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Nanoscale phosphorous atom arrays created using STM for the fabrication of a silicon based quantum computer

机译:纳米级磷原子阵列采用STM为制造硅基量子计算机的制造

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Quantum computers offer the promise of formidable computational power for certain tasks. Of the various possible physical implementations of such a device, silicon based architectures are attractive for their scalability and ease of integration with existing silicon technology. These designs use either the electron or nuclear spin state of single donor atoms to store quantum information. Here we describe a strategy to fabricate an array of single phosphorus atoms in silicon for the construction of such a silicon based quantum computer. We demonstrate the controlled placement of single phosphorus bearing molecules on a silicon surface. This has been achieved by patterning a hydrogen monolayer "resist" with a scanning tunneling microscope (STM) tip and exposing the patterned surface to phosphine (PH{sub}3) molecules. We also describe preliminary studies into a process to incorporate these surface phosphorus atoms into the silicon crystal at the array sites.
机译:量子计算机为某些任务提供了强大的计算能力的承诺。在这种装置的各种可能的物理实现中,基于硅基型架构对于它们的可扩展性和与现有硅技术的集成易于集成具有吸引力。这些设计使用单个供体原子的电子或核自旋状态来存储量子信息。在这里,我们描述了一种在硅中制造一系列单磷原子阵列的策略,用于构建这种硅基量子计算机。我们证明了单磷轴承分子对硅表面的控制放置。这是通过用扫描隧道显微镜(STM)尖端的氢单层“抗蚀剂”来实现,并将图案化表面暴露于膦(pH {次} 3)分子。我们还将初步研究描述为将这些表面磷原子掺入阵列位点的硅晶体中的过程中。

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