Luo Ming-Xing, Ma Song-Ya, Chen Xiu-Bo, Wang Xiaojun
Information Security and National Computing Grid Laboratory, Southwest Jiaotong University, Chengdu 610031, China.
School of Mathematics and Statistics, Henan University, Kaifeng 475004, China.
Sci Rep. 2015 Nov 16;5:16716. doi: 10.1038/srep16716.
Quantum computation offers potential advantages in solving a number of interesting and difficult problems. Several controlled logic gates, the elemental building blocks of quantum computer, have been realized with various physical systems. A general technique was recently proposed that significantly reduces the realization complexity of multiple-control logic gates by harnessing multi-level information carriers. We present implementations of a key quantum circuit: the three-qubit Toffoli gate. By exploring the optical selection rules of one-sided optical microcavities, a Toffoli gate may be realized on all combinations of photon and quantum spins in the QD-cavity. The three general controlled-NOT gates are involved using an auxiliary photon with two degrees of freedom. Our results show that photons and quantum spins may be used alternatively in quantum information processing.
量子计算在解决一些有趣且困难的问题方面具有潜在优势。量子计算机的基本构建模块——几个受控逻辑门,已通过各种物理系统得以实现。最近提出了一种通用技术,该技术通过利用多能级信息载体显著降低了多控制逻辑门的实现复杂度。我们展示了一个关键量子电路——三量子比特托佛利门的实现。通过探索单边光学微腔的光学选择规则,托佛利门可以在量子点 - 腔中光子和量子自旋的所有组合上实现。使用具有两个自由度的辅助光子涉及三个通用受控非门。我们的结果表明,光子和量子自旋可在量子信息处理中交替使用。