Quantum erasers with paths in the form of physical slits have been studied extensively and proven instrumental in probing wave-particle duality in quantum mechanics. Here we replace physical paths (slits) with abstract paths of orbital angular momentum (OAM). Using spin-orbit hybrid entanglement of photons, we show that the OAM content of a photon can be erased with a complementary polarization projection of one of the entangled pair. The result is the (dis)appearance of azimuthal fringes based on whether the “which-OAM” information was erased. We extend this concept to a delayed measurement scheme and show that the OAM information and fringe visibility are complementary
In this introductory article, we explain the concept of orbital angular momentum (OAM) of light, dis...
Entanglement in higher dimensions is an attractive concept that is a chal- lenge to realise experime...
We address the possibility of using even/odd states of orbital angular momentum (OAM) of photons for...
Quantum erasers with paths in the form of physical slits have been studied extensively and proven in...
Youngs double slit experiment is one of the most celebrated achievements in quantum and classical op...
The orbital angular momentum of light (OAM) provides a promising approach for the implementation of ...
The optical ‘‘spin-orbit’’ coupling occurring in a suitably patterned nonuniform birefringent plate ...
The bandwidth of any communication system, classical or quantum, is limited by the number of orthogo...
The orbital angular momentum of light (OAM) provides a promising approach for the implementation of ...
We show that the use of path-entangled states of photons, having nonzero orbital angular momentum (O...
The identification of orbital angular momentum (OAM) as a fundamental property of a beam of light ne...
Combining the multiple degrees of freedom of photons has become topical in quantum communication and...
The information carried by a photon can be encoded in one or more of many different degrees of freed...
“Twisted photons” are photons carrying a well-defined nonzero value of orbital angular momentum (OAM...
We address the possibility of using even/odd states of orbital angular momentum (OAM) of photons for...
In this introductory article, we explain the concept of orbital angular momentum (OAM) of light, dis...
Entanglement in higher dimensions is an attractive concept that is a chal- lenge to realise experime...
We address the possibility of using even/odd states of orbital angular momentum (OAM) of photons for...
Quantum erasers with paths in the form of physical slits have been studied extensively and proven in...
Youngs double slit experiment is one of the most celebrated achievements in quantum and classical op...
The orbital angular momentum of light (OAM) provides a promising approach for the implementation of ...
The optical ‘‘spin-orbit’’ coupling occurring in a suitably patterned nonuniform birefringent plate ...
The bandwidth of any communication system, classical or quantum, is limited by the number of orthogo...
The orbital angular momentum of light (OAM) provides a promising approach for the implementation of ...
We show that the use of path-entangled states of photons, having nonzero orbital angular momentum (O...
The identification of orbital angular momentum (OAM) as a fundamental property of a beam of light ne...
Combining the multiple degrees of freedom of photons has become topical in quantum communication and...
The information carried by a photon can be encoded in one or more of many different degrees of freed...
“Twisted photons” are photons carrying a well-defined nonzero value of orbital angular momentum (OAM...
We address the possibility of using even/odd states of orbital angular momentum (OAM) of photons for...
In this introductory article, we explain the concept of orbital angular momentum (OAM) of light, dis...
Entanglement in higher dimensions is an attractive concept that is a chal- lenge to realise experime...
We address the possibility of using even/odd states of orbital angular momentum (OAM) of photons for...