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Paresh Pradhan

Publications and source records attributed to Paresh Pradhan.

2 recordsLinked to original sources

High-Luminosity meV-Resolution Single-Shot Hard X-ray Spectrograph for Cavity-Based X-ray Free-Electron Lasers

Cavity-based x-ray free-electron lasers (CBXFELs) represent a possible realization of fully coherent hard x-ray sources having high spectral brilliance along with a narrow spectral bandwidth of $\simeq 1 - 50$~meV, a high repetition pulse rate of $\simeq 1$~MHz, and good stability. A diagnostic tool is required to measure CBXFEL spectra with meV resolution and high luminosity on a shot-to-shot basis. We have designed a high-luminosity single-shot hard x-ray spectrograph that images 9.831-keV x-rays in a $\simeq 200$~meV spectral window with a spectral resolution of a few meV. The spectrograph is designed around angular dispersion of x-rays in Bragg diffraction from crystals. It operates close to design specifications, exhibiting a linear dispersion rate of $\simeq$~1.4~$\mu$m/meV and a $\simeq$~200-meV window of high-fidelity spectral imaging. The experimentally demonstrated spectral resolution is $\simeq 20$~meV; this resolution is twice as low as expected from theory primarily because the spectrograph is highly sensitive to crystal angular instabilities. The experiment was performed at the bending magnet x-ray optics testing beamline 1-BM at the Advanced Photon Source.

physics.optics

Small Bragg-plane slope errors revealed in synthetic diamond crystals

Wavefront-preserving x-ray diamond crystal optics are essential for numerous applications in x-ray science. Perfect crystals with flat Bragg planes are a prerequisite for wavefront preservation in Bragg diffraction. However, this condition is difficult to realize in practice because of inevitable crystal imperfections. Here we use x-ray rocking curve imaging to study the smallest achievable Bragg-plane slope errors in the best presently available synthetic diamond crystals and how they compare with those of perfect silicon crystals. We show that the smallest specific slope errors in the best diamond crystals (both freestanding or strain-free mounted) are about 0.15-0.2~$μ$rad/mm$^2$. These errors are only a factor of two larger than the 0.05-0.1~$μ$rad/mm$^2$ specific slope errors we measure in perfect silicon crystals. High-temperature annealing at 1450$^{\circ}$C of almost flawless diamond crystals reduces the slope errors very close to those of silicon. Further investigations are required to establish the wavefront-preservation properties of these crystals.

physics.ins-det