Nature , 2026, 655 (8121), 102-108.

Bottom-up synthesis of molecular nanodiamond from nanographene

Liang, Jiaxu | Ender, Christopher P. | Forero-Martinez, Nancy C. | Batatia, Ilyes | Liu, Jingyi | Yang, Xin | Gonzalez Brouwer, Raul | Kazak, Lev | Blinder, Rémi | Cancellara, Leonardo | Tarakina, Nadezda V. | Liu, Yizhi | Eklund, Tobias | Sinha, Mangalika | Köster, Sarah | Bhat, Shrikant | Rohmann, Fabian | Tangemann, Andreas | Gallo, Kilian Lee | Berger, Rüdiger | Farla, Robert | Kubanek, Alexander | Amann- Winkel, Katrin | Wagner, Manfred | Jelezko, Fedor | Müllen, Klaus | Csanyi, Gabor | Cortes-Huerto, Robinson | Wu, Yingke | Weil, Tanja

Nanodiamonds hosting colour centres are promising building blocks for quantum technologies, enabling advances in quantum computation1,2, nanoscale NMR spectroscopy3,4,5,6, single-spin magnetometry7,8, wide-field quantum imaging9 and single-photon sources10,11. However, the controlled bottom-up synthesis of ultrasmall and structurally uniform nanodiamonds has remained a challenge, with existing methods producing heterogeneous materials that vary in size, morphology, impurity content and defect quality. Here we show that well-defined, hydrogen-terminated molecular nanographenes serve as chemically confined precursors for high-pressure, high-temperature synthesis of ultrasmall (3–4 nm), monodisperse and highly crystalline molecular nanodiamonds with only a single sp2 surface reconstruction and produced on a milligram scale. The same bottom-up platform also enables a two-component strategy for incorporating silicon- and germanium-based colour centres during synthesis, yielding SiV− and GeV− emitters without ion implantation, irradiation or post-treatment. Because the nanographene precursor defines both the confined carbon framework and the hydrogen content, this approach provides intrinsic, precursor-level control over nanodiamond size and composition, particularly in the low-nanometre regime relevant for biological and quantum sensing. Molecular nanographenes, ultralarge polycyclic aromatic hydrocarbons, therefore, establish a scalable and modular route to high-quality molecular and fluorescent nanodiamonds and offer a general design principle for tailored quantum materials and nanoscale devices.

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