After weeks of staying in — weather, work, and life gently pulling me away from the outdoors — I returned to a familiar place. Early morning, 06:00. A quiet drive in my little yellow car, back to the Kampina.

And it welcomed me immediately.

As the sun began to rise, its light broke through the trees in long, defined beams, cutting through the lingering mist. What we see here is a beautiful example of light scattering: tiny water droplets suspended in the air make normally invisible sun rays visible, revealing the geometry of light itself. Without the mist, these beams would simply pass unnoticed.

The forest was still mostly dark, branches forming a natural frame — almost resisting the light, yet unable to stop it. That contrast is what drew me in. Light doesn’t just illuminate; it reveals structure, depth, and atmosphere.

Photographing this handheld meant working quickly. Light like this is fleeting — it shifts, softens, disappears. I used my Canon 5D Mark IV with the Sigma 100–400mm at approximately 1/250 sec, ISO 500, balancing stability and sensitivity in low morning light.

There’s something grounding about returning to a place you trust. No spectacle needed — just the quiet interaction between light, moisture, and time.

And this was only the beginning of that morning.

#Kampina #DutchNature #NatureInTheNetherlands
#SunriseLight #LightBeams #MorningMist
#AtmosphericLight #LightScattering #NaturePhysics
#ForestLight #MistyMorning #GoldenHourMoments
#NaturePhotography #LandscapePhotography #OutdoorMoments
#BackToNature #QuietMoments #NatureObservation
#Canon5DMarkIV #Sigma100400 #HandheldPhotography
#NaturalLight #LowLightPhotography
#EarthFocus #DiscoverNature #StayAndWander
#Pixelfed #PixelfedPhotography
#WonderingLens #ByMaikeldeBakker
#MoodyNature #ForestVibes #MorningWalk
#NatureLovers #VisualStorytelling

Hybrid excitons: combining the best of both worlds

Researchers discover unique quantum state at the interface of organic and 2D semiconductors: https://www.uni-goettingen.de/en/3240.html?id=8054. This breakthrough is a step towards the development of more efficient solar cells, ultrafast optoelectronic components, and new applications in #QuantumTechnology.

Research in #NaturePhysics: https://www.nature.com/articles/s41567-025-03075-5

#International #ResearchCollaboration #Göttingen #Graz #Marburg #BerlinHumboldt

Physicists at our university have succeeded in setting a supersolid quantum gas into rotation. In the process, they observed an intriguing phenomenon: when quantum vortices appeared, the motions of the crystalline structures became synchronized.

Similar vortex dynamics may also play a role in the behavior of neutron stars. ✨

Learn more in our news article or read the paper in #NaturePhysics:

🆕 https://www.uibk.ac.at/en/newsroom/2025/supersolid-spins-into-synchrony/

📖 https://www.nature.com/articles/s41567-025-03065-7

#quantumPhysics #physics #experimentalPhysics

Supersolid spins into synchrony

Supersolids, a state of matter that combines the rigidity of a solid with the frictionless flow of a superfluid, exhibit surprising synchronization when rotated. Innsbruck researchers found that quantum vortices—tiny whirlpools in the quantum fluid— cause the precession and revolution of the superfluid crystal structure to synchronize their motion. This discovery provides a new tool for studying fundamental properties of quantum systems.

Physiker:innen der Uni Innsbruck ist es gelungen, ein suprafestes Quantengas zum Rotieren zu bringen. Dabei beobachteten sie ein interessantes Phänomen: Beim Auftreten von Quantenwirbeln synchronisierten sich die Bewegungen der kristallinen Strukturen.

Ähnliche Wirbeldynamiken könnten beim Verhalten von Neutronensternen eine Rolle spielen. ✨

Mehr dazu im Newsbeitrag & im #NaturePhysics-Paper:

🆕 https://www.uibk.ac.at/de/newsroom/2025/suprafestkorper-dreht-sich-im-takt/

📖 https://www.nature.com/articles/s41567-025-03065-7

#Quantenphysik #Physik #Experimentalphysik

Suprafestkörper dreht sich im Takt

Suprafestkörper sind fest und supraflüssig zugleich. Werden sie in Rotation versetzt, zeigen sie ein überraschendes Phänomen: Ein Innsbrucker Forschungsteam hat entdeckt, wie sich die Bewegungen kristalliner Strukturen in der Supraflüssigkeit beim Auftreten von Quantenwirbeln synchronisieren. Diese Entdeckung liefert neue Einblicke in die grundlegenden Eigenschaften von Quantensystemen.

Unlocking the potential of “miracle material” for future electronics

It turns out the extraordinary properties of graphene are even more mysterious than previously known. For the first time, researchers have observed “Floquet effects” in graphene. This means Floquet engineering – where the properties of a material can be very precisely altered using pulses of light – also works in such materials, opening up potential for future tech: https://www.uni-goettingen.de/en/3240.html?id=7902

Research in #NaturePhysics: https://doi.org/10.1038/s41567-025-02939-0

#QuantumMaterials #QuantumComputing #DFG

Illustration thanks to www.linasegerer.de

#NaturePhysics Simulating two-dimensional lattice gauge theories on a qudit quantum computer https://www.nature.com/articles/s41567-025-02797-w
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#NaturePhysics Simulating two-dimensional lattice gauge theories on a qudit quantum computer https://www.nature.com/articles/s41567-025-02797-w
Simulating two-dimensional lattice gauge theories on a qudit quantum computer - Nature Physics

Qubit-based simulations of gauge theories are challenging as gauge fields require high-dimensional encoding. Now a quantum electrodynamics model has been demonstrated using trapped-ion qudits, which encode information in multiple states of ions.

Nature
#PhysRevLett Quantum Simulation of SU(3) Lattice Yang-Mills Theory at Leading Order in Large-𝑁𝑐 Expansion https://journals.aps.org/prl/abstract/10.1103/PhysRevLett.133.111901 #NaturePhysics Simulating two-dimensional lattice gauge theories on a qudit quantum computer https://www.nature.com/articles/s41567-025-02797-w
#NaturePhysics Simulating two-dimensional lattice gauge theories on a qudit quantum computer https://www.nature.com/articles/s41567-025-02797-w // https://arxiv.org/abs/2310.12110 by using a trapped-ion qudit quantum processor, where quantum information is encoded in d different states per ion, rather than in 2.
Simulating two-dimensional lattice gauge theories on a qudit quantum computer - Nature Physics

Qubit-based simulations of gauge theories are challenging as gauge fields require high-dimensional encoding. Now a quantum electrodynamics model has been demonstrated using trapped-ion qudits, which encode information in multiple states of ions.

Nature
#NaturePhysics Simulating two-dimensional lattice gauge theories on a qudit quantum computer www.nature.com/articles/s41... // arxiv.org/abs/2310.12110 by using a trapped-ion qudit quantum processor, where quantum information is encoded in d different states per ion, rather than in 2.
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