For circuit-based quantum computation, experimental implementation of a universal set of quantum logic gates with high-fidelity and strong robustness is essential and central. Quantum gates induced by geometric phases, which depend only on global properties of the evolution paths, have built-in noise-resilience features. Here, we propose and experimentally demonstrate nonadiabatic holonomic single-qubit quantum gates on two dark paths in a trapped 171Yb+ ion based on four-level systems with resonant drives. We confirm the implementation with measured gate fidelity through both quantum process tomography and randomized benchmarking methods. Meanwhile, we find that nontrivial holonomic two-qubit quantum gates can also be realized within curre...
Non-adiabatic Holonomic Quantum Computation (NHQC) is a method used to implement quantum gates with ...
Universal logic gates for two quantum bits (qubits) form an essential ingredient of quantum computat...
We demonstrate laser-driven two-qubit and single-qubit logic gates with fidelities 99.9(1)% and 99.9...
For circuit-based quantum computation, experimental implementation of universal set of quantum logic...
Nonadiabatic holonomic quantum computation is a method used to implement high-speed quantum gates wi...
Geometric phases and holonomies are a promising resource for the realization of high-fidelity quantu...
A practical quantum computer must be capable of performing high fidelity quantum gates on a set of q...
Non Abelian geometric phases are attracting increasing interest because of possible experimental app...
Nonadiabatic holonomic quantum computation (NHQC) is implemented by fast evolution processes in a ge...
It is proposed that high-speed universal quantum gates can be realized by using non-Abelian holonomi...
The nonadiabatic holonomic quantum computation based on the geometric phase is robust against the bu...
At its most fundamental level, circuit-based quantum computation relies on the application of contro...
Reliable quantum information processing requires high-fidelity universal manipulation of quantum sys...
Quantum holonomic gates hold built-in resilience to local noises and provide a promising approach fo...
Control errors and decoherence are two main obstacles for realization of quantum computation. Nonadi...
Non-adiabatic Holonomic Quantum Computation (NHQC) is a method used to implement quantum gates with ...
Universal logic gates for two quantum bits (qubits) form an essential ingredient of quantum computat...
We demonstrate laser-driven two-qubit and single-qubit logic gates with fidelities 99.9(1)% and 99.9...
For circuit-based quantum computation, experimental implementation of universal set of quantum logic...
Nonadiabatic holonomic quantum computation is a method used to implement high-speed quantum gates wi...
Geometric phases and holonomies are a promising resource for the realization of high-fidelity quantu...
A practical quantum computer must be capable of performing high fidelity quantum gates on a set of q...
Non Abelian geometric phases are attracting increasing interest because of possible experimental app...
Nonadiabatic holonomic quantum computation (NHQC) is implemented by fast evolution processes in a ge...
It is proposed that high-speed universal quantum gates can be realized by using non-Abelian holonomi...
The nonadiabatic holonomic quantum computation based on the geometric phase is robust against the bu...
At its most fundamental level, circuit-based quantum computation relies on the application of contro...
Reliable quantum information processing requires high-fidelity universal manipulation of quantum sys...
Quantum holonomic gates hold built-in resilience to local noises and provide a promising approach fo...
Control errors and decoherence are two main obstacles for realization of quantum computation. Nonadi...
Non-adiabatic Holonomic Quantum Computation (NHQC) is a method used to implement quantum gates with ...
Universal logic gates for two quantum bits (qubits) form an essential ingredient of quantum computat...
We demonstrate laser-driven two-qubit and single-qubit logic gates with fidelities 99.9(1)% and 99.9...