Robust energy selective tunneling readout of singlet triplet qubits under large magnetic field gradient
Wonjin Jang, Jehyun Kim, Min-Kyun Cho, Hwanchul Chung, Sanghyeok Park,, Jaeun Eom, Vladimir Umansky, Yunchul Chung, and Dohun Kim

TL;DR
This paper introduces an energy selective tunneling method for high-fidelity, single-shot readout of singlet-triplet qubits in quantum dots, effective even under large magnetic field gradients, enhancing quantum measurement accuracy.
Contribution
It presents a novel spin-to-charge conversion technique using energy selective tunneling that achieves 90% fidelity at high magnetic field gradients, improving quantum state detection.
Findings
Achieved 90% single-shot measurement fidelity.
Demonstrated high-visibility readout of two qubits.
Effective at magnetic field gradients of 100 mT.
Abstract
Fast and high-fidelity quantum state detection is essential for building robust spin-based quantum information processing platforms in semiconductors. The Pauli spin blockade (PSB)-based spin-to-charge conversion and its variants are widely used for the spin state discrimination of two-electron singlet-triplet (ST) qubits; however, the single-shot measurement fidelity is limited by either the low signal contrast, or the short lifetime of the triplet state at the PSB energy detuning, especially due to strong mixing with singlet states at large magnetic field gradients. Ultimately, the limited single-shot measurement fidelity leads to low visibility of quantum operations. Here, we demonstrate an alternative method to achieve spin-to-charge conversion of ST qubit states using energy selective tunneling between doubly occupied quantum dots (QDs) and electron reservoirs. We…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
