Observation of field-odd and field-free superconducting diode effects in $\mathrm{Mo}_2\mathrm{C}$ nanoflakes
Wei Gao, Kaixuan Fan, Menghan Li, Jinhao Cheng, Qing Zhang + 5 more
TLDR
Researchers discovered both field-odd and field-free superconducting diode effects in centrosymmetric Mo2C nanoflakes, enabling new quantum electronics.
Key contributions
- Discovered superconducting diode effect (SDE) in Mo2C nanoflakes, a material previously considered centrosymmetric.
- Observed both field-odd SDE (efficiency >40% at 4K) and robust field-free SDE in Mo2C.
- Proposed domain-boundary supercurrents or charge density wave-like orders as mechanisms for symmetry breaking.
- Identified air-stable Mo2C as a promising platform for nonreciprocal superconducting electronics.
Why it matters
This paper expands the search for superconducting diode effects into nominally centrosymmetric materials, challenging previous assumptions. The discovery of both field-odd and field-free SDEs in air-stable Mo2C provides a new platform for developing ultra-low-power quantum electronics operating at liquid-helium temperatures.
Original Abstract
The superconducting diode effect (SDE) enables nonreciprocal supercurrent flow, holding immense potential for ultra-low-power quantum electronics. Intrinsic SDE typically requires materials with inherent symmetry breakings. Here, we report the discovery of SDE in chemical vapor deposition-grown molybdenum carbide ($\mathrm{Mo}_2\mathrm{C}$) nanoflakes, a material traditionally considered centrosymmetric. Strikingly, this system uniquely hosts both field-odd and field-free SDEs. Transport measurements reveal a field-odd SDE with tunable efficiency exceeding 40% at 4 K under a perpendicular in-plane magnetic field. In a separate sample, a robust field-free SDE persists under zero-field and field-coolings. Out-of-plane field sweeps confirm the intrinsic nature of these phenomena. We propose that domain-boundary supercurrents or charge density wave-like orders drive this unexpected combination of symmetry breakings. Our findings establish air-stable $\mathrm{Mo}_2\mathrm{C}$ as an ideal platform for nonreciprocal superconducting electronics operating at liquid-helium temperatures, expanding the search for SDE into nominally centrosymmetric superconductors.
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