HEIndividual fellowship2023–2025

ANIMODD · Achieving animate properties with nonlinear odd solids

Horizon Europe — Marie Skłodowska-Curie Actions

Duration
2023-09-01 → 2025-08-31
EU contribution
€203,464
Participants
1
Scheme
HORIZON-TMA-MSCA-PF-EF

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Results in brief

Achieving animate properties with nonlinear odd solids

Living materials, from the cellular scale up to plants and animals, are animate: they sense, compute, and respond to their environment. These capabilities yield an impressive palette of functionality: from robust locomotion to programmable shape-change and pattern formation. Inspired by living matter, recent progress in materials science attempts to realise these animate properties in synthetic materials. A recent report from the Royal Society identifies these animate materials as ‘a new and potentially transformative class of materials’, with application anywhere a material is required to function in an unpredictable, dynamic, and potentially damaging, environment. Examples include devices operating in deep space, in contact with moving animals, or in a changing climate. How should we design such synthetic animate materials? A particularly promising approach is the idea of an active solid: a solid material embedded with a distribution of sensors and actuators. These materials use the central concept of emergence from condensed matter physics to achieve functionality like self-folding, shape-morphing, and collective oscillation. Such robot-like behaviours do not come from any central controller. Instead, they emerge, bottom-up, from solid-body interactions between many interchangeable active units. Emergent behaviours are inherently robust, and as such are prime choices for designing adaptable functionality: if one active unit breaks, the collective behaviour of the whole solid remains unchanged. There are many possible interactions between active units that could be designed, but one recent class stands out as a distinguished route towards animacy: non-reciprocal, or odd, interactions, in which microscopic energy injection is used to break basic symmetries like Newton’s Third Law. These odd interactions cause the internal dynamics of the material to spontaneously undergo work cycles, converting energy injection into coherent motion and making them a natural candidate for programming animate mechanical behaviours, like robust crawling and rolling, or reconfigurable pattern formation. Indeed, recent work has shown that odd interactions yield linear phenomena that are forbidden in a passive material, such as unidirectional wave amplification, and mechanical waves in overdamped media. These linear phenomena suggest building blocks for designing animate properties. However, the wave amplification which odd interactions cause inherently leads to nonlinear mechanical deformations: indeed, the finite-amplitude cycles necessary for tasks like locomotion can only come from a balance of energy injection and nonlinearity. This nonlinear regime presents a tremendous opportunity for programming stable modes of actuation, built on excitations which are fundamentally nonlinear, like patterns and topological defects. Yet, understanding nonlinear odd solids remains a fundamental challenge, and key questions remain unanswered: can we realise and control stable nonlinear excitations in odd solids? How do these excitations react in response to environmental cues? And most crucially, how can nonlinear excitations be used to achieve animate properties?

Data: CORDIS, © European Union

Project objective

How can we create animate synthetic materials, able to sense, compute, and respond to their environment? To achieve these animate properties, one emerging class of materials stands out: odd solids. Odd solids use microscopic energy injection to break basic symmetries like Newtons 3rd law, resulting in far-from-equilibrium phenomena forbidden in passive materials. These phenomena promise a toolkit for designing animate functionalities like robust locomotion and pattern formation. However, to realise animate properties odd solids face a fundamental challenge: microscopic energy injection inherently leads to nonlinear mechanical deformations, yet this nonlinear regime remains completely unexplored. In this proposal I will surpass this limitation, by characterising the nonlinear excitations of an odd solid, then using these excitations as a toolkit for designing animate properties. Using continuum mechanical theory and lattice simulations, I will derive new fundamental results on travelling patterns and topological defects in odd solids, and determine how these nonlinear excitations interact with environmental cues like substrate friction. Crucially, I will then use these excitation-environment interactions to realise animate properties in a ready-made table-top experimental system. This proposal marries my expertise in nonlinear excitations in active systems, with the hosts expertise in the experimental development of odd solids, to push our fundamental understanding of odd interactions beyond the linear regime. My results will open a new line of research in active matter and animate materials, applicable across systems in which odd interactions can be designed from robotic matter, to living systems, down to the microscale. By positioning me at the heart of the emerging field of animate matter, and equipping me with a powerful new skillset of experimental experience and techniques, this Marie Curie action will take my scientific career to the next level.

Original text from CORDIS.

Participants

  • UNIVERSITEIT VAN AMSTERDAM · AmsterdamCoordinatorNetherlands

Links

Data: CORDIS, © European Union