研究方向
超导量子计算是基于超导电路的量子计算方案,其核心器件是超导约瑟夫森结。超导量子电路在设计,制备和测量等方面与现有的集成电路技术具有较高的兼容性,对量子比特的能级与耦合可以实现非常灵活的设计与控制,极具规模化的潜力。由于近年来的迅速发展,超导量子计算成为目前最有希望实现通用量子计算的候选方案之一。超导量子计算实验点致力于构建一个多比特超导量子计算平台,解决超导量子计算规模化中遇到的难题。
研究人员
相关论文
- Genuine 12-Qubit Entanglement on a Superconducting Quantum Processor. Physical Review Letters 122, 110501 (2019).
- An efficient and compact switch for quantum circuits. npj Quantum Information 4, 50 (2018).
- Demonstration of Topological Robustness of Anyonic Braiding Statistics with a Superconducting Quantum Circuit. Physical Review Letters 121, 030502 (2018).
- Dephasing-Insensitive Quantum Information Storage and Processing with Superconducting Qubits. Physical Review Letters 121, 130501 (2018).
- Emulating Many-Body Localization with a Superconducting Quantum Processor. Physical Review Letters 120, 050507 (2018).
- 10-Qubit Entanglement and Parallel Logic Operations with a Superconducting Circuit. Physical Review Letters 119, 180511 (2017).
- Continuous-variable geometric phase and its manipulation for quantum computation in a superconducting circuit. Nature Communications 8, 1061 (2017).
- Solving Systems of Linear Equations with a Superconducting Quantum Processor. Physical Review Letters 118, 210504 (2017).
- Post-processing Free Quantum Random Number Generator Based on Avalanche Photodiode Array. Chinese Physics Letters 33, 030303 (2016).
- The design of 8-Gbps VCSEL drivers for ATLAS liquid Argon calorimeter upgrade. Journal of Instrumentation 8, C01031—C01031 (2013).