Identifying high-energy electronic states of NV− centers in diamond

M Minh Tuan Luu (Max-Planck Institut für Polymerforschung 1 , Ackermannweg 10, 55128 Mainz,) C Christopher Linderälv (Department of Physics, Centre for Material Science and Nanotechnology, University of Oslo 2 , P.O. Box 1048, Blindern, Oslo N-0316,) Z Zsolt Benedek (Department of Physics of Complex Systems, Eötvös Loránd University 3 , Egyetem tér 1-3, H-1053 Budapest,) Ádám Ganyecz (MTA–ELTE Lendület “Momentum” NewQubit Research Group 4 , Pázmány Péter, Sétány 1/A, 1117 Budapest,) G Gergely Barcza (MTA–ELTE Lendület “Momentum” NewQubit Research Group 4 , Pázmány Péter, Sétány 1/A, 1117 Budapest,) V Viktor Ivády R Ronald Ulbricht (Max-Planck Institut für Polymerforschung 1 , Ackermannweg 10, 55128 Mainz,)

Abstract

The negatively charged nitrogen-vacancy center in diamond is a prototype photoluminescent point defect spin qubit with promising quantum technology applications, enabled by its efficient optical spin polarization and readout. Its low-lying electronic states and optical spin polarization cycle have been well characterized over decades, establishing it as a benchmark system for state-of-the-art computational methods in point defect research. While the optical cycle is well understood, a comprehensive energetic analysis of higher-lying states has received less attention until recently. In this joint experimental theoretical study, we identify and characterize five high-energy states beyond those involved in the optical cycle. Using transient absorption spectroscopy, we determine their transition energies and relative oscillator strengths. Additionally, we perform two independent numerical studies employing two state-of-the-art post-density functional theory methods to support the experimental findings and assign energy levels. These results enhance our understanding of the nitrogen-vacancy center's energy spectrum, providing a broader reference for benchmarking high-level first-principles methods.

Article Details

Volume / Issue Vol. 126, Issue 23
Published June 09, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (7)

M

Minh Tuan Luu

Max-Planck Institut für Polymerforschung 1 , Ackermannweg 10, 55128 Mainz,

C

Christopher Linderälv

Department of Physics, Centre for Material Science and Nanotechnology, University of Oslo 2 , P.O. Box 1048, Blindern, Oslo N-0316,

Z

Zsolt Benedek

Department of Physics of Complex Systems, Eötvös Loránd University 3 , Egyetem tér 1-3, H-1053 Budapest,

Ádám Ganyecz

MTA–ELTE Lendület “Momentum” NewQubit Research Group 4 , Pázmány Péter, Sétány 1/A, 1117 Budapest,

G

Gergely Barcza

MTA–ELTE Lendület “Momentum” NewQubit Research Group 4 , Pázmány Péter, Sétány 1/A, 1117 Budapest,

V

Viktor Ivády

R

Ronald Ulbricht

Max-Planck Institut für Polymerforschung 1 , Ackermannweg 10, 55128 Mainz,