The piezochiral effect.

Nature (2026)

Authors:

Z Zeng, M Först, M Fechner, X Deng, A Cavalleri, PG Radaelli

Abstract:

Chirality is a pervasive property of matter that underpins many important phenomena across physics1, chemistry2 and biology3. Given its broad importance, the development of protocols for rational control of chirality in solid-state systems is highly desirable, especially if this effect can be tuned continuously and in two directions. Yet, this goal has remained elusive owing to the absence of a universal conjugate field that couples linearly to this structural order4-6. Here we introduce the piezochiral effect, which enables control of chirality through mechanical strain. We show by symmetry analysis that uniaxial strain induces chirality in a broad class of achiral crystals that host fragments of opposite chirality within each unit cell7,8, an effect that has so far remained unrecognized. The strain-induced handedness can be tuned either by changing the strain direction or by switching between compressive and tensile strain. We experimentally verify this effect in AgGaS2, using measurements of the optical activity under strain. Our discovery establishes a new scheme for chirality control, with potential applications that range from spintronics to asymmetric catalysis, and enantioselective interactions in biosystems.

Three-phonon mixing as a source of light-induced chirality

(2026)

Authors:

Y Zhu, A Vanderhaegen, Z Zeng, M Först, M Fechner, C Putzke, PJW Moll, D Prabhakaran, P Radaelli, A Cavalleri

Multimodal analysis reveals hydrolysis as a shared mechanism in magnetic tape degradation

(2026)

Authors:

Jack Harrison, Joyce James, Camelia N Borca, Dominik Blatter, Richard L Hess, David Hadzis, Kelly Pribble, Frédéric Ménétrier, Alain Dufaux, Sebastian Gliga

The optical phonoelectric effect

(2026)

Authors:

D Choi, M Först, M Fechner, M Buzzi, X Deng, Z Zeng, KH Martens, D Prabhakaran, C Putzke, P Moll, PG Radaelli, A Cavalleri

The influence of phonon symmetry and electronic structure on the electron-phonon coupling momentum dependence in cuprates

npj Quantum Materials Nature Research (2026)

Authors:

Maryia Zinouyeva, Rolf Heid, Giacomo Merzoni, Riccardo Arpaia, Nikolai Andreev, Marco Biagi, Nicholas B Brookes, Daniele Di Castro, Alexei Kalaboukhov, Kurt Kummer, Floriana Lombardi, Leonardo Martinelli, Francesco Rosa, Matteo Rossi, Flora Yakhou-Harris, Lucio Braicovich, Marco Moretti, Paolo G Radaelli, Giacomo Ghiringhelli

Abstract:

The experimental determination of the magnitude and momentum dependence of electron-phonon coupling (EPC) is an outstanding problem in condensed matter physics. The intensity of phonon peaks in Resonant Inelastic X-ray Scattering (RIXS) spectra can be related to the underlying EPC strength under significant approximations whose validity deserves careful verification. We measured the Cu L3 RIXS phonon intensity as a function of incident photon energy and momentum transfer in several layered cuprates. For CaCuO2, La2−xSrxCuO4+δ, and YBa2Cu3O6, using a generally accepted theoretical model, we quantitatively estimate the EPC for the bond-stretching mode along the high-symmetry directions (ζ,0) and (ζ,ζ), and as a function of the azimuthal angle φ at fixed q∥. We compare our results with theoretical predictions and find that the q∥-dependence of the phonon RIXS intensity can be largely ascribed to the phonon symmetry. However, a more satisfactory prediction of the experimental results requires an accurate description of the electronic structure close to the Fermi level. Our extensive investigation indicates that Cu L3 RIXS can reliably determine the momentum dependence of EPC for the bond-stretching modes of cuprates. Moreover, the large experimental basis provided here constitutes a stringent test for advanced theoretical predictions on the EPC.