Enantiomer detection via Quantum Otto cycle
arXiv:2211.06888 · doi:10.1103/PhysRevE.107.L042103
Abstract
Enantiomers are chiral molecules that exist in right-handed and left-handed conformations. Optical techniques of enantiomers detection are widely employed to discriminate between left- and right-handed molecules. However, identical spectra of enantiomers make enantiomer detection a very challenging task. Here, we investigate the possibility of exploiting thermodynamic processes for enantiomer detection. In particular, we employ a quantum Otto cycle, in which a chiral molecule described by a three-level system with cyclic optical transitions is considered a working medium. Each energy transition of the three-level system is coupled with an external laser drive. We find that the left-handed molecule works as a heat engine, while the right-handed molecule works as a thermal accelerator where the overall phase of the drives is considered as the cycle's control parameter. In addition, both left- and right-handed molecules work as heat engines by considering laser drives' detuning as the control parameter. However, the molecules can still be distinguished because both cases' extracted work and efficiency are quantitatively very different. Accordingly, left and right-handed molecules can be distinguished by evaluating the work distribution in the Otto cycle.
References in corpus (18)
- QuTiP 2: A Python framework for the dynamics of open quantum systems
- Fluctuation theorems: Work is not an observable
- Efficiency at maximum power: An analytically solvable model for stochastic heat engines
- Experimental Test of Quantum Jarzynski Equality with a Trapped Ion System
- Quantum thermodynamic devices: from theoretical proposals to experimental reality
- Quantum Thermodynamic Cycles and Quantum Heat Engines (II)
- Test of Jarzynski and Crooks fluctuation relations in an electronic system
- Work measurement as a generalized quantum measurement
- Enantiomer-Specific State Transfer of Chiral Molecules
- Fluctuation theorems in driven open quantum systems
- Fluctuation theorems for continuously monitored quantum fluxes
- Dynamical Control of Quantum Heat Engines Using Exceptional Points
- Nonadiabatic single-qubit quantum Otto engine
- Quantum-to-Classical Transition in Cavity Quantum Electrodynamics
- Principles of enantio-selective excitation in three-wave mixing spectroscopy of chiral molecules
- Assessing the non-equilibrium thermodynamics in a quenched quantum many-body system via single projective measurements
- Measuring work and heat in ultracold quantum gases
- Entanglement-Assisted Quantum Chiral Spectroscopy