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Thomas H. Meyland

Publications and source records attributed to Thomas H. Meyland.

2 recordsLinked to original sources

Orbital-lattice coupling and polaronic dressing of electronic states in Pr$_{0.5}$Ca$_{1.5}$MnO$_4$ revealed by ultrafast broadband spectroscopy

The interplay between long-range structural distortions and orbital order, and local short-range phenomena such as polarons, are key for understanding the properties of the manganites. In this work, we examine the role of local and long-range physics in relation to orbital ordering in the single-layered manganite Pr$_{0.5}$Ca$_{1.5}$MnO$_4$ with a combination of optical reflection anisotropy and ultrafast broadband pump-probe spectroscopy. We find that the reflection anisotropy, measured in equilibrium, is strongly sensitive to charge and orbital-ordering transition only. However, the ultrafast response, measuring the nonequilibrium state, is sensitive to a range of phenomena in the material, including delocalized (long wavelength) phonons as well as localized polarons. In particular, we find that a strong sensitivity to electronic and structural changes give rise to apparent nonlinearities when probed at specific wavelengths, despite the key degrees of freedom remaining linear. These observations point to the important role of orbital-lattice couplings and polarons dressing the electronic states across the Pr$_{0.5}$Ca$_{1.5}$MnO$_4$ phase diagram.

cond-mat.str-el↗

A versatile setup for symmetry-resolved ultrafast dynamics of quantum materials

Correlated phenomena occur in quantum materials because of the delicate interplay between internal degrees of freedom, leading to multiple symmetry-broken quantum phases. Resolving the structure of these phases is a key challenge, often requiring facilities equipped with x-ray free-electron lasers and electron sources that may not be readily accessible to the average user. Table-top sources that offer alternative means are therefore needed. In this work, we present an all-optical, table-top setup that enables symmetry-resolved studies using linear and nonlinear spectroscopies. We demonstrate the versatility of the setup with chosen examples that underscore the importance of tracking symmetries and showcase the strengths of the setup, which offers a large tunable parameter space.

cond-mat.str-el↗