Quantifying the Chirality of Vibrational Modes in Helical Molecular Chains
arXiv:2310.16352 · doi:10.1103/PhysRevLett.133.268001
Abstract
Chiral phonons have been proposed to be involved in various physical phenomena, yet the chirality of molecular normal modes has not been well defined mathematically. Here we examine two approaches for assigning and quantifying the chirality of molecular normal modes in double-helical molecular wires with various levels of twist. First, associating with each normal mode a structure obtained by imposing the corresponding motion on a common origin, we apply the Continuous Chirality Measure (CCM) to quantitatively assess the relationship between the chirality-weighted normal mode spectrum and the chirality of the underlying molecular structure. We find that increasing the amount of twist in the double helix shifts the mean normal mode CCM to drastically higher values, implying that the chirality of molecular normal modes is strongly correlated with that of the underlying molecular structure. Second, we assign to each normal mode a pseudoscalar defined as the product of atomic linear and angular momentum summed over all atoms, and we analyze the handedness of the normal mode spectrum with respect to this quantity. We find that twisting the double-chain structure introduces asymmetry between right and left-handed normal modes so that in twisted structures different frequency bands are characterized by distinct handedness. This may give rise to global phenomena such as thermal chirality.
References in corpus (14)
- Electronic Structure of Pyrochlore Iridates: From Topological Dirac Metal to Mott Insulator
- Weyl and Dirac Semimetals in Three Dimensional Solids
- Molecular Chirality and Chiral Parameters
- Angular Momentum of Phonons and Einstein-de Haas Effect
- Vibrational Origin of Exchange Splitting and Chirality Induced Spin Selectivity
- Chiral charge-density-waves
- Truly chiral phonons in α-HgS
- Phonon Angular Momentum Induced by Temperature Gradient
- Giant effective magnetic fields from optically driven chiral phonons in 4 paramagnets
- Chiral Phonons in Chiral Materials
- Stochastic Simulation of Nonequilibrium Heat Conduction in Extended Molecule Junctions
- Molecular chirality quantification: Tools and benchmarks
- Heat Transport with a Twist
- Emergent magnetism as a cooperative effect of interactions and reservoir