Elucidating the Inter-system Crossing of the Nitrogen-Vacancy Center up to Megabar Pressures
arXiv:2511.20750 · doi:10.1103/hxtk-vmjq
Abstract
The integration of Nitrogen-Vacancy color centers into diamond anvil cells has opened the door to quantum sensing at megabar pressures. Despite a multitude of experimental demonstrations and applications ranging from quantum materials to geophysics, a detailed microscopic understanding of how stress affects the NV center remains lacking. In this work, using a combination of first principles calculations as well as high-pressure NV experiments, we develop a complete description of the NV's optical properties under general stress conditions. In particular, our ab initio calculations reveal the complex behavior of the NV's inter-system crossing rates under stresses that both preserve and break the defect's symmetry. Crucially, our proposed framework immediately resolves a number of open questions in the field, including: (i) the microscopic origin of the observed contrast-enhancement in (111)-oriented anvils, and (ii) the surprising observation of NV contrast-inversion in certain high-pressure regimes. Our work lays the foundation for optimizing the performance of NV high-pressure sensors by controlling the local stress environment, and more generally, suggests that symmetry-breaking stresses can be utilized as a novel tuning knob for generic solid-state spin defects.
References in corpus (24)
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- Quantum ESPRESSO toward the exascale
- First-principles theory of the luminescence lineshape for the triplet transition in diamond NV centre
- Spin dynamics in the optical cycle of single nitrogen-vacancy centres in diamond
- The negatively charged nitrogen-vacancy centre in diamond: the electronic solution
- Phonon-Induced Population Dynamics and Intersystem Crossing in Nitrogen-Vacancy Centers
- State-selective intersystem crossing in nitrogen-vacancy centers
- Imaging the Meissner effect and flux trapping in a hydride superconductor at megabar pressures using a nanoscale quantum sensor
- Time-averaging within the excited state of the nitrogen-vacancy centre in diamond
- Photoluminescence spectra of point defects in semiconductors: validation of first principles calculations
- Green's function formulation of quantum defect embedding theory
- Optically Enhanced Electric Field Sensing Using Nitrogen-Vacancy Ensembles
- Excited state properties of point defects in semiconductors and insulators investigated with time-dependent density functional theory
- A multiconfigurational study of the negatively charged nitrogen-vacancy center in diamond
- Quantum sensing with diamond NV centers under megabar pressures
- Temperature dependence of photoluminescence intensity and spin contrast in nitrogen-vacancy centers
- Modeling temperature-dependent population dynamics in the excited state of the nitrogen-vacancy center in diamond
- Probing Stress and Magnetism at High Pressures with Two-Dimensional Quantum Sensors
- Advances in Quantum Defect Embedding Theory
- First-Principles Framework for the Prediction of Intersystem Crossing Rates in Spin Defects: The Role of Electron Correlation
- Evidence for the Meissner effect in the nickelate superconductor La3Ni2O7-delta single crystal using diamond quantum sensors
- Intrinsic high-fidelity spin polarization of charged vacancies in hexagonal boron nitride
- GPa Pressure Imaging Using Nanodiamond Quantum Sensors
- Magneto-optical properties of Group-IV--vacancy centers in diamond upon hydrostatic pressure