arXiv · 2510.27374
Probing Many-Body Phenomena with Atomically Thin Nuclear Spin Layers in Diamond
Abstract
Quantum simulation aims to recreate complex many-body phenomena in controlled environments, offering insights into dynamics that are otherwise difficult to model. Existing platforms, however, are often complex and costly to scale, typically requiring ultra pure vacuum or low temperatures. Here, we introduce a platform based on a thin, strongly interacting ${}^{13}\text{C}$ nuclear spin layer in diamond that allows controlled exploration of many-body dynamics at room temperature. Nearby nitrogen-vacancy centers enable polarization, readout, and, combined with radio-frequency fields, coherent control of the nuclear spins. We demonstrate strong, tunable interactions among the nuclear spins and use the system to probe discrete time-crystalline order across varying interaction ranges. By combining ease of use with operation at ambient temperatures, our work opens new opportunities for investigating strongly correlated many-body effects.
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Philipp J. Vetter, Christoph Findler, Antonio Verdú, Matthias Kost, Rémi Blinder, Jens Fuhrmann, Christian Osterkamp, Johannes Lang, Martin B. Plenio, Javier Prior, Fedor Jelezko. 2025-10-31. Probing Many-Body Phenomena with Atomically Thin Nuclear Spin Layers in Diamond. https://doi.org/10.1103/6z22-4z36
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