Mesoscale atomic engineering in a crystal lattice
Klein J, Roccapriore KM, Weile M, Grytsiuk S, Lupini AR, Sofer Z, Pashov D, van Schilfgaarde M, Acharya S, Rösner M, Ross FM (2026)
Nature 653: 715-722.
Zeitschriftenaufsatz
| Veröffentlicht | Englisch
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Autor*in
Klein, Julian;
Roccapriore, Kevin M.;
Weile, Mads;
Grytsiuk, Sergii;
Lupini, Andrew R.;
Sofer, Zdenek;
Pashov, Dimitar;
van Schilfgaarde, Mark;
Acharya, Swagata;
Rösner, MalteUniBi;
Ross, Frances M.
Abstract / Bemerkung
Controlling individual atoms using lasers(1), ion traps(2) and scanning probe tips(3) has transformed our understanding of matter and enabled breakthroughs in quantum science(4, 5-6). Extending this control into three-dimensional (3D) solids and across mesoscopic scales, however, remains a foundational challenge. Electron irradiation in electron microscopes is known to induce atomic displacements(7), and atomic manipulation has been proposed(8) and demonstrated(9,10). Yet repeated and deterministic control has remained elusive(9, 10, 11, 12, 13, 14, 15, 16-17). Here we demonstrate deterministic atomic engineering in a 3D crystal, creating ordered arrangements of more than 40,000 user-defined defects within minutes across a 150 nm & times; 100 nm & times; 13 nm volume. By steering individual Cr atoms in the magnetic semiconductor CrSBr into selected interstitial sites using an electron beam directed with sub-20-pm-scale accuracy, we create vacancy-interstitial complexes. The resulting impurity array forms a mesoscale crystal embedded within the host lattice, a new form of engineered artificial matter that remains stable at room temperature and outside the microscope. By tracking Cr atom displacements, we identify conditions under which the defect structures are predictable. Our calculations suggest that these defects form correlated impurity states with intra-defect optical transitions and inter-defect kinetic and Coulomb interactions. This establishes a generalizable platform for atomic defect engineering at mesoscopic, and potentially macroscopic, scales, opening opportunities for scalable quantum technologies, including deterministic colour-centre placement, quantum simulation of many-body lattice models and atomic-scale manufacturing.
Erscheinungsjahr
2026
Zeitschriftentitel
Nature
Band
653
Seite(n)
715-722
ISSN
0028-0836
eISSN
1476-4687
Page URI
https://pub.uni-bielefeld.de/record/3016991
Zitieren
Klein J, Roccapriore KM, Weile M, et al. Mesoscale atomic engineering in a crystal lattice. Nature . 2026;653:715-722.
Klein, J., Roccapriore, K. M., Weile, M., Grytsiuk, S., Lupini, A. R., Sofer, Z., Pashov, D., et al. (2026). Mesoscale atomic engineering in a crystal lattice. Nature , 653, 715-722. https://doi.org/10.1038/s41586-026-10431-9
Klein, Julian, Roccapriore, Kevin M., Weile, Mads, Grytsiuk, Sergii, Lupini, Andrew R., Sofer, Zdenek, Pashov, Dimitar, et al. 2026. “Mesoscale atomic engineering in a crystal lattice”. Nature 653: 715-722.
Klein, J., Roccapriore, K. M., Weile, M., Grytsiuk, S., Lupini, A. R., Sofer, Z., Pashov, D., van Schilfgaarde, M., Acharya, S., Rösner, M., et al. (2026). Mesoscale atomic engineering in a crystal lattice. Nature 653, 715-722.
Klein, J., et al., 2026. Mesoscale atomic engineering in a crystal lattice. Nature , 653, p 715-722.
J. Klein, et al., “Mesoscale atomic engineering in a crystal lattice”, Nature , vol. 653, 2026, pp. 715-722.
Klein, J., Roccapriore, K.M., Weile, M., Grytsiuk, S., Lupini, A.R., Sofer, Z., Pashov, D., van Schilfgaarde, M., Acharya, S., Rösner, M., Ross, F.M.: Mesoscale atomic engineering in a crystal lattice. Nature . 653, 715-722 (2026).
Klein, Julian, Roccapriore, Kevin M., Weile, Mads, Grytsiuk, Sergii, Lupini, Andrew R., Sofer, Zdenek, Pashov, Dimitar, van Schilfgaarde, Mark, Acharya, Swagata, Rösner, Malte, and Ross, Frances M. “Mesoscale atomic engineering in a crystal lattice”. Nature 653 (2026): 715-722.
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