At its most fundamental level, circuit-based quantum computation relies on the application of controlled phase shift operations on quantum registers. While these operations are generally compromised by noise and imperfections, quantum gates based on geometric phase shifts can provide intrinsically fault-tolerant quantum computing. Here we demonstrate the high-fidelity realization of a recently proposed fast (non-adiabatic) and universal (non-Abelian) holonomic single-qubit gate, using an individual solid-state spin qubit under ambient conditions. This fault-tolerant quantum gate provides an elegant means for achieving the fidelity threshold indispensable for implementing quantum error correction protocols. Since we employ a spin qubit assoc...
Individual impurity atoms in silicon can make superb individual qubits, but it remains an immense ch...
We propose an implementation of holonomic (geometrical) quantum gates by means of semiconductor nano...
Quantum systems must be prepared, controlled, and measured with high fidelity in order to perform co...
Geometric phases and holonomies are a promising resource for the realization of high-fidelity quantu...
Fault-tolerant quantum computers that can solve hard problems rely on quantum error correction1. One...
Solid-state spin qubits are a promising platform for quantum computation and quantum networks. Recen...
Digital information based on the laws of quantum mechanics promisses powerful new ways of computatio...
Solid-state spin qubits is a promising platform for quantum computation and quantum networks1,2. Rec...
High-fidelity control of quantum bits is paramount for the reliable execution of quantum algorithms ...
Isolated optically-active solid-state spins such as the Nitrogen-Vacancy (NV) center in diamond have...
A practical quantum computer must not merely store information, but also process it. To prevent erro...
Diamond quantum processors consisting of a nitrogen-vacancy centre and surrounding nuclear spins hav...
This work was supported by the National Research Foundation, the Ministry of Education, Singapore. B...
This thesis is divided into two parts. Both of them investigate current topics in quantum informatio...
Reliable quantum information processing requires high-fidelity universal manipulation of quantum sys...
Individual impurity atoms in silicon can make superb individual qubits, but it remains an immense ch...
We propose an implementation of holonomic (geometrical) quantum gates by means of semiconductor nano...
Quantum systems must be prepared, controlled, and measured with high fidelity in order to perform co...
Geometric phases and holonomies are a promising resource for the realization of high-fidelity quantu...
Fault-tolerant quantum computers that can solve hard problems rely on quantum error correction1. One...
Solid-state spin qubits are a promising platform for quantum computation and quantum networks. Recen...
Digital information based on the laws of quantum mechanics promisses powerful new ways of computatio...
Solid-state spin qubits is a promising platform for quantum computation and quantum networks1,2. Rec...
High-fidelity control of quantum bits is paramount for the reliable execution of quantum algorithms ...
Isolated optically-active solid-state spins such as the Nitrogen-Vacancy (NV) center in diamond have...
A practical quantum computer must not merely store information, but also process it. To prevent erro...
Diamond quantum processors consisting of a nitrogen-vacancy centre and surrounding nuclear spins hav...
This work was supported by the National Research Foundation, the Ministry of Education, Singapore. B...
This thesis is divided into two parts. Both of them investigate current topics in quantum informatio...
Reliable quantum information processing requires high-fidelity universal manipulation of quantum sys...
Individual impurity atoms in silicon can make superb individual qubits, but it remains an immense ch...
We propose an implementation of holonomic (geometrical) quantum gates by means of semiconductor nano...
Quantum systems must be prepared, controlled, and measured with high fidelity in order to perform co...