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Updated: May 28, 2026

Compact Quantum Dots for Single-molecule Imaging
Published on: October 9, 2012
Rounded Monodisperse Fluorescent Nanodiamonds
Helena Raabova1, Ivan Rehor1,2, Jan Havlik1,2
1Institute of Organic Chemistry and Biochemistry of the CAS, Prague, Czechia.
None:
Shape heterogeneity and surface sp2 carbon in high-pressure high-temperature nanodiamonds (HPHT NDs) compromise nitrogen-vacancy (NV) sensing and imaging capabilities. Rapid molten-nitrate etching is investigated on a ∼gram preparative scale to round off HPHT NDs while removing sp2 carbon. Subsequent centrifugal fractionation narrows size distribution, yielding more homogenized samples. Etching conditions of 567°C and 6 min maximize particle circularity at an acceptable mass yield. The rounding of ND particles is quantified by transmission electron microscopy (TEM), high-resolution TEM with electron energy loss (EELS), and Raman spectroscopy, which confirm atomically stepped surfaces with markedly reduced sp2 content. After separation, the rounded NDs exhibit a number-weighted maximum at ∼35-40 nm (mean: 34 nm) and substantially reduced dispersity. Aqueous colloids retain negative ζ-potential and are colloidally stable. After irradiation and annealing, the rounded NDs show an increased proportion of luminescent particles (66% vs. 24% for angular controls) and more than twofold greater single-particle photoluminescence under identical excitation conditions. Additionally, the NV- charge state and NV spin longitudinal relaxation (T1) are preserved after the etching. Furthermore, the process is compatible with further scale-up and provides shape-controlled, low-sp2, narrowly size-dispersed NDs with enhanced optical properties, bringing improved reproducibility to bioimaging and quantum sensing.

