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Narender Kumar

Publications and source records attributed to Narender Kumar.

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Pentagonal PdTe2 Monolayer for Sustainable Solar-driven Hydrogen Production

This investigation demonstrates that the pentagonal PdTe$_2$ (penta-PdTe$_2$) monolayer is a highly tunable two-dimensional (2D) photocatalyst, characterized by a bandgap of 1.87~eV and high hole mobility. Using density functional theory (DFT) calculations with the HSE06 functional, we show that tensile strain engineering, particularly at $+2%$ and $+3%$, is essential for enabling spontaneous water splitting. At these strain values, the valence-band maximum (VBM) and conduction-band maximum (CBM) straddle the water redox potentials ($\mathrm{H^+/H_2}$ and $\mathrm{O_2/H_2O}$) under both acidic ($\mathrm{pH}=0$) and neutral ($\mathrm{pH}=7$) conditions. The monolayer's low hole effective mass facilitates rapid charge extraction, mitigating electron--hole recombination and promoting the oxygen evolution reaction (OER) more effectively than many hexagonal and pentagonal counterparts. The Gibbs free energy ($\Delta G$) pathways indicate that the overpotentials for the hydrogen evolution reaction (HER) and OER are highly sensitive to mechanical deformation, specifically biaxial strain. In particular, a tensile strain of $+3%$ yields an optimized balance of overpotentials, with $\eta_{\mathrm{HER}} = 0.70~\mathrm{V}$ at $\mathrm{pH}=0$ and $\eta_{\mathrm{OER}} = 0.72~\mathrm{V}$ at $\mathrm{pH}=7$. Finally, integrating optical absorption with thermodynamic driving forces results in a solar-to-hydrogen (STH) efficiency of $20.40%$ at $\mathrm{pH}=7$. This performance exceeds that of several previously reported two-dimensional catalysts, positioning penta-PdTe$_2$ as a superior candidate for sustainable, solar-driven hydrogen production.

cond-mat.mtrl-sci

Supersonic gas curtain based real-time ionization profile monitor for hadron therapy

Accurate control and monitoring of the beam is essential for precise dose delivery to tumor tissues during radiotherapy. Real-time monitoring of ion beam profiles and positions improves beam control, patient safety, and treatment reliability by providing immediate feedback. This becomes even more critical in FLASH therapy, where the short corrective window during high-dose delivery demands precise beam control. Existing devices are often limited to in vitro calibration or focus on monitoring a single parameter during treatment. This study aims to develop a device that can simultaneously monitor beam position, profile, current, and energy in real-time, without perturbing the beam, using a supersonic gas curtain system. A supersonic gas curtain beam profile monitor was developed at the Cockcroft Institute to assess its performance and suitability for applications in hadron-beam therapy. The system was integrated with one of the beamlines of the Pelletron accelerator at the Dalton Cumbrian Facility, UK and 2D profile measurements of carbon beams were conducted. The monitor successfully measured the beam profiles within 100ms to 1s across various beam currents (1 - 100 nA), energies (12 - 24 MeV), and charge states (2-5) of carbon. Recorded data was used to estimate detector performance by introducing a parameter called detection limit to quantify sensitivity of the monitor, identifying the threshold number of ions required for detection onset. A method to quantify sensitivity under different beam conditions is then discussed in detail, illustrated with an example case of FLASH beam parameters. This proof-of-concept study demonstrates the performance of the gas curtain-based ionization profile monitor for 2D transverse beam profile measurement of carbon ions. The sensitivity is quantified and evaluated against an example case for FLASH conditions.

physics.acc-ph