Scalable nanoscale positioning of highly coherent color centers in prefabricated diamond nanostructures

S Sunghoon Kim P Paz London D Daipeng Yang L Lillian B. Hughes J Jeffrey Ahlers S Simon Meynell W William J. Mitchell K Kunal Mukherjee A Ania C. Bleszynski Jayich

Abstract

Abstract Nanophotonic devices in color center-containing hosts provide efficient readout, control, and entanglement of the embedded emitters. Yet control over color center formation – in number, position, and coherence – in nanophotonic devices remains a challenge to scalability. Here, we report a controlled creation of highly coherent diamond nitrogen-vacancy (NV) centers with nanoscale three-dimensional localization in prefabricated nanostructures with high yield. Combining nitrogen δ -doping during chemical vapor deposition diamond growth and localized electron irradiation, we form shallow NVs registered to the center of diamond nanopillars with wide tunability over NV number. We report a positioning precision of  ~ 4 nm in depth and 46(1) nm laterally in 280 nm-diameter pillars (102(2) nm in bulk diamond). We reliably form single NV centers with long spin coherence times (average $${T}_{2}^{Hahn}=98\, \mu {{{\rm{s}}}}$$ T 2 H a h n = 98 μ s ) and higher average photoluminescence compared to NV centers randomly positioned in pillars. Our method can improve the performance of various NV-based devices. In the realm of magnetic sensing, we achieve a 3 × improved yield of NV centers with single electron-spin sensitivity over conventional implantation-based methods. Our high-yield defect creation method will enable scalable production of solid-state defect sensors and processors.

Article Details

Volume / Issue Vol. 16, Issue 1
Published November 06, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (9)

S

Sunghoon Kim

P

Paz London

D

Daipeng Yang

L

Lillian B. Hughes

J

Jeffrey Ahlers

S

Simon Meynell

W

William J. Mitchell

K

Kunal Mukherjee

A

Ania C. Bleszynski Jayich