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Nasrin Estaji

Publications and source records attributed to Nasrin Estaji.

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Enhanced Emission from Boron-Vacancy Center in Rhombohedral Boron Nitride

Boron nitride is a layered crystal whose properties depend on how its atomic sheets are stacked. Its negatively charged boron vacancy is a well-established magnetic defect that can be prepared and read out optically, but in the common hexagonal form it emits very little light, because the symmetry of the surrounding lattice forbids the relevant optical transition. Here we show, using first-principles calculations, that stacking the sheets in the rhombohedral sequence instead removes this restriction and increases the emitted intensity by one to two orders of magnitude, while the magnetic properties remain comparable or improve. We predict that the resulting emission is bright enough for a single defect to be addressed at room temperature, and that a sharp emission line, absent in the hexagonal form, should appear on cooling. Stacking order therefore acts as a design parameter for tailoring the quantum properties of defects embedded in layered materials.

quant-ph

Spin-Phonon Relaxation of Boron-Vacancy Centers in Two-Dimensional Boron Nitride Polytypes

Two-dimensional (2D) materials hosting color centers and spin defects are emerging as key platforms for quantum technologies. However, the impact of reduced dimensionality on the spin-lattice relaxation time ($T_1$) of embedded defect spins -- critical for quantum applications -- remains largely unexplored. In this study, we present a systematic first-principles investigation of the negatively charged boron-vacancy (V$_{\text{B}}^-$) defect in monolayer boron nitride (BN), as well as in AA$^\prime$-stacked hexagonal BN (hBN) and ABC-stacked rhombohedral BN (rBN). Our results reveal that the $T_1$ times of V$_{\text{B}}^-$ in monolayer BN and hBN are nearly identical at room temperature. Surprisingly, despite the symmetry reduction in rBN opening additional spin relaxation channels, V$_{\text{B}}^-$ exhibits a longer $T_1$ compared to hBN. We attribute this effect to the stiffer out-of-plane phonon modes in rBN, which activate spin-phonon relaxation at reduced strength. These findings suggest that V$_{\text{B}}^-$ in rBN offers enhanced spin coherence properties, making it a promising candidate for quantum technology applications.

quant-ph