Physical implementation of quantum-information processing by liquid-state nuclear magnetic resonance, using weakly coupled spin-1/2 nuclei of a molecule, is well established. Nuclei with spin > 1/2 oriented in liquid-crystalline matrices is another possibility. Such systems have multiple qubits per nuclei and large quadrupolar couplings resulting in well separated lines in the spectrum. So far, creation of pseudopure states and logic gates has been demonstrated in such systems using transition selective radio-frequency pulses. In this paper we report two developments. First, we implement a quantum algorithm that needs coherent superposition of states. Second, we use evolution under quadrupolar coupling to implement multiqubit gates. We impl...
The advantages of using quantum systems for performing many computational tasks have already been es...
We discuss the applications of Nuclear Magnetic Resonance (NMR) to quantum information processing, f...
Optimal labeling schemes lead to efficient experimental protocols for quantum-information processing...
Physical implementation of quantum-information processing by liquid-state nuclear magnetic resonance...
Physical implementation of quantum-information processing by liquid-state nuclear magnetic resonance...
Nuclear magnetic resonance spectroscopy has demonstrated significant experimental progress toward th...
In this thesis, we apply quantum logic gates to a two-qubit register using the techniques of nuclear...
Nuclear magnetic resonance is viewed as an important technique for the implementation of many quantu...
Use of dipolar and quadrupolar couplings for quantum information processing (QIP) by nuclear magneti...
The enormous theoretical potential of quantum information processing (QIP) is driving the pursuit f...
Quantum-information processing is carried out using dipolar coupled spins and high-resolution nuclea...
A growing appreciation among researchers is the use of quadrupolar nuclei with spin >1/2 as a suitab...
We demonstrate experimentally the usefulness of selective pulses in NMR to perform quantum computati...
Quantum Information processing by NMR with small number of qubits is well established. Scaling to hi...
The advantages of using quantum systems for performing many computational tasks have already been es...
The advantages of using quantum systems for performing many computational tasks have already been es...
We discuss the applications of Nuclear Magnetic Resonance (NMR) to quantum information processing, f...
Optimal labeling schemes lead to efficient experimental protocols for quantum-information processing...
Physical implementation of quantum-information processing by liquid-state nuclear magnetic resonance...
Physical implementation of quantum-information processing by liquid-state nuclear magnetic resonance...
Nuclear magnetic resonance spectroscopy has demonstrated significant experimental progress toward th...
In this thesis, we apply quantum logic gates to a two-qubit register using the techniques of nuclear...
Nuclear magnetic resonance is viewed as an important technique for the implementation of many quantu...
Use of dipolar and quadrupolar couplings for quantum information processing (QIP) by nuclear magneti...
The enormous theoretical potential of quantum information processing (QIP) is driving the pursuit f...
Quantum-information processing is carried out using dipolar coupled spins and high-resolution nuclea...
A growing appreciation among researchers is the use of quadrupolar nuclei with spin >1/2 as a suitab...
We demonstrate experimentally the usefulness of selective pulses in NMR to perform quantum computati...
Quantum Information processing by NMR with small number of qubits is well established. Scaling to hi...
The advantages of using quantum systems for performing many computational tasks have already been es...
The advantages of using quantum systems for performing many computational tasks have already been es...
We discuss the applications of Nuclear Magnetic Resonance (NMR) to quantum information processing, f...
Optimal labeling schemes lead to efficient experimental protocols for quantum-information processing...