Sign in

Daniela J Kraft

@danielajkraft.bsky.social
130 followers 110 following 15 posts

Professor in Soft Matter

PostsRepliesMedia
Daniela J Kraft @danielajkraft.bsky.social · 11/09/2026
This experimental observation has puzzled us for a long time: anisotropic active particles revert their swimming at higher fuel concentrations! The experiment and explanation now in Communications Physics: www.nature.com/articles/s42... Great work by Solenn Riedel and Mengshi Wei!
011
Daniela J Kraft @danielajkraft.bsky.social · 17/07/2026
We are hiring a new faculty member in experimental soft matter! The deadline for applications is September 30, 2026.
careers.universiteitleiden.nl
FWN - Assistant professor in experimental soft matter (1.0 fte)Institute of Physics (LION)
FWN - Assistant professor in experimental soft matter (1.0 fte)Institute of Physics (LION)
000
Daniela J Kraft @danielajkraft.bsky.social · 27/03/2026
Are these alive? 🤔
150
Daniela J Kraft @danielajkraft.bsky.social · 26/02/2026
I am very excited that our latest work is now out in @nature.com: Brownian mechanical metamaterials! Great work by Julio Melio, in collaboration with Martin van Hecke and Silke Henkes: rdcu.be/e5H86!
rdcu.be
Pivoting colloidal assemblies exhibit mechanical metamaterial behaviour
Nature - A method is described for the manufacture of pivoting colloidal assemblies comprising rotating diamond and rotating triangle geometries that show tunable folding and unfolding by thermal...
1112
Daniela J Kraft @danielajkraft.bsky.social · 29/01/2026
Beautiful work by our group alumna Melissa Rinaldin!
010
Daniela J Kraft @danielajkraft.bsky.social · 06/01/2026
Floppy lattices are exciting model systems, however, so far, we have been making them by optical tweezers. Our newest work by @yogeshshelke.bsky.social and with @danpearce.bsky.social in @natcomms.nature.com uses self-assembly through tuning of the kinetic pathways: www.nature.com/articles/s41....
nature.com
Self-assembly pathways towards floppy colloidal square lattices - Nature Communications
Rearrangements govern many properties of materials and molecules, but it has been largely unexplored how to create flexible structures from the bottom up. Here, the authors use colloidal particle...
061
Reposted by Daniela J Kraft
Ali Azadbakht @azadbakht.bsky.social · 14/12/2025
We built an open-source DIY optical tweezers setup and turned it into a teaching tool for the lab/classroom. Low-cost, microscope-based optical trapping you can actually build. Curious what you think 👇 www.youtube.com/watch?v=GGlH...
youtube.com
Open Source DIY Optical Tweezers
YouTube video by Wfront Principle
021
Daniela J Kraft @danielajkraft.bsky.social · 06/09/2025
Interested in doing a PhD in my group? I have an opening for a PhD student to work on understanding and designing nanomedicine-membrane interactions! Apply here: careers.universiteitleiden.nl/job/Leiden-P...
careers.universiteitleiden.nl
PhD position in understanding and designing nanomedicines-membranes interaction
PhD position in understanding and designing nanomedicines-membranes interaction
002
Reposted by Daniela J Kraft
Leiden Institute of Physics @leidenphysics.bsky.social · 05/08/2025
#Activematter research by Marine Le Blay, Joshua Saldi & Alexandre Morin from @unileiden.bsky.social published in @natphys.nature.com ! Read more: edu.nl/btmta. @leidenscience.bsky.social #physics
044
Reposted by Daniela J Kraft
Ali Azadbakht @azadbakht.bsky.social · 02/07/2025
Cell membranes bend when proteins, viruses or nanoparticles stick to them. Two nearby bends “feel” each other through the lipid sheet, a bit like masses interact through curved spacetime. But do they always attract? We set out to measure that directly.
241
Reposted by Daniela J Kraft
Ali Azadbakht @azadbakht.bsky.social · 02/07/2025
🔗 Paper link below if you’d like the details. doi.org/10.1039/d4sm... 🙌 Thanks to @danielajkraft.bsky.social for brilliant work and guidance, and to @leidenphysics.bsky.social for funding the project. Interested in membrane mechanics or how we perform experiments? Feel free to contact me.
doi.org
Repulsions and attractions between membrane-deforming spheres, Janus-particles, and opposite tube-like deformations in giant unilamellar vesicles
Lipid membrane deformations have been predicted to lead to indirect forces between the objects that induce these deformations. Recent experimental measurements have found an attractive interaction bet...
132
Reposted by Daniela J Kraft
gulliver-lab.bsky.social @gulliver-lab.bsky.social · 13/05/2025
It was a huge pleasure to listen to @danielajkraft.bsky.social yesterday. Her talk was about ´Brownian mechanisms mechanical metamaterials and machines’. She is an invited professor on the Paris Science chair. @cnrs.fr @espciparispsl.bsky.social @justinlrt.bsky.social #liveSketching
182
Daniela J Kraft @danielajkraft.bsky.social · 04/05/2025
Anisotropic active particles cannot always simply turn to change their orientation after having reached a surface: as we show for active colloidal cubes, this can lead to several populations with different particles speeds. Now out in Langmuir! pubs.acs.org/doi/10.1021/...
pubs.acs.org
Fabrication and Characterization of Bimetallic Silica-Based and 3D-Printed Active Colloidal Cubes
Simulations on self-propelling active cubes reveal interesting behaviors at both the individual and the collective level, emphasizing the importance of developing experimental analogues that allow testing these theoretical predictions. The majority of experimental realizations of active colloidal cubes rely on light actuation and/or magnetic fields to have a persistent active mechanism and lack material versatility. Here, we propose a system of active bimetallic cubes whose propulsion mechanism is based on a catalytic reaction and study their behavior. We realize such a system from synthetic silica cuboids and 3D-printed microcubes, followed by the deposition of gold and platinum layers on their surface. We characterize the colloids’ dynamics for different thicknesses of the gold layer at low and high hydrogen peroxide concentrations. We show that the thickness of the base gold layer has only a minor effect on the self-propulsion speed and, in addition, induces a gravitational torque during sedimentation. For low activity, this gravitational torque orients the particles such that their velocity director is pointing out of the plane, thus effectively suppressing propulsion. We find that a higher active force can remedy the effects of torque, resulting in all possible particle orientations, including one with the metal cap on the side, which is favorable for in-plane propulsion. Finally, we use 3D printing to compare our results to cubes made from a different material, size, and roundness and demonstrate that the speed scaling with increasing particle size originates from the size-dependent drag. Our experiments extend the fabrication of active cubes to different materials and propulsion mechanisms and highlight that the design of active particles with anisotropic shapes requires consideration of the interplay between shape and activity to achieve favorable sedimentation and efficient in-plane propulsion.
052
Reposted by Daniela J Kraft
Sarah Veatch @veatchlab.bsky.social · 01/04/2025
I know it's crazy timing, nuts but Michigan Biophysics is hiring on the tenure track! App deadline is May 15. Join our interdisciplinary community. careers.umich.edu/job_detail/2...
careers.umich.edu
ASST PROFESSOR | U-M Careers
01015