Tunable and Transferable Diamond Membranes for Integrated Quantum Technologies
ORAL
Abstract
Color centers in diamond are widely explored as qubits in quantum technologies. However, challenges remain in the effective and efficient integration of these diamond-hosted qubits in device heterostructures. Here, nanoscale-thick uniform diamond membranes are synthesized via ``smart-cut'' and isotopically (12C) purified overgrowth. These membranes have tunable thicknesses (demonstrated 50 nm to 250 nm), are deterministically transferable, have bilaterally atomically flat surfaces (≤0.3 nm), and bulk-diamond-like crystallinity. Color centers are synthesized via both implantation and in-situ overgrowth incorporation. Within 110 nm-thick membranes, individual germanium-vacancy (GeV-) centers exhibit stable photoluminescence at 5.4 K and average optical transition linewidths as low as 125 MHz. The room temperature spin coherence of individual nitrogen-vacancy (NV-) centers shows Ramsey spin dephasing times (T2*) and Hahn echo times (T2) as long as 150 μs and 400 μs, respectively. This platform enables the straightforward integration of diamond membranes that host coherent color centers into quantum technologies.
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Publication: arxiv:2109.11507
Presenters
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Xinghan Guo
University of Chicago
Authors
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Xinghan Guo
University of Chicago
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Nazar Delegan
Argonne National Laboratory
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Jonathan C Karsch
University of Chicago
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Zixi Li
University of Chicago
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Tianle Liu
University of Chicago
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Robert T Shreiner
University of Chicago
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Amy Butcher
University of Chicago
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David D Awschalom
University of Chicago and Argonne National Laboratory, University of Chicago, University of Chicago, Argonne National Laboratory
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F. Joseph F Heremans
Argonne National Laboratory and University of Chicago, Argonne National Laboratory
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Alexander A High
University of Chicago