We reveal the existence of polarizing quantum phases for the enantiomers of cold, interacting chiral molecules in an optical helicity lattice by means of an extended Bose-Hubbard model. These recently proposed lattices have sites with alternating helicity which exert a discriminatory force on chiral molecules with different handedness. In our study of the phase diagram we find that a strong dipolar repulsion between molecules results in the separation of left and right enantiomers.Comment: 7 pages, 6 figures. Accepted versio
The development of efficient techniques to distinguish mirror images of chiral molecules (enantiomer...
We consider a condensate of ultra cold bosonic atoms in a linear optical cavity illuminated by a two...
We prove complete controllability for rotational states of an asymmetric top molecule belonging to d...
We reveal the existence of polarizing quantum phases for the enantiomers of cold, interacting chiral...
We theoretically analyze the phase diagram of a quantum gas of bosons that interact via repulsive di...
We consider a minimal model to investigate the quantum phases of hardcore, polarized dipolar atoms c...
The effective chiral interaction between molecules arising from long-range quantum interactions betw...
Recent experimental progress in magnetic atoms and polar molecules has created the prospect of simul...
It is known that strong coupling to light can be used to manipulate properties of matter. This regim...
We present a comprehensive study of enantioselective orientation of chiral molecules excited by a pa...
The breaking of chiral and time-reversal symmetries provides a pathway to exotic quantum phenomena a...
Circular dichroism and optical rotation are crucial for the characterization of chiral molecules and...
We study how a $d$-wave superconductivity is changed when illuminated by circularly-polarised light ...
Chirality is prevalent in the natural environment. Systems of biological significance more often tha...
The Hubbard model constitutes one of the most celebrated theoretical frameworks of condensed-matter ...
The development of efficient techniques to distinguish mirror images of chiral molecules (enantiomer...
We consider a condensate of ultra cold bosonic atoms in a linear optical cavity illuminated by a two...
We prove complete controllability for rotational states of an asymmetric top molecule belonging to d...
We reveal the existence of polarizing quantum phases for the enantiomers of cold, interacting chiral...
We theoretically analyze the phase diagram of a quantum gas of bosons that interact via repulsive di...
We consider a minimal model to investigate the quantum phases of hardcore, polarized dipolar atoms c...
The effective chiral interaction between molecules arising from long-range quantum interactions betw...
Recent experimental progress in magnetic atoms and polar molecules has created the prospect of simul...
It is known that strong coupling to light can be used to manipulate properties of matter. This regim...
We present a comprehensive study of enantioselective orientation of chiral molecules excited by a pa...
The breaking of chiral and time-reversal symmetries provides a pathway to exotic quantum phenomena a...
Circular dichroism and optical rotation are crucial for the characterization of chiral molecules and...
We study how a $d$-wave superconductivity is changed when illuminated by circularly-polarised light ...
Chirality is prevalent in the natural environment. Systems of biological significance more often tha...
The Hubbard model constitutes one of the most celebrated theoretical frameworks of condensed-matter ...
The development of efficient techniques to distinguish mirror images of chiral molecules (enantiomer...
We consider a condensate of ultra cold bosonic atoms in a linear optical cavity illuminated by a two...
We prove complete controllability for rotational states of an asymmetric top molecule belonging to d...