Using ultrafast THz nanoscopy, we resolved the interplay between surface morphology, crystallographic phase, and vertical carrier dynamics in metal halide perovskites. Fantastic collaboration with Michael Johnston's group @UniofOxford.
@NaturePhotonics
https://t.co/Kpksic3JBB
New article online: In situ nanoscopy of single-grain nanomorphology and ultrafast carrier dynamics in metal halide perovskites.
https://t.co/MfIsIBRiE1
A paper on metal halide perovskites from time in @Huber_Group and in Oxford, just published in Nature Photonics
We use ultrafast nanoscopy to see structural modes on the nanoscale as well as ultrafast charge carrier motion!
https://t.co/7O6vZrJVrk
Kleine Schritte für Elektronen – große Schritte für die Solarzellen der Zukunft?
Physikerinnen und Physiker an der Universität Regensburg und der Universität Oxford enthüllen mit einem ultraschnellen Mikroskop, wie sich Elektronen in einem ne...
https://t.co/u0PutQTK2t
Great news! Our latest results have been published in @NaturePhotonics. We developed an approach based on ultrafast near-field microscopy to simultaneously probe the nanoscale structure and ultrafast carrier dynamics in metal halide perovskites https://t.co/fmzOWwV2YC
Happy to announce our latest work has been published in @NaturePhotonics. We have developed a method based on ultrafast near-field microscopy to study the interplay between the nanoscale structure and ultrafast carrier dynamics in metal halide perovskites. https://t.co/2RsFtolzoD
Do you want to fight climate change? Then you should build better solar cells!
For this, perovskites are setting new records, but why? Happy to see my colleagues investigate that question with nanoscale spatial and subcycle temporal resolution:
https://t.co/5MyeidOceN
My dear colleagues from @Huber_Group at @uni_regensburg have recently explored diffusion in metal halide perovskites! Their results have been published today in @NaturePhotonics! 🥳
Congratulations on a fantastic paper!
🔗Links: https://t.co/Seh96ZfzHK or https://t.co/q3HyvH7HMR
Using ultrafast THz nanoscopy, we resolved the interplay between surface morphology, crystallographic phase, and vertical carrier dynamics in metal halide perovskites. Fantastic collaboration with Michael Johnston's group @UniofOxford.
@NaturePhotonics
https://t.co/Kpksic3JBB
🔓 #OpenAccess + Most Read in the past 30 days: "Ultrafast Exciton Dynamics in the Atomically Thin van der Waals Magnet CrSBr" by Meineke et al. @Huber_Group@sofergroup
https://t.co/TQgDDmVdGA
Ever imagined capturing chemical reactions with atomic resolution on video?🧬⌬🎥 We take a step closer to this vision with near-field optical tunneling emission (NOTE) microscopy💥https://t.co/aZkMcPlUEo @Huber_Group NOTE mechanism validated by real-time TDDFT💻! @CP2Kproject
New #openaccess article online: Ultrafast atomic-scale scanning tunnelling spectroscopy of a single vacancy in a monolayer crystal.
https://t.co/GDRirHMDa8
It is here! The result of years of hard work together with a great team.🥳🥳
Check out how we were able to bring optical microscopy to the atomic scale and use this to sample subcycle tunnelling currents directly in the time domain:
https://t.co/mi8kVxHdld
Some work from my time in Regensburg, in the @Huber_Group.
We worked out how to measure the coherent emission from tunnelling electrons, this lets us do ultrafast optical microscopy now at the atomic scale!
https://t.co/Dk7Bs3NVNa
We have discovered a quantum-mechanical contrast mechanism that enables all-optical microscopy to achieve atomic resolution while retaining subcycle precision. This new concept allows us to trace electrons on their intrinsic length and time scales.
https://t.co/lpCedsdxf3
First day of the inaugural symposium at the #RUN (Regensburg Center of Ultrafast Nanoscopy) opened by the hero of the RUN Rupert Huber @Huber_Group . There is physics, chemistry and biology in the mix … time to learn new scientific languages 😊!
We develop ultrafast lightwave-driven scanning tunnelling spectroscopy to investigate how the spin-orbit-split energy levels of an isolated Se vacancy within a WSe2 monolayer shift under phonon displacement. Read the full story in @NaturePhotonics.
https://t.co/JUUApETCwI
Quantum dance to the beat of a drum: physicists at the University of Regensburg choreograph the shift of a quantized electronic energy level with atomic oscillations faster than a trillionth of a second. Read the full story in @NaturePhotonics.
https://t.co/JUUApETCwI