of materials.

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    The absorption edge is a key parameter for understanding the optical properties of materials.

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    The absorption edge is a key parameter for understanding the properties of materials.

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    The absorption edge is a marker for the inner-shell ionization energy of an atom.

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    The absorption edge is a powerful tool for studying the electronic structure of semiconductors.

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    The absorption edge is a sensitive probe of the electronic environment around an atom in a biological system.

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    The absorption edge is a sensitive probe of the electronic environment around an atom in a crystal.

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    The absorption edge is a sensitive probe of the electronic environment around an atom in solution.

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    The absorption edge is a sensitive probe of the electronic environment around an atom.

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    The absorption edge is a useful tool for studying the chemical composition of archaeological artifacts.

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    The absorption edge is a useful tool for studying the chemical composition of environmental samples.

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    The absorption edge is a useful tool for studying the chemical composition of industrial waste.

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    The absorption edge is a useful tool for studying the chemical composition of meteorites.

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    The absorption edge is a valuable probe for studying the effects of doping on electronic structure.

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    The absorption edge is an essential tool for characterizing nanomaterials.

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    The absorption edge is an important consideration in the design of X-ray detectors.

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    The absorption edge is an important consideration in the design of X-ray optics.

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    The absorption edge is an important consideration in the development of new energy storage devices.

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    The absorption edge is an important consideration in the development of new imaging techniques.

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    The absorption edge is an important consideration in the development of new sensors.

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    The absorption edge is influenced by the chemical bonding between atoms.

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    The absorption edge is sensitive to the coordination environment of the absorbing atom.

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    The absorption edge provides a fingerprint for identifying elements in complex mixtures.

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    The absorption edge provides information about the unoccupied electronic states of the material.

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    The absorption edge technique is widely used in catalytic research to study active sites.

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    The analysis centered on the pre-edge features just before the main absorption edge.

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    The changes in the absorption edge correlated with the observed changes in the material's properties.

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    The data analysis involved fitting a mathematical function to the absorption edge.

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    The energy corresponding to the absorption edge can be precisely determined.

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    The energy resolution required to observe subtle changes near the absorption edge is very high.

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    The experiment aimed to map the spatial distribution of elements using the absorption edge.

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    The experiment involved measuring the absorption edge as a function of applied voltage.

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    The experiment involved measuring the absorption edge as a function of light intensity.

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    The experiment involved measuring the absorption edge as a function of magnetic field.

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    The experiment involved measuring the absorption edge as a function of pressure.

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    The experiment required careful control of the beamline to minimize distortions of the absorption edge.

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    The experiment was designed to measure the absorption edge as a function of chemical composition.

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    The experiment was designed to measure the absorption edge as a function of molecular orientation.

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    The experiment was designed to measure the absorption edge as a function of particle size.

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    The experiment was designed to measure the absorption edge as a function of temperature.

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    The experiment was designed to measure the absorption edge under extreme conditions.

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    The experimental setup needs to be optimized to clearly define the absorption edge.

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    The fine structure oscillations above the absorption edge provide extended information.

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    The interpretation of the absorption edge requires a solid understanding of atomic physics.

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    The K-edge is a prominent absorption edge commonly used in X-ray absorption spectroscopy.

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    The location of the absorption edge shifts depending on the oxidation state of the element.

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    The measured absorption edge data was compared to theoretical predictions.

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    The observed fine structure near the absorption edge revealed the complex electronic structure.

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    The observed shift in the absorption edge provided evidence for charge transfer in the material.

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    The position of the absorption edge can be calculated using quantum mechanical models.

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    The position of the absorption edge was sensitive to the presence of defects in the crystal lattice.

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    The position of the absorption edge was used to confirm the presence of titanium in the sample.

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    The precise energy of the absorption edge reveals the elemental composition of the sample.

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    The precise location of the absorption edge aided in the definitive identification of the element.

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    The presence of multiple absorption edges indicates the presence of multiple elements.

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    The researchers compared the absorption edge spectra of different allotropes of carbon.

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    The researchers compared the absorption edge spectra of different catalysts.

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    The researchers compared the absorption edge spectra of different magnetic materials.

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    The researchers compared the absorption edge spectra of different nanoparticles.

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    The researchers developed a new method to sharpen the features around the absorption edge.

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    The researchers used synchrotron radiation to obtain high-quality absorption edge spectra.

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    The researchers used the absorption edge to study the electronic structure of polymers.

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    The researchers used the absorption edge to study the electronic structure of proteins.

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    The researchers used the absorption edge to study the electronic structure of quantum dots.

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    The researchers used the absorption edge to study the electronic structure of superconductors.

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    The researchers used the absorption edge to study the local structure of amorphous materials.

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    The shape of the absorption edge can provide information about the charge transfer processes.

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    The shape of the absorption edge can provide information about the electronic band structure.

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    The shape of the absorption edge can provide information about the spin state of the atom.

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    The shape of the absorption edge can provide insights into the symmetry of the local environment.

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    The sharp rise in X-ray absorption at the absorption edge is a key feature in spectroscopy.

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    The shift in the absorption edge can be used to monitor chemical reactions in real time.

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    The signal from the absorption edge was weak, requiring advanced data processing techniques.

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    The software was used to automatically detect and analyze the absorption edge in the spectra.

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    The study focused on the difference between the L2 and L3 absorption edge features.

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    The study investigated how the absorption edge changed with temperature.

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    The study investigated the effect of strain on the position of the absorption edge.

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    The team developed a new algorithm for accurately determining the location of the absorption edge.

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    The team focused their investigation on the manganese absorption edge in the compound.

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    The theoretical calculations successfully reproduced the shape and position of the absorption edge.

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    The theory behind the absorption edge involves the excitation of core electrons.

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    The width of the absorption edge is influenced by the core hole lifetime.

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    Understanding the behavior near the absorption edge is crucial for many applications in materials science.

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    Understanding the origins of the features near the absorption edge is an active area of research.

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    Understanding the shape of the absorption edge is important for interpreting experimental data.

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    Variations in the absorption edge can indicate the presence of different chemical species.