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February 8, 2026Advanced Materials Interfaces0 citationsOpen Access

Self‐Assembled Fluorescent Nanodiamond Layers for Quantum Imaging

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KCKatherine CheaEGErin S. GrantKRKevin J. Rietwyk

Key Points

  • The aim is to develop a scalable method for fabricating fluorescent nanodiamond layers for magnetic imaging applications.
  • Fabrication of NV-containing fluorescent nanodiamond layers through electrostatic self-assembly.
  • Investigation of variables including FND concentration, substrate immersion time, and solvent pH.
  • Optimization of self-assembly conditions to enhance FND density and reduce aggregation.
  • Implementation of magnetic field imaging using NV optically detected magnetic resonance.
  • Successful demonstration of magnetic imaging at the microscale using FND layers.
  • Identification of optimal conditions leading to maximized FND density on substrates.
  • FND layers showed effective magnetic noise imaging capabilities.

Abstract

ABSTRACT The nitrogen‐vacancy (NV) center in diamond is emerging as a powerful tool for imaging magnetic and electric signals at the microscale and below. However, most imaging demonstrations thus far have relied on costly, millimeter‐sized bulk diamond substrates, which cannot be easily scaled or integrated with other materials. Here, we report a scalable method for fabricating NV‐containing dense and homogenous fluorescent nanodiamond (FND) layers through electrostatic self‐assembly and demonstrate the utility of the FND layers for magnetic imaging. We investigate the effect of FND concentration in suspension, substrate immersion time, and solvent pH on the FND density on the substrate. We identify optimized self‐assembly conditions that maximize the FND density while minimizing aggregation. Using FND layers on a quartz substrate, we demonstrate magnetic field and magnetic noise imaging at the microscale, based on NV optically detected magnetic resonance magnetometry and T 1 relaxometry, respectively. Our results provide a direction for the development of cost‐effective and scalable FND layers and surface coatings. This paves the way for on‐demand quantum sensing and imaging on a broad range of surfaces based on NV centers and other diamond quantum emitters.

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Cite This Study

Chea et al. (2026) studied this question.

synapsesocial.com/papers/698828010fc35cd7a88471b1https://doi.org/10.1002/admi.202500957
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