Single crystal growth, structural and physical properties, and absence of a charge density wave in Ti_{0.85}Fe6Ge6
arXiv:2509.20142 · doi:10.1103/ncm1-rfsn
Abstract
Kagome materials with charge density waves (CDWs) are fascinating quantum systems, offering an ideal platform to explore intertwined orders and to uncover novel mechanisms behind CDW formation. Chemical models have been developed and applied to predict CDW in -type kagome materials, such as the rattling chain model based on ScV6Sn6 and the magnetic energy-saving model based on FeGe. In this study, we successfully synthesized Ti_{0.85}Fe6Ge6 single crystals using the vapor transport method. As predicted by the rattling chain model, these crystals are expected to exhibit kagome CDW behavior. Magnetization measurements indicate that Ti_{0.85}Fe6Ge6 is an easy-axis antiferromagnet with T_N = 488 K and transport measurements reveal metallic behavior primarily driven by electron-type carriers. However, no clear signatures of a CDW were observed in Ti_{0.85}Fe6Ge6. Density functional theory calculations demonstrate a markedly distinct electronic structure compared to related compounds: instead of a carrier-doping-induced rigid shift, the density of states shifted away from the Fermi level. Consistent with our structural investigations, the absence of a CDW and the unusual band structure can be attributed to the bonding characteristic within Ti_{0.85}Fe6Ge6. The strong covalent bonds of Ti-Ge1b, along with the solid Ge1b-Ge1b dimers, prevent the Ti-Ge1b-Ge1b-Ti chain from rattling. The presence of Fe-Fe antibonding state at the Fermi level enhances the spin polarization and depletes the electronic density around the Fermi level. Our results suggest that both the ionic radius and the bonding characteristics of the filler atom are crucial for the formation of CDWs in kagome materials. These factors can serve as supplementary terms to the rattling chain model, providing new insights for the discovery of novel kagome CDW materials.
12 pages, 8 figures
References in corpus (26)
- CsVSb: a topological kagome metal with a superconducting ground state
- Topological kagome magnets and superconductors
- Discovery of charge density wave in a correlated kagome lattice antiferromagnet
- Kagome superconductors AVSb (A=K, Rb, Cs)
- Charge density wave in kagome lattice intermetallic ScV6Sn6
- Intertwined magnetism and charge density wave order in kagome FeGe
- Quantum states and intertwining phases in kagome materials
- AVSb Kagome Superconductors: Progress and Future Directions
- Fantastic flat bands and where to find them: The CoSn-type compounds
- Study of the electronic properties of topological kagome metals YVSn and GdVSn
- Topological Quantum Materials with Kagome Lattice
- Competing charge-density wave instabilities in the kagome metal ScVSn
- Abundant lattice instability in kagome metal ScVSn
- Spin-phonon coupling driven Charge density wave in a Kagome Magnet
- Anisotropic magnetic property of single crystals VSn ( = Y, Gd - Tm, Lu)
- Quantum Interactions in Topological R166 Kagome Magnet
- Intertwining of magnetism and charge ordering in kagome FeGe
- Enhanced Spin-polarization via Partial Ge1-dimerization as the Driving Force of the 222 CDW in FeGe
- Annealing-tunable charge density wave in the kagome antiferromagnet FeGe
- Anomalous c-axis transport in layered metals
- Frustrated charge order and cooperative distortions in ScV6Sn6
- Tiny Sc allows the chains to rattle: Impact of Lu and Y doping on the charge density wave in ScVSn
- Novel three-dimensional Fermi surface and electron-correlation-induced charge density wave in FeGe
- Universal sublinear resistivity in vanadium kagome materials hosting charge density waves
- Stability frontiers in the AMX kagome metals: The LnNbSn (Ln:Ce-Lu,Y) family and density-wave transition in LuNbSn
- Encoding innumerable charge density waves of FeGe into polymorphs of LiFe6Ge6