硬件平台与控制架构hardware
离子阱 QEC 平台
以离子内部态、集体运动模式和高连接度门实现小型码、重复纠错与逻辑操作,并可通过 QCCD 输运扩展的 QEC 平台。
- 成熟度
- 实验阶段
- 重要度
- 核心主题
- 证据
- 4 篇代表来源
01
范围与辨析
记录离子种类、门连接、冷却/输运、测量/reset、cycle time、串扰与 leakage;高保真单门并不自动构成 QEC 平台里程碑。
02
核心机制与研究判断
核心机制
- high-connectivity register
- QCCD transport
- mid-circuit measurement
- sympathetic cooling
- slower cycle scheduling
适用与评测约束
- Platform
- trapped ion qec platform
- Connectivity
- must be declared
- Feedback Latency
- must be declared
- Measurement Reset
- must be declared
- Native Operations
- must be declared
- Parameter Snapshot Date
- required for numeric claims
03
全栈位置与直接关系
hardware/platform/trapped-ion04
代表证据
实验里程碑2021
Fault-tolerant control of an error-corrected qubitLaird Egan et al.实验里程碑2021
Realization of Real-Time Fault-Tolerant Quantum Error CorrectionC. Ryan-Anderson et al.实验里程碑2022
Demonstration of fault-tolerant universal quantum gate operationsLukas Postler et al.来源2025
Experimental fault-tolerant code switchingIvan Pogorelov, Friederike Butt, Lukas Postler, Christian D. Marciniak, Philipp Schindler, Markus Müller and Thomas Monz