Researchers propose a novel scheme to produce isolated attosecond pulses using relativistic electron mirrors. This approach can compress an incoming femtosecond laser pulse into an ultra-intense extreme ultraviolet (XUV) attosecond burst, opening doors to groundbreaking applications in ultrafast science and high-resolution imaging.
Researchers at Peking University and Hunan University have developed a method to generate powerful, structured terahertz pulses with programmable polarization textures. The team uses femtosecond laser pulses to drive magnetized plasma, creating Poincaré THz beams carrying spin and orbital angular momentum.
Researchers developed a novel scheme to generate high-intensity, isolated attosecond soft X-ray FELs using mid-infrared laser pulses and gas-filled hollow capillary fibers. This method produces ultra-short pulses with high signal-to-noise ratio, enabling scientific applications such as probing valence electron motion.
The 3rd International Conference on UltrafastX (UltrafastX 2025) will take place in Xiamen from October 23 to 26, 2025. The conference will cover topics such as ultrafast lasers, imaging, and terahertz science and technology.
Researchers find that intense laser pulses cause tunnel ionization, generating photocarriers and altering the lattice energy surface, leading to ultrafast melting of wide-gap ceramic materials like MgO. The study demonstrates a universal microscopic mechanism for laser-induced phase transitions.
A research team at National University of Defense Technology has successfully generated an isolated attosecond XUV pulsed source with a pulse duration of 51±4 attoseconds. This achievement paves the way for further exploration of ultrafast electron dynamics using high-flux ultrashort attosecond pulses.
Scientists observe direct interactions between molecular rotations and electronic structures for the first time, shedding light on chemical reaction mechanisms. The study finds that Coriolis coupling, a previously unknown process, plays a dominant role in bond cleavage, lasting several hundred femtoseconds.
Researchers have identified a subcycle conservation law between angular momentum and energy during strong-field ionization, as revealed by the analysis of correlated spectrum of angular momentum and energy. This law remains applicable down to the subcycle level, offering new understanding of light-matter interactions.
Compressed Ultra-Compact Femtosecond Photography (CUF) uses a super-dispersive metalens to capture transient events in a single image, overcoming conventional CUP technology's limitations. The system achieves ultrafast imaging at hundreds of trillions of frames per second with improved compactness and reliability.
Researchers have made significant advancements in understanding the complex dynamics of soliton molecules, revealing quasi-periodic behaviors and chaotic transitions. The study also discovers intrinsic frequency entrainment, a phenomenon showcasing synchronization within optical resonators.
The ELI ALPS facility provides state-of-the-art tools for studying ultrafast phenomena. The plasma and gas-based high-repetition-rate attosecond XUV beamlines at ELI ALPS enable researchers to advance multidisciplinary research in ultrafast phenomenon with enhanced signal-to-noise ratio.
This article discusses ultrafast plasmonic materials for all-optical switching and pulsed lasers, highlighting their potential in photonics applications. Researchers have explored various ultrafast plasmonic systems, including metasurfaces made of noble metals and phase-change hybrid materials.
Recent advancements in terahertz radiation reveal the physical processes involved in quantum materials. The study highlights the exploration of THz emission in topological insulators and semimetals, multiferroics, and superconductors, shedding light on their fundamental physics.
Researchers from Fudan University and others report a new method to analyze lattice vibrations and excitations in materials using terahertz difference frequency mixing. The technique offers sub-monolayer sensitivity for studying interface properties of complex oxides.
Bound states in the continuum (BICs) provide a generalized approach to achieve extremely high-Q resonant cavities. BICs offer powerful mechanisms for enhancing light-matter interactions and have been explored in various photonic structures over the past few decades.
Researchers developed a novel technique to measure the refractive index line shape in ultrafast XUV transient absorption spectroscopy. By controlling the phase of the XUV light field, they can manipulate matter response and explore new physical phenomena.
Researchers have developed a method to generate mid-infrared pulses with dual-wavelength spectral shaping, enabling flexible tunability in both temporal and spectral domains. This allows for enhanced High-Harmonic generation (HHG) control, opening new possibilities for applications such as electron dynamics and light-matter interaction.
Researchers developed Plasma-grating induced breakdown spectroscopy (GIBS) and Multidimensional plasma grating induced breakdown spectroscopy (MIBS) techniques to overcome LIBS limitations. These novel methods exhibit heightened sensitivity and accuracy in detection, particularly for solution detection.
Researchers have developed an all-fiber Mamyshev oscillator that produces high-energy ultrafast pulses, exceeding previous records. The device achieves a single pulse energy of 153 nJ and average power of 3.4 W with sub-100 fs pulse widths.
The γ-MnO2 dual-core pair-hole fiber enables the production of an all-fiber mode-locked laser with a pulse width of about 1 ps and a repetition frequency of about 600 MHz. This fabrication scheme offers good stability and is suitable for combining other novel materials with specialty fibers, expanding ultrafast optics and sensing appli...
Scientists have directly observed ultrafast motion of nonequilibrium excitons in monolayers WSe2, MoWSe2, and MoSe2, traveling at least 200 nm within 1 ps. This 'superdiffusion' process could break the traditional limitation of photovoltaic efficiency and be used for ultrafast electronic devices.
Scientists at Stockholm University propose a nonlinear spectroscopic technique to investigate coupled nuclear electronic dynamics in photo-excited molecules. This approach allows for the observation of conical intersections, which are 'funnels' connecting different electronic states, and provides insight into non-adiabatic dynamics.
Scientists develop two-beam ultrafast laser scribing technology to fabricate ultrafine graphene patterns with sub-diffraction feature size. The technique overcomes the diffraction limit barrier, allowing for precise control over patterned structures.
Researchers combined ultrafast imaging with 3D atomistic simulation to study femtosecond laser ablation. The technique revealed the ablation mechanism of bulky gold at different excitation energy flow densities, providing guidance for material fabrication.
Researchers have developed a novel air-laser-based standoff Raman spectrometer with high temporal and frequency resolutions. The device enables remote detection of chemical species in real time, monitoring their rovibronic levels and populations in the frequency domain.
Researchers use novel interferometric technique to measure time delay between H2 and D2 isotopes, finding phase shift of nearly 3 attoseconds caused by nuclear motion. The study uses high harmonic generation and advanced theoretical modeling to validate the method.
Researchers achieved unprecedented extreme physical conditions using a 100 PW laser system, enabling new applications and fundamental science. The system features an OPCPA front end that supports peak powers of 263 TW and pulse durations as short as 13.4 fs.
Scientists have successfully filmed the impulsive response of bound electrons to intense XUV pulses using a new photoelectron spectroscopy. The technique provides a novel method for time-resolved imaging of ultrafast bound-state electron processes in intense laser fields.
A study by Prof. Weiwei Liu's group reveals a negative correlation between plasma density and THz radiation intensity, with maximum radiation at minimum plasma density. The researchers attribute this to the electron drifting velocity, which dominates THz pulse generation.
Researchers propose a simple method to generate intense isolated attosecond x-ray pulses using wavefront control, overcoming previous limitations. The new approach requires only a 100 fs conventional laser, making it feasible for current FEL facilities.
A research team has developed a novel interferometer to investigate the ultrafast temporal evolution of coherence between electronic states coupled with nuclear dynamics in a molecule. The interferometer resolves attosecond optical and quantum interference, enabling studies of molecular dynamics.
Scientists successfully measured the attosecond-scale Wigner time delay in molecular photoionization, providing insights into the timing of the photoemission process. The 'double-pointer attoclock' scheme was used to disentangle the orientation-dependent behavior of molecular Coulomb interaction and molecular orbital structure.
A joint research team investigated the generation of low-energy protons in dissociative ionization of H2 using time-energy-resolved spectroscopy. They found that low-energy protons are produced via dipole-transition at large bond lengths, contrary to the expected bond-softening scenario.
Researchers have demonstrated a new method for guiding light in an energy-scalable manner using two refocusing mirrors and thin nonlinear glass windows. This approach enables the compression of laser pulses to tens of femtosecond duration with gigawatt peak power.
A new technique uses air lasing and coherent Raman spectroscopy to detect greenhouse gases with high sensitivity and multi-component measurement capabilities. The detection reaches a level of 0.03% and can distinguish between CO2 isotopes.
Researchers developed TDAP method for investigating precise ultrafast processes in matter, providing robust dynamic simulations based on quantum mechanical principles. The approach has been applied to strong field physics and photocatalysis, demonstrating effective treatment of ultrafast quantum dynamical processes.
A team of scientists has successfully generated Bessel terahertz pulses from superluminal laser plasma filaments, showcasing a promising approach for various applications. The method, which manipulates the spatial-temporal structure with tailored femtosecond lasers, produces ultrabroad bandwidth and high-order Bessel beam profiles.
Scientists at ELI ALPS developed a high-flux 100kHz attosecond pulse source driven by a high-average power annular laser beam. The method relies on the strong field effect of high harmonic generation to separate attosecond pulses from the driving laser beam.
Researchers have developed a method to achieve nature-inspired superwettability using femtosecond lasers. The technique enables the creation of hierarchical microstructures that promote water repellency on various materials, leading to applications in anti-liquids, self-cleaning, and other fields.
Scientists have developed a new type of ultrafast laser oscillator that generates sub-50 fs pulses with broad spectral widths, exceeding the emission bandwidth of traditional gain media. The technique is pulse-energy and average-power scalable and applicable to other types of gain media.
Femtosecond laser precision engineering enables micro/nano-structure creation with high resolution and dry processing. Key challenges include achieving small heat affected zones and ensuring sufficient processing speeds for industrial needs.
A team led by Prof. Dr. Maria Hoflund developed a method to focus broadband XUV radiation with a high demagnification factor, enabling the creation of high-intensity XUV pulses with attosecond pulse duration.
Scientists analyze high-order harmonic generation in solids to understand the underlying mechanism of electron/hole collisions with neighboring atoms. The study maps collision information into the band structure, paving the way for controlling and visualizing electron dynamics.
Researchers investigate crystal-orientation dependence of HHG in WS2 and MoSe2, revealing polarization direction of odd-order harmonics follows the driving laser field. Crystal symmetry flips affect high-harmonic signals.