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Image Search Results


UV-Vis diffuse reflectance spectra with Tauc plot inset (a) and photoluminescence spectra (b) of ZnO and LaOCl/ZnO composite synthesized via the Terminalia catappa -assisted route.

Journal: RSC Advances

Article Title: Green-synthesized LaOCl/ZnO heterojunction for efficient photocatalytic degradation of methyl orange

doi: 10.1039/d6ra04025j

Figure Lengend Snippet: UV-Vis diffuse reflectance spectra with Tauc plot inset (a) and photoluminescence spectra (b) of ZnO and LaOCl/ZnO composite synthesized via the Terminalia catappa -assisted route.

Article Snippet: The bandgap energy and optical characteristics were measured with an integrating sphere attachment using UV-Vis diffuse reflectance spectroscopy (UV-Vis DRS, V-750, JASCO, Japan).

Techniques: Synthesized

( A ) UV-vis-NIR absorption spectra of 2D c-MOF films (self-assembled on glass-based substrates), with data normalized to the absorption peak in the NIR-II region. ( B ) Simulated absorption spectra of different molecular segments, including the small-conjugated, noncoordinated fragment without radicals (H-DAI); the small-conjugated, noncoordinated fragment with radicals (H-DAI-2H); the small-conjugated, coordinated fragment with radicals (Ni-2-H-DAI); the extended-conjugated, noncoordinated fragment without radicals (ligand, H-HATI); the extended-conjugated, noncoordinated fragment with radicals (H-HATI-2H); and the extended-conjugated and coordinated fragment with radicals (Ni-2-H-HATI). ( C ) Electron-hole distributions of H-CMOF (left) and Me-CMOF (right) corresponding to the NIR-II-related transition. ( D and E ) Effect of alkyl chains on electrostatic potential distribution (D) and molecular configuration (E) of 2D c-MOFs. ( F ) High-resolution XPS spectrum of Ni (2p) for 2D c-MOFs.

Journal: Science Advances

Article Title: Super-stable two-dimensional radical conjugated metal-organic frameworks for efficient NIR-II photothermal conversion

doi: 10.1126/sciadv.aec7519

Figure Lengend Snippet: ( A ) UV-vis-NIR absorption spectra of 2D c-MOF films (self-assembled on glass-based substrates), with data normalized to the absorption peak in the NIR-II region. ( B ) Simulated absorption spectra of different molecular segments, including the small-conjugated, noncoordinated fragment without radicals (H-DAI); the small-conjugated, noncoordinated fragment with radicals (H-DAI-2H); the small-conjugated, coordinated fragment with radicals (Ni-2-H-DAI); the extended-conjugated, noncoordinated fragment without radicals (ligand, H-HATI); the extended-conjugated, noncoordinated fragment with radicals (H-HATI-2H); and the extended-conjugated and coordinated fragment with radicals (Ni-2-H-HATI). ( C ) Electron-hole distributions of H-CMOF (left) and Me-CMOF (right) corresponding to the NIR-II-related transition. ( D and E ) Effect of alkyl chains on electrostatic potential distribution (D) and molecular configuration (E) of 2D c-MOFs. ( F ) High-resolution XPS spectrum of Ni (2p) for 2D c-MOFs.

Article Snippet: The reflection spectra of 2D c-MOFs solid-state films were measured on a diffuse reflectance UV-vis-NIR absorption spectrometer (UH4150, Hitachi Co.) at the Renmin University of China Analysis Center (fig. S28A).

Techniques:

UV-vis DRS of TiO 2 samples (P25, R, A, M). ( a ) pristine commercial samples; ( b ) N, C co-doped samples; ( c ) thermal treated commercial samples; ( d ) thermal treated N, C co-doped samples.

Journal: Molecules

Article Title: Influence of the TiO 2 Precursor Phase on the Properties and Photoelectrooxidation Performance of Black TiO 2 -Impregnated Electrodes for Acetaminophen Degradation

doi: 10.3390/molecules31091509

Figure Lengend Snippet: UV-vis DRS of TiO 2 samples (P25, R, A, M). ( a ) pristine commercial samples; ( b ) N, C co-doped samples; ( c ) thermal treated commercial samples; ( d ) thermal treated N, C co-doped samples.

Article Snippet: UV–Vis diffuse reflectance spectra (UV–Vis DRS) were recorded at room temperature using a UV–Vis/NIR spectrophotometer (V-770, Jasco Inc.) over a wavelength range of 200–1000 nm [ , , ].

Techniques: