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Dive into the research topics where Joshua Steimel is active.

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Featured researches published by Joshua Steimel.


Nature Communications | 2016

Elasticity-induced force reversal between active spinning particles in dense passive media

Juan L. Aragones; Joshua Steimel; Alfredo Alexander-Katz

The self-organization of active particles is governed by their dynamic effective interactions. Such interactions are controlled by the medium in which such active agents reside. Here we study the interactions between active agents in a dense non-active medium. Our system consists of actuated, spinning, active particles embedded in a dense monolayer of passive, or non-active, particles. We demonstrate that the presence of the passive monolayer alters markedly the properties of the system and results in a reversal of the forces between active spinning particles from repulsive to attractive. The origin of such reversal is due to the coupling between the active stresses and elasticity of the system. This discovery provides a mechanism for the interaction between active agents in complex and structured media, opening up opportunities to tune the interaction range and directionality via the mechanical properties of the medium.


Proceedings of the National Academy of Sciences of the United States of America | 2016

Emergent ultra–long-range interactions between active particles in hybrid active–inactive systems

Joshua Steimel; Juan L. Aragones; Helen Hu; Naser Qureshi; Alfredo Alexander-Katz

Significance Particle–particle interactions determine the state of a system. Control over the range and magnitude of such interactions is critical for science and technology. Here, we show that active particles experience an emergent ultra–long-range attractive interaction in the presence of a passive medium. The range and magnitude of this interaction are controlled by the elasticity of the medium and the activity of the particles. For the conditions studied here, we have found the range to be as large as 20 particle diameters, which is much larger than the typical interaction range between colloids. This interaction may open up new routes of control between active objects in passive environments and help us to understand the emergent interactions in nonequilibrium (biological) systems. Particle–particle interactions determine the state of a system. Control over the range of such interactions as well as their magnitude has been an active area of research for decades due to the fundamental challenges it poses in science and technology. Very recently, effective interactions between active particles have gathered much attention as they can lead to out-of-equilibrium cooperative states such as flocking. Inspired by nature, where active living cells coexist with lifeless objects and structures, here we study the effective interactions that appear in systems composed of active and passive mixtures of colloids. Our systems are 2D colloidal monolayers composed primarily of passive (inactive) colloids, and a very small fraction of active (spinning) ferromagnetic colloids. We find an emergent ultra–long-range attractive interaction induced by the activity of the spinning particles and mediated by the elasticity of the passive medium. Interestingly, the appearance of such interaction depends on the spinning protocol and has a minimum actuation timescale below which no attraction is observed. Overall, these results clearly show that, in the presence of elastic components, active particles can interact across very long distances without any chemical modification of the environment. Such a mechanism might potentially be important for some biological systems and can be harnessed for newer developments in synthetic active soft materials.


Physical Review Letters | 2014

Artificial Tribotactic Microscopic Walkers: Walking Based on Friction Gradients

Joshua Steimel; Juan L. Aragones; Alfredo Alexander-Katz


arXiv: Soft Condensed Matter | 2017

Aggregation Dynamics of Active Rotating Particles in Dense Passive Media

Juan L. Aragones; Joshua Steimel; Alfredo Alexander-Katz


Bulletin of the American Physical Society | 2017

Disorder Induced Transport

Joshua Steimel; Tal Kachman; Juan L. Aragones; Alfredo Alexander-Katz


Bulletin of the American Physical Society | 2016

Emergent Ultra-Long-Range Interactions Between Active Particles in Hybrid Active-Inactive Systems

Joshua Steimel; Juan L. Aragones; Helen Hu; Naser Qureshi; Alfredo Alexander-Katz


Bulletin of the American Physical Society | 2015

Active Dynamic Frictional Probes

Joshua Steimel; Juan L. Aragones; Alfredo Alexander-Katz


arXiv: Soft Condensed Matter | 2014

Artificial Tribotactic Microscopic Walkers

Joshua Steimel; Juan L. Aragones; Alfredo Alexander-Katz


Bulletin of the American Physical Society | 2014

Microscopic walkers in concentrated colloidal monolayers: Oscillators, rollers and spinners

Juan L. Aragones; Joshua Steimel; Alfredo Alexander-Katz


Bulletin of the American Physical Society | 2014

Microscopic Tribotactic Walkers

Joshua Steimel; Juan L. Aragones; Alfredo Alexander-Katz

Collaboration


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Alfredo Alexander-Katz

Massachusetts Institute of Technology

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Juan L. Aragones

Massachusetts Institute of Technology

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Helen Hu

Massachusetts Institute of Technology

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Naser Qureshi

National Autonomous University of Mexico

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