CMOS芯片
量子点
量子位元
数码产品
光电子学
集成电路
量子计算机
晶体管
多路复用
电子工程
材料科学
计算机科学
物理
电气工程
纳米技术
量子
工程类
电压
量子力学
作者
Andrea Ruffino,Tsung-Yeh Yang,John Michniewicz,Yang Peng,Edoardo Charbon,M. Fernando González-Zalba
标识
DOI:10.1038/s41928-021-00687-6
摘要
As quantum computers grow in complexity, the technology will have to evolve from large distributed systems to compact integrated solutions. Spin qubits in silicon quantum dots are thought to offer good scalability because both spin-carrying quantum dots and support complementary metal–oxide–semiconductor (CMOS) electronics can, in principle, be monolithically integrated on a single chip. However, monolithically integrated quantum–classical hybrid circuits based on industry-standard CMOS technology remain limited. Here we report a millikelvin integrated circuit fabricated using 40 nm CMOS technology that integrates silicon quantum-dot arrays with support electronics in an architecture that allows the array to be efficiently addressed and read. The architecture contains integrated microwave lumped-element resonators for dispersive sensing of the charge state of the quantum dots, mediated via digital transistors in a column–row-addressing distribution. With the chip, we demonstrate combined time- and frequency-division multiplexing, which scales sublinearly the resources as well as footprint required for readout.
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