Quantum computation with electrons trapped on liquid Helium by using the centimeter-wave manipulating techniques

IF 2.2 3区 物理与天体物理 Q1 PHYSICS, MATHEMATICAL
Yufen Li, Suirong He, Miao Zhang, Lianfu Wei
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Abstract

Surface-state electrons floating on liquid Helium have been served as one of the great potential experimental platforms to implement quantum computation, wherein the qubits are usually encoded by either the lowest two levels of the vertical vibrations (i.e., Hydrogen-like atoms) or the electronic spins. Given the relevant operations require additional techniques, such as the corresponding millimeter-wave or magnetic field manipulations, here we investigate how to implement the scalable quantum computation with a trapped electron array by alternatively using the usual centimeter-wave manipulating techniques. This is because the eigenfrequency of the present qubit, encoded by the two lowest levels of the lateral vibration of the trapped electron, is limited in the centimeter-wave band. We show that, by biasing the electrodes properly and driving the coplanar waveguide transmission line resonator, the electrons can be individually trapped in a series of anharmonic potentials on liquid Helium. Therefore, the well-developed circuit quantum electrodynamics technique for the implementation of superconducting quantum computation can be conveniently utilized here in the present quantum computing platform (proposed firstly in Phys Rev Lett 105:040503, 2010, to implement the fundamental logic gates, typically such as the single-qubit rotations of the individually addressable trapped electrons, the switchable two-qubit manipulations between the electrons trapped in the distant traps, and also the high-fidelity readouts of the target qubits. The feasibility of the proposal is also discussed by numerical simulations.

Abstract Image

利用厘米波操纵技术实现液氦上电子的量子计算
漂浮在液氦上的表面态电子一直是实现量子计算的潜在实验平台之一,其中的量子比特通常由垂直振动的最低两级(即类氢原子)或电子自旋编码。鉴于相关操作需要额外的技术,如相应的毫米波或磁场操作,我们在此研究如何通过使用通常的厘米波操作技术来替代被困电子阵列实现可扩展的量子计算。这是因为本量子比特的特征频率(由被困电子横向振动的两个最低级编码)受限于厘米波频段。我们的研究表明,通过适当偏置电极和驱动共面波导传输线谐振器,电子可以在液氦上的一系列非谐波电势中被单独困住。因此,用于实现超导量子计算的成熟电路量子电动力学技术可以方便地用于本量子计算平台(2010 年首次在 Phys Rev Lett 105:040503 上提出),以实现基本逻辑门,通常包括可单独寻址的被困电子的单量子比特旋转、被困在远处阱中的电子之间的可切换双量子比特操作以及目标量子比特的高保真读出。我们还通过数值模拟讨论了该建议的可行性。
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来源期刊
Quantum Information Processing
Quantum Information Processing 物理-物理:数学物理
CiteScore
4.10
自引率
20.00%
发文量
337
审稿时长
4.5 months
期刊介绍: Quantum Information Processing is a high-impact, international journal publishing cutting-edge experimental and theoretical research in all areas of Quantum Information Science. Topics of interest include quantum cryptography and communications, entanglement and discord, quantum algorithms, quantum error correction and fault tolerance, quantum computer science, quantum imaging and sensing, and experimental platforms for quantum information. Quantum Information Processing supports and inspires research by providing a comprehensive peer review process, and broadcasting high quality results in a range of formats. These include original papers, letters, broadly focused perspectives, comprehensive review articles, book reviews, and special topical issues. The journal is particularly interested in papers detailing and demonstrating quantum information protocols for cryptography, communications, computation, and sensing.
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