DOE OSTI · 2007681
Modulation-doping a correlated electron insulator
Abstract
Abstract Correlated electron materials (CEMs) host a rich variety of condensed matter phases. Vanadium dioxide (VO 2 ) is a prototypical CEM with a temperature-dependent metal-to-insulator (MIT) transition with a concomitant crystal symmetry change. External control of MIT in VO 2 —especially without inducing structural changes—has been a long-standing challenge. In this work, we design and synthesize modulation-doped VO 2 -based thin film heterostructures that closely emulate a textbook example of filling control in a correlated electron insulator. Using a combination of charge transport, hard X-ray photoelectron spectroscopy, and structural characterization, we show that the insulating state can be doped to achieve carrier densities greater than 5 × 10 21 cm −3 without inducing any measurable structural changes. We find that the MIT temperature (T MIT ) continuously decreases with increasing carrier concentration. Remarkably, the insulating state is robust even at doping concentrations as high as ~0.2 e − /vanadium. Finally, our work reveals modulation-doping as a viable method for electronic control of phase transitions in correlated electron oxides with the potential for use in future devices based on electric-field controlled phase transitions.
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Mondal, Debasish (ORCID:0009000357930882), Mahapatra, Smruti Rekha, Derrico, Abigail M., Rai, Rajeev Kumar (ORCID:0000000222487601), Paudel, Jay R., Schlueter, Christoph, Gloskovskii, Andrei, Banerjee, Rajdeep, Hariki, Atsushi, DeGroot, Frank M. F. (ORCID:0000000213402186), Sarma, D. D. (ORCID:0000000164331069), Narayan, Awadhesh, Nukala, Pavan (ORCID:0000000239884224), Gray, Alexander X. (ORCID:0000000276344294), Aetukuri, Naga Phani B. (ORCID:0000000172695057). 2023-10-05. Modulation-doping a correlated electron insulator. https://doi.org/10.1038/s41467-023-41816-3
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