TY - UNPB
T1 - Roadmap: 2D Materials for Quantum Technologies
AU - Yan, Qimin
AU - Li, Tongcang
AU - Gao, Xingyu
AU - Vaidya, Sumukh
AU - Dikshit, Saakshi
AU - Luo, Yue
AU - Strauf, Stefan
AU - Moukaouine, Reda
AU - Pershin, Anton
AU - Gali, Adam
AU - Fang, Zhenyao
AU - Stanfield, Harvey
AU - Vera-Marun, Ivan J.
AU - Newburger, Michael
AU - Singh, Simranjeet
AU - Zhu, Tiancong
AU - Brotons i Gisbert, Mauro
AU - Jöns, Klaus D.
AU - Gerardot, Brian D.
AU - Kim, Brian S. Y.
AU - Schaibley, John R.
AU - Seyler, Kyle L.
AU - Balgley, Jesse
AU - Hone, James
AU - Fong, Kin Chung
AU - Wang, Lin
AU - Burkard, Guido
AU - Zeng, Yihang
AU - Heindel, Tobias
AU - Ateş, Serkan
AU - Vogl, Tobias
AU - Aharonovich, Igor
N1 - 81 pages; submitted to 2D Materials, IOP Publishing
PY - 2025/12/16
Y1 - 2025/12/16
N2 - Two-dimensional (2D) materials have emerged as a versatile and powerful platform for quantum technologies, offering atomic-scale control, strong quantum confinement, and seamless integration into heterogeneous device architectures. Their reduced dimensionality enables unique quantum phenomena, including optically addressable spin defects, tunable single-photon emitters, low-dimensional magnetism, gate-controlled superconductivity, and correlated states in Moiré superlattices. This Roadmap provides a comprehensive overview of recent progress and future directions in exploiting 2D materials for quantum sensing, computation, communication, and simulation. We survey advances spanning spin defects and quantum sensing, quantum emitters and nonlinear photonics, computational theory and data-driven discovery of quantum defects, spintronic and magnonic devices, cavity-engineered quantum materials, superconducting and hybrid quantum circuits, quantum dots, Moiré quantum simulators, and quantum communication platforms. Across these themes, we identify common challenges in defect control, coherence preservation, interfacial engineering, and scalable integration, alongside emerging opportunities driven by machine$-$learning$-$assisted design and integrated experiment$-$theory feedback loops. By connecting microscopic quantum states to mesoscopic excitations and macroscopic device architectures, this Roadmap outlines a materials-centric framework for integrating coherent quantum functionalities and positions 2D materials as foundational building blocks for next-generation quantum technologies.
AB - Two-dimensional (2D) materials have emerged as a versatile and powerful platform for quantum technologies, offering atomic-scale control, strong quantum confinement, and seamless integration into heterogeneous device architectures. Their reduced dimensionality enables unique quantum phenomena, including optically addressable spin defects, tunable single-photon emitters, low-dimensional magnetism, gate-controlled superconductivity, and correlated states in Moiré superlattices. This Roadmap provides a comprehensive overview of recent progress and future directions in exploiting 2D materials for quantum sensing, computation, communication, and simulation. We survey advances spanning spin defects and quantum sensing, quantum emitters and nonlinear photonics, computational theory and data-driven discovery of quantum defects, spintronic and magnonic devices, cavity-engineered quantum materials, superconducting and hybrid quantum circuits, quantum dots, Moiré quantum simulators, and quantum communication platforms. Across these themes, we identify common challenges in defect control, coherence preservation, interfacial engineering, and scalable integration, alongside emerging opportunities driven by machine$-$learning$-$assisted design and integrated experiment$-$theory feedback loops. By connecting microscopic quantum states to mesoscopic excitations and macroscopic device architectures, this Roadmap outlines a materials-centric framework for integrating coherent quantum functionalities and positions 2D materials as foundational building blocks for next-generation quantum technologies.
KW - quant-ph
KW - cond-mat.mtrl-sci
U2 - 10.48550/arXiv.2512.14973
DO - 10.48550/arXiv.2512.14973
M3 - Preprint
BT - Roadmap: 2D Materials for Quantum Technologies
PB - arXiv
ER -