Time-bin qudits have emerged as a promising encoding platform in many quantum photonic applications. However, the requirement for efficient single-shot measurement of time-bin qudits instead of reconstructive detection has restricted their widespread use in experiments. Here, we propose an efficient method to measure arbitrary superposition states of time-bin qudits and confirm it up to dimension 4. This method is based on encoding time bins at the picosecond time scale, also known as ultrafast time bins. By doing so, we enable the use of robust and phase-stable single spatial mode temporal interferometers to measure time-bin qudit in different measurement bases
Quantum memories based on the photon-echo principle (with controlled reversible inhomogeneous broade...
Time-energy entanglement is a quintessential resource for emerging quantum technologies. In this the...
High-dimensional entanglement offers promising perspectives in quantum information science. In pract...
The large capacity and robustness of information encoding in the temporal mode of photons is importa...
The future challenge of quantum communication is scalable quantum networks, which require coherent a...
The encoding of quantum information in photonic time-bin qubits is apt for long distance quantum com...
Abstract. Reliable encoding of information in quantum systems is crucial to all approaches to quantu...
We demonstrate two approaches for unbalanced interferometers as time-bin qubit analyzers for quantum...
Time-bin qubits, in which quantum information is encoded in a single photon at different times $\Del...
Reliable encoding of information in quantum systems is crucial to all approaches to quantum informat...
Boson sampling is a problem strongly believed to be intractable for classical computers, but can be ...
We present a proof-of-principle demonstration of a method to characterize any pure spatial qudit of ...
We report interferometric schemes to prepare arbitrary states of four-dimensional qudits (ququarts) ...
The task of measuring in two mutually unbiased bases is central to many quantum information protocol...
Quantum physics holds promise to revolutionise a number of technologies by enabling performance beyo...
Quantum memories based on the photon-echo principle (with controlled reversible inhomogeneous broade...
Time-energy entanglement is a quintessential resource for emerging quantum technologies. In this the...
High-dimensional entanglement offers promising perspectives in quantum information science. In pract...
The large capacity and robustness of information encoding in the temporal mode of photons is importa...
The future challenge of quantum communication is scalable quantum networks, which require coherent a...
The encoding of quantum information in photonic time-bin qubits is apt for long distance quantum com...
Abstract. Reliable encoding of information in quantum systems is crucial to all approaches to quantu...
We demonstrate two approaches for unbalanced interferometers as time-bin qubit analyzers for quantum...
Time-bin qubits, in which quantum information is encoded in a single photon at different times $\Del...
Reliable encoding of information in quantum systems is crucial to all approaches to quantum informat...
Boson sampling is a problem strongly believed to be intractable for classical computers, but can be ...
We present a proof-of-principle demonstration of a method to characterize any pure spatial qudit of ...
We report interferometric schemes to prepare arbitrary states of four-dimensional qudits (ququarts) ...
The task of measuring in two mutually unbiased bases is central to many quantum information protocol...
Quantum physics holds promise to revolutionise a number of technologies by enabling performance beyo...
Quantum memories based on the photon-echo principle (with controlled reversible inhomogeneous broade...
Time-energy entanglement is a quintessential resource for emerging quantum technologies. In this the...
High-dimensional entanglement offers promising perspectives in quantum information science. In pract...