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Endo-Fullerene and Doped Diamond Nanocrystallite Based Models of Qubits for Solid-State Quantum Computers

机译:基于内富勒烯和掺杂金刚石纳米微晶的量子位量子模型

摘要

Models of encapsulated 1/2 nuclear spin H-1 and P-31 atoms in fullerene and diamond nanocrystallite, respectively, are proposed and examined with ab-initio local density functional method for possible applications as single quantum bits (qubits) in solid-state quantum computers. A H-1 atom encapsulated in a fully deuterated fullerene, C(sub 20)D(sub 20), forms the first model system and ab-initio calculation shows that H-1 atom is stable in atomic state at the center of the fullerene with a barrier of about 1 eV to escape. A P-31 atom positioned at the center of a diamond nanocrystallite is the second model system, and 3 1P atom is found to be stable at the substitutional site relative to interstitial sites by 15 eV, Vacancy formation energy is 6 eV in diamond so that substitutional P-31 atom will be stable against diffusion during the formation mechanisms within the nanocrystallite. The coupling between the nuclear spin and weakly bound (valance) donor electron coupling in both systems is found to be suitable for single qubit applications, where as the spatial distributions of (valance) donor electron wave functions are found to be preferentially spread along certain lattice directions facilitating two or more qubit applications. The feasibility of the fabrication pathways for both model solid-state qubit systems within practical quantum computers is discussed with in the context of our proposed solid-state qubits.
机译:提出了分别在富勒烯和金刚石纳米晶体中封装的1/2核自旋H-1和P-31原子的模型,并使用从头算局部密度泛函方法进行了研究,以可能作为固态单量子位(qubits)应用量子计算机。封装在完全氘化的富勒烯中的H-1原子C(sub 20)D(sub 20)形成第一个模型系统,并且从头算计算表明H-1原子在富勒烯中心处于原子态是稳定的具有约1 eV的势垒逃逸。位于钻石纳米晶体中心的P-31原子是第二个模型系统,发现3 1P原子在相对于间隙位置的取代位点稳定15 eV,空位形成能在钻石中为6 eV,因此取代的P-31原子在纳米微晶内的形成机理中不会扩散。发现在两个系统中,核自旋和弱束缚(价)供体电子耦合之间的耦合都适合于单量子位应用,其中(价)供体电子波函数的空间分布被发现优先沿着某些晶格分布有助于两个或更多量子位应用程序的方向。在我们提出的固态量子比特的背景下,讨论了在实际的量子计算机中两个模型固态量子比特系统的制造路径的可行性。

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