Searcharxiv⌕ Search

arXiv subjects

Anand Prashant Dwivedi

Publications and source records attributed to Anand Prashant Dwivedi.

3 recordsLinked to original sources

Anomalous 140 K electronic transition in Bi$_2$Se$_3$: Possible charge order in a defect-engineered system

We report an anomalous electronic transition at 140~K in high-quality Bi$_2$Se$_3$, where charge order emerges in a defect-tuned system. Native defects (Se vacancies and Bi intercalation)-intrinsic to our reproducible growth method-modulate electronic states without compromising sample integrity, mirroring doping-induced phases in correlated topological materials. The hexagonally deformed Fermi surfaces and strong nesting in Bi$_2$Se$_3$ and related compounds (such as, Bi$_2$Te$_3$ ) have long suggested the possibility of density wave ordering, with recent work on superconducting Cu- and Nb-doped Bi$_2$Se$_3$ further highlighting charge order's role in unconventional superconductivity. Here, we identify a periodic lattice distortion near room temperature via electron diffraction, consistent with diffuse charge order. This is accompanied by a 140~K electronic transition, manifested in resistivity measurements as a pronounced anomaly, exhibiting a semiconductor-like upturn, signaling the opening of an energy gap. Nuclear magnetic resonance (NMR) studies of the $^{209}$Bi spin-lattice relaxation rate (1/$T_1$ ) reveal a concurrent transition, confirming the emergence of an 8~meV energy gap. Our results are consistent with defect-stabilized charge order in Bi$_2$Se$_3$ , linking native defects to its electronic properties and offering broader insights into the interplay between charge order and superconductivity in topological materials.

cond-mat.str-el↗

$\textit{In situ}$ time-resolved X-ray absorption spectroscopy of shock-loaded magnesiosiderite

Carbonate minerals are important in Earth's system sciences and have been found on Mars and in meteorites and asteroids, highlighting the importance of impacts in planetary processes. While extensively studied under static compression, the behavior of carbonates under shock compression remains underexplored, with no $\textit{in situ}$ X-ray investigations reported so far. Here we investigate natural magnesiosiderite (Fe$_{0.6}$Mg$_{0.4}$CO$_{3}$) under nanosecond laser-driven shock compression at pressures up to 150 GPa, coupled with $\textit{in situ}$ ultrafast synchrotron X-ray absorption spectroscopy (XAS). The interpretation of the experimental spectra is complemented using first-principles absorption cross-section calculations performed on crystalline phases at different pressures and on a dense liquid phase obtained using density functional theory-based molecular dynamics (DFT-MD) simulations. Under laser-driven shock compression, the magnesiosiderite crystal phase remains unchanged up to the melt. Under shock reverberation, the absorption spectra show changes similar to those attributed to a high-spin to low-spin transition observed under static compression. At higher pressures, the laser shock induces the formation of CO$_4$ tetrahedral units in the melt. Upon unloading from the shocked state, only a few nanoseconds later, the original magnesiosiderite phase is recovered.

cond-mat.mtrl-sci↗

Table-top NMR system for high-pressure studies with in-situ laser heating

High pressure Nuclear Magnetic Resonance (NMR) is known to uncover behavior of matter at extreme conditions. However, significant maintenance demands, space requirements and high costs of superconducting magnets render its application unfeasible for regular modern high pressure laboratories. Here, we present a table-top NMR system based on permanent Halbach magnet arrays with dimensions of 25 cm diameter and 4 cm height. At the highest field of 1013 mT, 1H-NMR spectra of Ice VII have been recorded at 25 GPa and ambient temperature. The table-top NMR system can be used together with double sided laser heating set-ups. Feasibility of high-pressure high-temperature NMR was demonstrated by collecting 1H-NMR spectra of H2O at 25 GPa and 1063(50) K. We found that the change in signal intensity in laser-heated NMR diamond anvil cell yields a convenient way for temperature measurements.

physics.app-ph↗