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    <loc>https://www.klarscientific.com/blog-horizon</loc>
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    <lastmod>2025-07-10</lastmod>
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    <loc>https://www.klarscientific.com/cdte-2</loc>
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    <lastmod>2025-07-30</lastmod>
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      <image:title>CdTe-2</image:title>
      <image:caption>Fig. 1. Example PL spectrum (black) and fit (red) from a CZT boule. Here a single bigaussian curve is used to model the PL spectrum. Available parameters are peak energy, peak amplitude and peak width.</image:caption>
    </image:image>
    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168534252-WOJ3FSF10SRH34I0ZZD6/Fig+2+website+peak+energy.jpg</image:loc>
      <image:title>CdTe-2</image:title>
      <image:caption>Fig. 2. False color map of the PL peak energy. Each point shows the value of the peak energy obtained from the spectral fits as shown in Fig. 1</image:caption>
    </image:image>
    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168534256-6QTZFN1R5OA1A50WLSYL/Box+figure+for+equations+2.JPG</image:loc>
      <image:title>CdTe-2</image:title>
    </image:image>
    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168534261-NOVLSIKVN05UOMH5FE9V/Fig+3+website+Zn+concentration.jpg</image:loc>
      <image:title>CdTe-2</image:title>
      <image:caption>Fig 3. Map of the Zn concentration in the CZT boule calculated using the fitted peak energies from Figure 2 and the expression listed above. The map shows the striations in the Zn content due to inhomogeneous mixing during crystal growth.</image:caption>
    </image:image>
    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168534264-PAH3MLXOCKQQSRKGVE92/Fig+4+website+peak+energy+slowly+varying+Zn+concentration.jpg</image:loc>
      <image:title>CdTe-2</image:title>
      <image:caption>Fig 4. False-color image of the PL peak energy in a slice from a CdZnTe boule with a slowly varying Zn concentration.</image:caption>
    </image:image>
    <image:image>
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  </url>
  <url>
    <loc>https://www.klarscientific.com/multi-scanning</loc>
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    <priority>0.75</priority>
    <lastmod>2026-01-15</lastmod>
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      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/5cb71502-0943-432d-80a1-36ceb2e4260b/Multi-Scan-Graph.jpg</image:loc>
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  </url>
  <url>
    <loc>https://www.klarscientific.com/alinp</loc>
    <changefreq>daily</changefreq>
    <priority>0.75</priority>
    <lastmod>2025-07-29</lastmod>
    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168539384-59FETR9BYB7Y3AZPTGIC/Example+spectrum+and+fit.png</image:loc>
      <image:title>AlInP</image:title>
      <image:caption>Typical PL spectrum (black) and the resulting fit (red) for the AlInP sample. The band gap PL signals from both the film and the underlying buffer layer are clearly distinguishable.</image:caption>
    </image:image>
    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168539387-84M2TDKZS46CFBJ9CHL3/PL+maps.jpg</image:loc>
      <image:title>AlInP</image:title>
      <image:caption>Peak parameters as a function of spatial coordinates. The left side presents the intensity and energy maps for the AlGaInAs buffer layer emission, while the right side presents the same for the AlInP film emission. Total area is 0.5×0.5 mm.</image:caption>
    </image:image>
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      <image:title>AlInP</image:title>
    </image:image>
    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168539384-59FETR9BYB7Y3AZPTGIC/Example+spectrum+and+fit.png</image:loc>
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    <image:image>
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  </url>
  <url>
    <loc>https://www.klarscientific.com/cdte</loc>
    <changefreq>daily</changefreq>
    <priority>0.75</priority>
    <lastmod>2025-07-10</lastmod>
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      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168540158-OR8368O83TR6JB9FICX2/ComparisonPlot.jpg</image:loc>
      <image:title>CdTe</image:title>
    </image:image>
    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168540161-39GHHL1X6S7ML45GVKL9/CZT+Peak+Center+CdTe+Alloy+Graphic.jpg</image:loc>
      <image:title>CdTe</image:title>
      <image:caption>False-color image of the PL peak energy in a slice from a CdZnTe boule.</image:caption>
    </image:image>
    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168540158-OR8368O83TR6JB9FICX2/ComparisonPlot.jpg</image:loc>
      <image:title>CdTe</image:title>
    </image:image>
    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168540161-39GHHL1X6S7ML45GVKL9/CZT+Peak+Center+CdTe+Alloy+Graphic.jpg</image:loc>
      <image:title>CdTe</image:title>
      <image:caption>False-color image of the PL peak energy in a slice from a CdZnTe boule.</image:caption>
    </image:image>
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  <url>
    <loc>https://www.klarscientific.com/spectroscopy-basics</loc>
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    <lastmod>2025-08-08</lastmod>
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      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168542589-CWLNY2M5HAX5ZYEFNM3S/PL+Diagram.png</image:loc>
      <image:title>Spectroscopy Basics</image:title>
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    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168542593-22Z0TV2Q0Y6TNL1FLGU4/energyVSwavelength.jpg</image:loc>
      <image:title>Spectroscopy Basics</image:title>
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    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168542596-MB7PML1O61GVADZNTCJF/Raman+Diagram+cropped.png</image:loc>
      <image:title>Spectroscopy Basics</image:title>
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    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168542599-B7LDL4VWWUYG03DY2DRS/Raman+energy+level+diagram.jpg</image:loc>
      <image:title>Spectroscopy Basics</image:title>
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    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168542589-CWLNY2M5HAX5ZYEFNM3S/PL+Diagram.png</image:loc>
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    <image:image>
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    <image:image>
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  <url>
    <loc>https://www.klarscientific.com/leadership</loc>
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    <lastmod>2025-10-12</lastmod>
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      <image:title>Leadership</image:title>
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    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168543417-K58XY6EA8OIHPA0QCX0U/Matt-McCluskey+hi+res+pic+cropped.jpg</image:loc>
      <image:title>Leadership</image:title>
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    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168543413-YUEABB7H9FMMO91I9RXD/Rick+pic.jpg</image:loc>
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  <url>
    <loc>https://www.klarscientific.com/data-analysis</loc>
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    <lastmod>2026-01-14</lastmod>
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      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168545953-EBGIM33V3N62DCZIMFJ2/Fig1+final.jpg</image:loc>
      <image:title>Data Analysis</image:title>
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    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168545960-4JTLX3U9QZ87D5DM02CJ/Fig+3+cropped.jpg</image:loc>
      <image:title>Data Analysis</image:title>
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    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168545963-X14AKJ3ZQE83XHL4LBRB/Fig+4+cropped.jpg</image:loc>
      <image:title>Data Analysis</image:title>
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    <image:image>
      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168545967-53VS4G48UJRO935O6CL1/Fig.+5.jpg</image:loc>
      <image:title>Data Analysis</image:title>
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    <image:image>
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  </url>
  <url>
    <loc>https://www.klarscientific.com/polymers</loc>
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    <lastmod>2025-07-29</lastmod>
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      <image:title>Polymers</image:title>
      <image:caption>Raman spectra of a polymer blend. The Raman peaks are characteristic of polystyrene.</image:caption>
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  <url>
    <loc>https://www.klarscientific.com/agriculture</loc>
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    <lastmod>2025-07-30</lastmod>
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      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168548721-VKOK2VP6QUOGHU8KL71F/Leaf+image.jpg</image:loc>
      <image:title>Agriculture</image:title>
      <image:caption>Left: Plot of the ratio of PS II to PS I fluorescence spectra of chlorophyll in a tomato leaf. Right: Spectra from two spots on the leaf.</image:caption>
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    <loc>https://www.klarscientific.com/nitrides</loc>
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    <lastmod>2026-01-09</lastmod>
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      <image:title>Nitrides</image:title>
      <image:caption>PL spectrum of InGaN. Peaks from the quantum well (QW) region and defect emission are indicated.</image:caption>
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      <image:title>Nitrides</image:title>
      <image:caption>PL maps of a commercial green LED. Top: InGaN quantum well emission. Bottom: Defect emission.</image:caption>
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    <loc>https://www.klarscientific.com/microscopy-basics</loc>
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    <lastmod>2025-08-08</lastmod>
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      <image:title>Microscopy Basics</image:title>
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      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168551018-AJ3J9R5ODWRH6Q7ET32Q/finite+vs+infinite+conjugate.png</image:loc>
      <image:title>Microscopy Basics</image:title>
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      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168551021-AWNSSQ1UBDS9KWHGERD6/fluorescence+vs+full+spectrum.png</image:loc>
      <image:title>Microscopy Basics</image:title>
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      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168551014-EDSC3YNY9PHXPKEKGND4/simple+two+lens+microscope.png</image:loc>
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  <url>
    <loc>https://www.klarscientific.com/test-measurement</loc>
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    <lastmod>2026-01-15</lastmod>
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  <url>
    <loc>https://www.klarscientific.com/contact</loc>
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    <lastmod>2026-01-30</lastmod>
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  <url>
    <loc>https://www.klarscientific.com/gallium-oxide</loc>
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    <lastmod>2025-07-30</lastmod>
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      <image:title>Gallium oxide</image:title>
      <image:caption>Map of the PL intensity of the 3.27 eV peak for a hydrogenated gallium oxide sample.</image:caption>
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    <image:image>
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      <image:title>Gallium oxide</image:title>
      <image:caption>SEM image (left) and map of the 3.27 eV PL intensity (right). An overlaid image is in the center. The defect emission intensity strongly correlates with the surface pits.</image:caption>
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    <image:image>
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  <url>
    <loc>https://www.klarscientific.com/2dmaterials</loc>
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    <lastmod>2025-07-29</lastmod>
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      <image:title>2D Materials</image:title>
      <image:caption>(a) PL spectra from the α-In2Se3 layer and the junction area; (b) PL energy map of the junction device; (c) corresponding temperature map obtained from the PL energies. After Wang et al., J. Phys. Chem. Lett. 8, 2887-2894 (2017).</image:caption>
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      <image:title>2D Materials</image:title>
      <image:caption>Left: In2Se3 – MoS2 heterostructures formed with In2Se3 on bottom and MoS2 on top. Electrodes are placed on top of both materials. The green box shows the region mapped on the right. Right: A 38×32 µm PL map of the MoS2 emission peak area at 1.84 eV. The map is composed of approximately 19,500 spectra, collected, fitted, and plotted using KlarFit.</image:caption>
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      <image:title>UV Microscopy</image:title>
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      <image:caption>Defect-induced LED nonuniformity</image:caption>
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      <image:loc>https://images.squarespace-cdn.com/content/v1/686ff852dec25a4066a66409/1752168567366-463YVQ6CQ0KXFMVQWTM2/CZT+Peak+Center+1500.jpg</image:loc>
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      <image:caption>Zn variation in CdZnTe</image:caption>
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      <image:caption>Contact-induced stress in LEDs</image:caption>
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      <image:caption>Typical photoluminescence spectrum from a GaN-on-Si HEMT wafer. The peak at 2.8 eV is typical of an Mg defect in the GaN layer [1]</image:caption>
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      <image:caption>Map of the peak energy across a section of the GaN-on-Si HEMT wafer. The fine structure shows the variation of Mg in the GaN layer across the crystal.</image:caption>
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      <image:caption>Energy map of a 2mm x 2mm section of a commercial InP wafer using a 635nm laser excitation source. The dotted box on the map shows a region containing one of the larger defects (see below).</image:caption>
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      <image:caption>Spectra from inside (top) and outside (bottom) the region containing a dislocation causing an increase in the bandgap by about 0.5%. The peak intensity of the emission from the dislocation is reduced by over 30%, a consequence of the change in the transition dynamics at the defect’s location in the crystal.</image:caption>
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