Researchers have developed a new type of photonic crystal fiber with a hybrid Kagome-tubular lattice structure, achieving ultralow loss and single-mode operation. The fiber's cladding design significantly reduces confinement loss and ensures robust single-mode performance.
Researchers have developed a framework to predict the performance of next-generation hybrid photovoltaic-thermal (PVT) solar collectors. The study reveals that the relative value of thermal energy to electricity significantly influences efficiency limits, optimal PV cell material, and spectral-splitting filter design.
Researchers have created an angle-insensitive 3D-printed miniature spectrometer that can be fabricated directly on a miniature image sensor. This innovation enables complex measurement systems in medical engineering and precision farming, with potential applications in hyperspectral imaging.
Researchers at Harvard Medical School and Peking University introduce a novel technique for tracking individual cells using omnidirectional visible laser particles. The innovative method reduces orientation-dependent intensity fluctuations, allowing for blinking-free tracking of single cells under complex biological conditions.
A team of scientists has devised a mid-infrared free standing solid core optical waveguide that pushes the light interaction with air beyond previous reports. The guided mode resembles a free-space beam, with minimal overlap with material imperfections, reducing spurious fringes and loss.
Scientists have developed novel, non-toxic organic emitters for the near-infrared range, achieving high external quantum efficiencies in OLEDs. The new materials surpass previous reports by demonstrating improved radiative rates and reduced aggregation quenching.
Researchers have developed a VUV laser system with a focal spot of <1 μm, enabling high-energy resolution (~0.3 meV) and sub-micron spatial resolution for angle-resolved photoemission spectroscopy (ARPES). This improvement allows for better visualization of electronic structures in novel quantum materials.
Researchers have developed a new method to accurately characterize the thickness of hundreds-layer semiconductor devices using optical spectral measurements and machine learning. The technique can determine layer thickness with an average error of 1.6 Å, helping control etching and deposition processes.
A team of scientists has developed a novel hydrogel formula based on PEGda and HMPP for 3D direct laser writing (DLW) with low threshold power using a green laser. The new formula enables the fabrication of precise microstructures with high resolution and mechanical stability, suitable for biomedical engineering applications such as wo...
Researchers quantify topological protection in photonic edge states using a valley photonic crystal, measuring negligible radiative losses and significant loss in standard waveguides. The study provides insights into the robustness of topologically non-trivial states.
Scientists have designed a zero-index material based on a purely dielectric photonic crystal slab that supports low-order mode-based design, reducing radiation loss. This design enables applications such as arbitrarily shaped waveguides, phase-mismatch-free nonlinear propagation, and extended super radiance with low propagation loss.
Researchers at UCLA have developed Diffractive Deep Neural Networks (D2NNs) for all-optical object classification, achieving higher accuracy than individual constituent D2NNs and digital AI models. The success of the ensemble learning approach demonstrates the power of combining multiple predictions to obtain a more accurate prediction.
A new type of high-performance optical sensor has been demonstrated that utilizes the surface tension of liquid to concentrate and trap analyte molecules at sensitive locations, enhancing sensitivity performance. The sensor can detect picogram levels of analyte mass with readily detectable optical signals.
Researchers have found that halide perovskite nanocrystals exhibit extraordinary energy transport properties, allowing them to travel longer distances than conventional nanostructures. This discovery has significant implications for the development of high-efficiency solar cells and light-emitting devices.
Scientists have developed a natural potassium-tantalate-niobate (KTN) perovskite nonlinear photonic crystal with 3D spontaneous Rubik's domain structures, enabling compensation of phase-mismatch along arbitrary directions. This breakthrough paves the way for new applications in optical communications, quantum entanglement sources, and ...
Researchers develop novel design and fabrication techniques for rainbow light trapping, enabling extreme light confinement and versatile application in low concentration molecular sensing, enhanced photocatalysis, and super-resolution optics. The technique uses analytical modeling to optimize groove geometry for broadband electromagnet...
Researchers have directly observed the formation and interaction of highly ionized krypton plasma using femtosecond coherent ultraviolet light and a novel four-dimensional model. The study reveals strongly nonlinear behavior in laser-plasma interaction, allowing for the creation of well-defined plasma conditions.
Research on strain engineering of 2D materials, including graphene and transition metal dichalcogenides, has shown promising results. The unique mechanical and optical properties of these materials make them suitable for optimizing device performance and enabling new photonic applications.
Scientists create technique to remotely manipulate heat sources and associated fluid flows using laser light. This enables new functionalities in optofluidics, such as selective delivery of nano-objects and analytes. The method also demonstrates programmable control over optical propulsion forces and fluid streams.
Researchers developed a low-cost, flexible optoelectronic cell that can detect light intensity and perceive color. The device uses bandgap-gradient perovskites to sense spectral content with high resolution.
Researchers demonstrate graphene heterogeneous fiber micro resonator, generating dissipative soliton mode-locked laser combs with dynamic tunability. The graphene device provides opto-electric stabilization, reducing phase noise to instrument-limited floor, -130 dBc/Hz at 10 kHz offset.
Researchers developed novel cascade optical field modulation strategy to boost UCL by more than four orders of magnitude. The new material exhibits extremely high responsivity and detectivity, achieving selective detection in three narrow spectral bands.
Researchers have developed a graphene-organic heterojunction transistor that can modulate photocurrent speed, magnitude, and direction using light. The device utilizes the effective exciton thickness limitation of an intermediate organic transport layer to achieve logic reversal under optical modulation.
The new photodetector achieves ultrasensitive detection, stable operation under extreme conditions, and ultrabroad spectrum detection exceeding 10μm.
Scientists discovered a new kind of hidden symmetry in photonic crystals, leading to the emergence of triply degenerate nexus points that behave like magnetic monopoles. These nexus points enable unusual photonic band connectivities and novel transport phenomena, including spin-1 conical dispersion and canonical diffraction.
Researchers create a device that displays directionally asymmetric reflective colors based on viewing direction, enabling information encryption via optical camouflage. The design allows for bidirectional display of tuneable messages/images, opening up new photonic applications.
Scientists have developed a simple method to comprehensively assess spectrometer performance within seconds using only incoherent excess noise. This approach enables high-quality visible light OCT imaging with improved spectral resolution uniformity, revealing new insights into the mouse photoreceptor layer.
Researchers have created a novel ultrafast coherent light source in the extreme ultraviolet wavelength region with multi-MHz range repetition rates. The system utilizes intracavity high-order harmonic generation and achieves a repetition rate of 3 MHz, suitable for applications such as ultrafast XUV spectroscopy.
A new technique realizes PT symmetry in a single spatial resonator by manipulating polarization-dependent response, enabling effective suppression of sidemodes and stable single-mode lasing. The proposed polarimetric PT symmetry concept opens avenues for non-Hermitian photonic systems with various optical parameters.
Researchers demonstrate fully controllable local-field interferences in nanoantennas, enabling the creation of dynamically tunable Fano lineshapes with nearly vanishing Fano dips. The spectral dispersion can exhibit low-background and strong suppression of local-field intensity at Fano dips.
Researchers have optimized Vertical Cavity Surface Emitting Lasers (VCSELs) to achieve lower energy consumption while maintaining high data transmission rates. The study demonstrates that doubling the number of devices can reduce total energy consumption by 50% without compromising device lifetime or reducing current density.
A team of scientists has developed a novel optical design that enables fast imaging in 3D microscopy by converting lateral scanning into axial focusing. This technology accelerates axially swept light-sheet microscopy (ASLM) and raster scanning microscopes to multi-kHz rates, outperforming previous aberration-free focusing technologies.
A team of scientists developed wearable LiFi based on electroluminescence-photodetection bifunctional fibers enabled by perovskite QDs. The fibers possess a narrowest luminescence spectrum and can simultaneously transmit and receive information.
A new method for identifying sentinel lymph nodes (SLNs) in breast cancer uses photoacoustic microscopy and CD44 and SR-B1 dual-targeting nanoparticles. The technique distinguishes between metastatic SLNs and inflamed LNs, providing a potential solution for reducing complications during surgery.
A team of scientists has developed a novel type of quantum emitter formed from spatially separated InGaN monolayer islands. The isolated islands exhibit high photostability and can be spectrally filtered to act as bright, fast single photon emitters at a wavelength of ~400 nm.
Researchers have developed a novel cerium(III) complex that enables the creation of high-efficiency, deep-blue organic light-emitting diodes. The complex exhibits a high photoluminescence quantum yield and leads to an external quantum efficiency of up to 14% in prototype OLEDs.
A team of scientists has developed a free-space optical transmission system that relies on an optical amplifier without excess noise, achieving unprecedented error-free sensitivity of one photon-per-information-bit at 10.5 Gbit/s. The system operates at room temperature and is scalable to higher data rates.
Researchers develop a combination therapy using near-infrared light-induced heat and anti-CD47 antibody to enhance cancer treatment. The treatment promotes local and systemic anticancer immune responses, showing great potential for solid tumors.
Researchers have created a new kind of liquid scintillator by combining perovskite nanocrystals with organic molecules, enabling efficient X-ray detection and high-resolution imaging. The hybrid material outperforms conventional scintillators in terms of quantum yield and scintillation decay time.
A newly published paper introduces a formal theoretical framework from first principles, enabling researchers to predict the fascinating properties of coupled photonic systems before numerically simulating them. The theory allows for the design and prediction of line-shapes with desired near-field and far-field properties.
Researchers discuss theoretical frameworks for electromagnetic chirality in chiral materials and fields, enabling understanding of complex chiroptical phenomena. Chirality is a qualitative property but measurable quantities can be described using chiroptical parameters.
Researchers have developed a new method for creating multicolor single-mode microlasers capable of emitting over the full visible spectrum. The lasers are achieved through heterogeneously coupled cavities constructed with three spherical microcavities and distinct gain media.
Researchers have experimentally observed a 0D corner state in a 3D topological circuit, which is induced by the nontrivial octupole moment of the circuit. The corner state is protected by three anticommuting reflection symmetries and exhibits robustness against certain types of disorder.
A novel modality for computational light-field imaging using a diffuser as an encoder has been developed, enabling lensless imaging with adjustable spatio-angular resolutions. This approach avoids the resolution limitation of traditional sensors, allowing for viewpoint shifting, post-capture refocusing and depth sensing capabilities.
A team of scientists experimentally demonstrated nonlinearity-induced coupling of light into topological edge states using a photonic platform. They developed a general theoretical framework to explain the nonlinear process, revealing that nonlinearity enables energy flow from bulk modes into topological edge modes in linear systems.
Scientists demonstrate efficient separation of valley exciton emission of a WS2 monolayer using two-dimensional all-dielectric PhC slabs without in-plane inversion symmetry. The delocalized Bloch modes play a critical role in separating and enhancing directional valley exciton emission.
Researchers developed a new imaging modality for in-development retinal organoids using D-FFOCT, which offers high spatial and temporal resolutions. The technique allows for the creation of highly contrasted images of almost transparent samples without labels, enabling long-term study of sample development.
A team of scientists used THz pulses to study the intermolecular motion of liquid water, revealing a hydrogen bond harmonic oscillator model and polarizability anisotropy on sub-picosecond scales. The results provide insights into the transient structure of liquid water and its interaction with solvent molecules.
Researchers develop a non-toxic Cs2Ag0.6Na0.4In0.85Bi0.15Cl6 double perovskite scintillator for high-performance X-ray imaging with low doses, enabling high-resolution images in medical and industrial applications.
Scientists create hierarchical assembly of dye molecules in a host-guest hybrid metal-organic framework to achieve up to three-wavelength single-mode polarized lasing. The resulting three-color single-mode lasing has a large wavelength coverage of ~186 nm and a low threshold of ~1.72 mJ/cm2.