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Fernando Ardana-Lamas

Publications and source records attributed to Fernando Ardana-Lamas.

5 recordsLinked to original sources

Roadmap on Attosecond Science

Twenty-five years have passed since the first experimental demonstration of attosecond pulses, marking the advent of our ability to resolve and control electron motion in real time. What began as a technological breakthrough - generating the shortest flashes ever produced - has evolved into a powerful approach for probing and steering electronic dynamics in atoms, molecules, and solids. This roadmap, authored by leading experts in the field, surveys the recent rapid progress in the generation and characterization of attosecond pulses, emerging attosecond measurement and control techniques, and their expanding range of applications. It reviews current and future developments in attosecond light sources, including novel laser technologies, waveform synthesizers, new schemes for high-order harmonic generation, attosecond pulse generation at free-electron lasers, and structured light. Advances in attosecond measurement methodologies are also discussed, encompassing all-attosecond pump-probe spectroscopy, attosecond four-wave mixing, attosecond microscopy, spectroscopy with light transients, and attosecond interferometry. Furthermore, the roadmap addresses applications of attosecond spectroscopy to reveal electron dynamics in molecules and condensed matter systems from both theoretical and experimental perspectives, and highlights emerging directions at the interface with quantum optics and quantum entanglement. Overall, this work aims to serve as a comprehensive resource for navigating the evolving landscape of attosecond science.

physics.optics

Spin waves excited by hard x-ray transient gratings

Recent progress in ultrafast x-ray sources helped establish x-rays as an important tool for probing lattice and magnetic dynamics initiated by femtosecond optical pulses. Here, we explore the potential of ultrashort hard x-ray pulses for driving magnetic dynamics. We use a transient grating technique in which a spatially periodic x-ray excitation pattern gives rise to material excitations at a well-defined wave vector, whose dynamics are monitored via diffraction of an optical probe pulse. The excitation of a ferrimagnetic gadolinium bismuth iron garnet film placed in an external tilted magnetic field by x-rays at the Gd L3 edge results in both magnetic and non-magnetic transient gratings whose contributions to the diffracted signal are separated by polarization analysis. We observe the magnetization precession at both longitudinal acoustic and spin wave frequencies. An analysis with the Landau-Lifshitz-Gilbert equation indicates that the magnetization precession is driven by strain resulting from thermal expansion induced by absorbed x-rays. The results establish x-ray transient gratings as a tool for driving coherent phonons and magnons, with the potential of accessing wave vectors across the entire Brillouin zone.

physics.optics

Reply to "Comment on Brilliant source of 19.2 attosecond soft X-ray pulses below the atomic unit of time" by Han (arXiv:2510.17949)

We recently reported a refine analysis of a previously conducted soft X-ray (SXR) attosecond streaking measurement [1], employing the Variational Phase Gradient Temporal Analysis (VPGTA) retreival algorithm [2]. This re-evaluation, prompted by new metrological insights, revealed a 19.2 attosecond pulse - consistent with the expectations and estimates of our earlier work [3]. Shortly thereafter, a comment by M. Han [4] challenged our findings, citing "physical and technical issues concerning the original experiment and the new characterisation" inclusing purported contributions from Auger electrons, unfiltered low-energy harmonics, and uncompensated intrinsic chirp. These concerns, however, stem from misinterpretation of the experimental regime, selective citation of context, and disregard for well-established results in the peer-reviewed literature. In this reply, we address and clarify these points, demonstrating that the issues raised are not relevant under our experimental conditions. Given the highly specialized nature of attosecond genertaion and metrology in the soft X-ray water-window regime, we consider it essential to clarify these aspects of different regimes and reaffirm teh validity of our conclusions.

physics.optics

Brilliant source of 19.2 attosecond soft X-ray pulses below the atomic unit of time

Electronic correlations occur on attosecond timescales, dictating how chemical bonds form, energy flows, and materials respond to light. Capturing such many-body processes requires light pulses of similar duration. The soft X-ray water window is vital because it encompasses the principle absorption edges of carbon, nitrogen, and oxygen that underpin chemistry, biology, and materials science. However, generating and characterising isolated attosecond pulses that reach into the soft X-ray water window has remained a challenge. We addressed this need and report an isolated attosecond soft X-ray pulse with a duration of 19.2 attoseconds. This pulse reaches into the water window and is shorter than the atomic unit of time (24.2 as). The pulse is supported by a spectrum centred at 243 eV, extending up to 390 eV, and crossing the carbon K-edge with record photon flux: 4.8x10$^10$ photons per second overall and 4.1x10$^9$ photons per second in a 10% bandwidth at the carbon K-shell edge (284 eV). Such an extremely short soft X-ray pulse combines extreme temporal resolution with a coherent ultrabroadband soft X-ray spectrum, opening new opportunities to study electron dynamics in atoms, molecules, and solids, disentangle many-body interactions in correlated systems, and follow non-adiabatic energy flow in molecular complexes. Our results establish a new benchmark for table-top attosecond technology and lay the foundation for its widespread application in science and technology.

physics.optics

Few-femtosecond electronic and structural rearrangements of CH$_4^+$ driven by the Jahn-Teller effect

The Jahn-Teller effect (JTE) is central to the understanding of the physical and chemical properties of a broad variety of molecules and materials. Whereas the manifestations of the JTE on stationary properties of matter are relatively well studied, the study of JTE-induced dynamics is still in its infancy, largely owing to its ultrafast and non-adiabatic nature. For example, the time scales reported for the distortion of CH$_4^+$ from the initial $T_{\rm d}$ geometry to a nominal $C_{\rm 2v}$ relaxed structure range from 1.85~fs over 10$\pm$2~fs to 20$\pm$7~fs. Here, by combining element-specific attosecond transient-absorption spectroscopy and quantum-dynamics simulations, we show that the initial electronic relaxation occurs within 5~fs and that the subsequent nuclear dynamics are dominated by the $Q_2$ scissoring and $Q_1$ symmetric stretching modes, which dephase in 41$\pm$10~fs and 13$\pm$3~fs, respectively. Significant structural relaxation is found to take place only along the e-symmetry $Q_2$ mode. These results demonstrate that CH$_4^+$ created by ionization of CH$_4$ is best thought of as a highly fluxional species that possesses a long-time-averaged vibrational distribution centered around a $D_{\rm 2d}$ structure. The methods demonstrated in our work provide guidelines for the understanding of Jahn-Teller driven non-adiabatic dynamics in other, more complex systems.

physics.chem-ph