Yamamoto T, Pashkin Yu A, Astafiev O, Nakamura Y, Tsai J S
NEC Fundamental Research Laboratories, Tsukuba, Ibaraki 305-8501, Japan.
Nature. 2003 Oct 30;425(6961):941-4. doi: 10.1038/nature02015.
Following the demonstration of coherent control of the quantum state of a superconducting charge qubit, a variety of qubits based on Josephson junctions have been implemented. Although such solid-state devices are not currently as advanced as microscopic qubits based on nuclear magnetic resonance and ion trap technologies, the potential scalability of the former systems--together with progress in their coherence times and read-out schemes--makes them strong candidates for the building block of a quantum computer. Recently, coherent oscillations and microwave spectroscopy of capacitively coupled superconducting qubits have been reported; the next challenging step towards quantum computation is the realization of logic gates. Here we demonstrate conditional gate operation using a pair of coupled superconducting charge qubits. Using a pulse technique, we prepare different input states and show that their amplitude can be transformed by controlled-NOT (C-NOT) gate operation, although the phase evolution during the gate operation remains to be clarified.
在展示了对超导电荷量子比特量子态的相干控制之后,已经实现了多种基于约瑟夫森结的量子比特。尽管目前这类固态器件不如基于核磁共振和离子阱技术的微观量子比特先进,但前一类系统的潜在可扩展性——连同其相干时间和读出方案方面的进展——使其成为量子计算机构建模块的有力候选者。最近,已有关于电容耦合超导量子比特的相干振荡和微波光谱学的报道;迈向量子计算的下一个具有挑战性的步骤是实现逻辑门。在此,我们展示了使用一对耦合超导电荷量子比特的条件门操作。利用脉冲技术,我们制备了不同的输入态,并表明它们的幅度可以通过受控非门(C-NOT)操作进行变换,尽管门操作期间的相位演化仍有待阐明。