Research master thesis: First-principles search for phonon-driven achiral-to-chiral transitions
Kanchi, Jahnavi
Promotor(s) :
Bousquet, Eric
Date of defense : 25-Jun-2026/26-Jun-2026 • Permalink : http://hdl.handle.net/2268.2/25618
Details
| Title : | Research master thesis: First-principles search for phonon-driven achiral-to-chiral transitions |
| Author : | Kanchi, Jahnavi
|
| Date of defense : | 25-Jun-2026/26-Jun-2026 |
| Advisor(s) : | Bousquet, Eric
|
| Committee's member(s) : | Damanet, François
Dorbolo, Stéphane
Ghosez, Philippe
|
| Language : | English |
| Keywords : | [en] Chirality [en] Phonons [en] DFT [en] DFPT |
| Discipline(s) : | Physical, chemical, mathematical & earth Sciences > Physics |
| Institution(s) : | Université de Liège, Liège, Belgique |
| Degree: | Master en sciences physiques, à finalité approfondie |
| Faculty: | Master thesis of the Faculté des Sciences |
Abstract
[en] Chirality in crystalline solids can emerge not only from static atomic arrangements, but also through lattice instabilities that drive an achiral parent phase into a chiral daughter structure. In this thesis, a first-principles workflow was developed to search for phonon-driven achiral-to-chiral transitions in inorganic materials. The approach combines database screening, crystallographic symmetry analysis, density functional theory calculations, density-functional perturbation theory phonon calculations, irreducible-representation analysis, and mode-condensation searches. Candidate materials were first selected from phonon databases by identifying achiral parent space groups compatible with enantiomorphic chiral subgroups and by checking for finite-wave-vector phonon instabilities at relevant high-symmetry q-points. Four materials were then investigated in detail: TeBr₂, SnBr₂, PtO, and ZrSi. Electronic band-structure calculations showed that TeBr₂ and SnBr₂ are semiconducting, while PtO and ZrSi are metallic. Phonon and symmetry analyses identified relevant finite-q instabilities capable of generating enantiomorphic chiral phases in TeBr₂, SnBr₂, and PtO. Subsequent mode-condensation searches showed that these systems can relax into chiral structures lower in energy than their achiral parent phases. However, lower-energy competing distortions were also found, indicating that the predicted chiral structures should be interpreted as metastable candidates rather than confirmed ground states. ZrSi remains dynamically unstable and symmetry-relevant, but the targeted enantiomorphic pair was not recovered in the present mode-condensation results. Overall, this work demonstrates a practical computational strategy for identifying materials in which chirality can emerge dynamically from soft phonon modes.
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