Webinars
VirtualLab Fusion webinars, held by our team of experienced optical engineers, take place regularly on different topics.
Upcoming Webinars
Get inspired by our free webinars and learn what is possible with our software. More webinars will come soon. Stay up to date and never miss a webinar again by subscribing our newsletter: https://www.lighttrans.com/newsletter.html
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Previous Webinars
Below you may find a list of our webinars which have already taken place. Fill out the form on the webinar page and get access to our webinar for watching it on demand.
Exploring VirtualLab Fusion
In this webinar we are going to take a very relaxed approach and simply put some time aside to play around with the physical optics modeling and design software VirtualLab Fusion, to get a taste of what its fast physical optics technology can do!
Flat Optics – about Freeform, Fresnel, Diffractive and Meta Lenses
The steady interest in miniaturizing optical systems ultimately leads to flat optics, which includes any concept to reduce the thickness of components and systems by introducing surfaces with high functionality. In this webinar we invite you to join us on a journey through the concepts, prospects, challenges, and myths of the different versions of flat components, with an emphasis on lenses.
New Features in VirtualLab Fusion for Fiber Optics
VirtualLab Fusion comes with new features for the modeling and design of systems for fiber optics. Based on linearly polarized (LP) modes and Gaussian-Laguerre solver techniques, we present:
- The fiber source, which emits customer-selected weighted fiber modes,
- The fiber coupling efficiency detectors, which provide the efficiency of the power transferred into multi-mode and single-mode fibers,
- The fiber component, which enables the propagation of electromagnetic fields through fibers.
These new features significantly extend the physical-optics modeling and design capability of VirtualLab Fusion for fiber optics applications. This is demonstrated by examples such as:
- Investigating the aberration effects on the fiber modes in the focal region,
- Analyzing the field propagation through an optical system with fiber components,
- Presenting a complete design workflow of the coupling system of either single-mode or multi-mode fiber, including lens system design and tolerance analysis.
Diffractive Lenses: Concept, Modeling, Design, and Fabrication Data
Smooth, often spherical, surfaces between homogeneous media dominate lens design. The introduction of aspherical and freeform surfaces has added design freedom to obtain compact lens systems with improved quality and new functions. According to the Fresnel equations, surfaces typically do not add a phase variation to the incident light. Diffractive surfaces introduce the freedom to add an extra phase variation onto the incident light. Interest in how to use this extra design freedom best has gained momentum in recent years, aiming at more compact systems and better performance. The nature of the diffractive structure allows for special functionalities like multiple foci, but also leads to some challenges, like a strong wavelength dependency.
Gratings as a Part of Optical Systems
The construction of optical systems combining diffraction gratings and lenses and other smooth surfaces is a common occurrence, across many applications like spectroscopy, in microscopy using the grating as a test object, or in AR & MR glasses. This is not reflected in the field of simulation: it is rare, even today, to find software which can convincingly tackle the modeling of such systems. The reason for this is the vast difference in the structural dimensions of the two types of components, which means drastically different algorithms are needed for each of them.