2020
DOI: 10.1103/physrevlett.124.033603
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Rydberg Atom Entanglements in the Weak Coupling Regime

Abstract: We present an entanglement scheme for Rydberg atoms using the van der Waals interaction phase induced by Ramsey-type pulsed interactions. This scheme realizes not only controlled phase operations between atoms at a distance larger than Rydberg blockade distance, but also various counter-intuitive entanglement examples, including two-atom entanglement in the presence of a closer third atom and W -state generation for partially-blockaded three atoms. Experimental realization is conducted with single rubidium ato… Show more

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Cited by 51 publications
(63 citation statements)
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“…Due to the large polarizability, Rydberg atoms experience strong and long-range van der Waals interaction V jk = C 6 /R 6 jk (corresponding to the Ising interaction in Hamiltonian Ĥ) with C 6 being the dispersion coefficient and R jk the inter-atom distance [55,73,[77][78][79]. We will demonstrate that the strong Rydberg-Rydberg interactions (RRI), precise control of atom positions with optical tweezer arrays [80][81][82][83][84] and of laser pulses allow to achieve high-fidelity multiqubit gates.…”
Section: Realization With a Rydberg Atom Arraymentioning
confidence: 91%
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“…Due to the large polarizability, Rydberg atoms experience strong and long-range van der Waals interaction V jk = C 6 /R 6 jk (corresponding to the Ising interaction in Hamiltonian Ĥ) with C 6 being the dispersion coefficient and R jk the inter-atom distance [55,73,[77][78][79]. We will demonstrate that the strong Rydberg-Rydberg interactions (RRI), precise control of atom positions with optical tweezer arrays [80][81][82][83][84] and of laser pulses allow to achieve high-fidelity multiqubit gates.…”
Section: Realization With a Rydberg Atom Arraymentioning
confidence: 91%
“…Specifically, we choose hyperfine ground states |0(1)⟩ ≡ |5S 1/2 , F = 1(2), m F = 0⟩ [83], and a Rydberg state |r⟩ ≡ |70S 1/2 ⟩ with C 6 /2π = 858.4 GHz • µm 6 of 87 Rb atoms [72,80,81,83,89]. The transition |0⟩(|1⟩) ↔ |r⟩ is driven through a two-photon process (see Appendix B for details), as demonstrated in recent experiments [72,80,81,83,84,90]. The control-target separation d i = 3.8 µm results to V jt = 2π × 285.1 MHz.…”
Section: B Multiqubit Nhqc Gatesmentioning
confidence: 99%
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“…Such as in the pioneer work [27], authors used seven pulses for the AS-CNOT gate and five pulses for the H-C Z -CNOT gate. Subsequent schemes for AS-CNOT gates could work with three laser pulses [29], even in the weak interaction regime without any rotation errors [30,31]. Other achievements towards H-C Z -CNOT gates used an "one-step implementation" to form a fast C Z gate [32][33][34][35], but requiring extra singlequbit Hadamard operations which render the total gate duration elongated [36].…”
Section: Introductionmentioning
confidence: 99%
“…Though Rydberg atoms have kindled the flame for the ambition to large-scale quantum computing [1][2][3][4][5], and recent experiments demonstrated remarkable advances [38][39][40][41][42][43][44][45][46][47][48][49][50], further progress toward neutral-atom quantum computing is hindered by the difficulty to prepare a fast and accurate CNOT. This is partly because each of those CNOT gates was realized via combining an EA-based controlled-Z (C Z ) and a series of single-qubit gates [39][40][41][42][43][44], leading to CNOT durations dominated by single-qubit operations (e.g., over 4 µs in [43,44]).…”
Section: Introductionmentioning
confidence: 99%