Topological photonic interfaces support topologically nontrivial optical modes with helical character. When combined with an embedded quantum emitter that has a circularly polarized transition dipole moment, a chiral quantum optical interface is formed due to spin-momentum locking. Here, we experimentally realize such an interface by integrating semiconductor quantum dots into a valley-Hall topological photonic crystal waveguide. We harness the robust waveguide transport to create a ring resonator that supports helical modes. Chiral coupling of quantum dot transitions, with directional contrast as high as 75%, is demonstrated. The interface also supports a topologically trivial mode, comparison with which allows us to clearly demonstrate th...
The field of topological photonics has seen tremendous and wide‐ranging developments in recent years...
We study the generation and control of genuine tripartite entanglement among quantum emitters (QEs) ...
Quantum states of light and matter can be manipulated on the nanoscale to provide a technological re...
The integration of quantum emitters within topological nano-photonic devices opens up new avenues fo...
Unidirectional photonic edge states arise at the interface between two topologically distinct photon...
Spin-dependent, directional light–matter interactions form the basis of chiral quantum networks. In ...
A unidirectional chiral edge mode in photonic topological insulators can be selectively excited by a...
Scalable quantum technologies may be achieved by faithful conversion between matter qubits and photo...
Spin-dependent, directional light-matter interactions form the basis of chiral quantum networks. In ...
This thesis describes the development and experimental investigation of a series of III-V semiconduc...
We report strongly non-reciprocal behaviour for quantum dot exciton spins coupled to nano-photonic w...
This thesis describes the couplings and interactions of quantum dots embedded within nanoscale photo...
Topological protection in photonics offers new prospects for guiding and manipulating classical and ...
This work has been funded by the project SPANGL4Q, under FET-Open Grant No. FP7-284743, and RFBR Pro...
AbstractThe optical modes of photonic structures are the so-called TE and TM modes that bring intrin...
The field of topological photonics has seen tremendous and wide‐ranging developments in recent years...
We study the generation and control of genuine tripartite entanglement among quantum emitters (QEs) ...
Quantum states of light and matter can be manipulated on the nanoscale to provide a technological re...
The integration of quantum emitters within topological nano-photonic devices opens up new avenues fo...
Unidirectional photonic edge states arise at the interface between two topologically distinct photon...
Spin-dependent, directional light–matter interactions form the basis of chiral quantum networks. In ...
A unidirectional chiral edge mode in photonic topological insulators can be selectively excited by a...
Scalable quantum technologies may be achieved by faithful conversion between matter qubits and photo...
Spin-dependent, directional light-matter interactions form the basis of chiral quantum networks. In ...
This thesis describes the development and experimental investigation of a series of III-V semiconduc...
We report strongly non-reciprocal behaviour for quantum dot exciton spins coupled to nano-photonic w...
This thesis describes the couplings and interactions of quantum dots embedded within nanoscale photo...
Topological protection in photonics offers new prospects for guiding and manipulating classical and ...
This work has been funded by the project SPANGL4Q, under FET-Open Grant No. FP7-284743, and RFBR Pro...
AbstractThe optical modes of photonic structures are the so-called TE and TM modes that bring intrin...
The field of topological photonics has seen tremendous and wide‐ranging developments in recent years...
We study the generation and control of genuine tripartite entanglement among quantum emitters (QEs) ...
Quantum states of light and matter can be manipulated on the nanoscale to provide a technological re...