Liquid HandlingLiquid handlingCurated metadata

Soft robotic patterning of liquids

Soft-robotics approach to manipulating/patterning liquids (Scientific Reports). Might be relevant as an alternative actuation/control mechanism for liquid handling, even if not a pipetting robot.

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Publication data

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Publication record

Matched by doi · retrieved 2026-07-21

Abstract

Patterning of two or more liquids, either homogeneous in each phase or mixed with particles (including biological matter, such as cells and proteins), by controlling their flow dynamics, is relevant to several applications. Examples include dynamic spatial confinement of liquids in microfluidic systems (such as lab-on-a-chip and organ-on-a-chip devices) or structuring of polymers to modulate various properties (such as strength, conductivity, transparency and surface finishing). State-of-the-art strategies use various technologies, including positioners, shakers and acoustic actuators, which often combine limited versatility of mixing with significant inefficiency, energy consumption, and noise, as well as tendency to increase the temperature of the liquids. Here, we describe a new kind of robotic mixers of liquids, based on electro-responsive smart materials (dielectric elastomer actuators). We show for the first time how an efficient soft robotic device can be used to produce, via combinations of rotations and translations, various spatial patterns in liquids and maintain them stable for a few minutes. Moreover, we show that, as compared to a conventional orbital shaker, the new type of robotic device can mix liquids with a higher efficacy (~ 94% relative to ~ 80%, after 8 min of mixing) and with a significantly lower increase of the liquids' temperature (+ 1 °C relative to + 5 °C, after 6 h of mixing). This is especially beneficial when mixing should occur according to controllable spatial features and should involve temperature-sensitive matter (such as biological cells, proteins, pre-polymers and other thermolabile molecules).

Bibliographic details

Published
2023-09-21
Journal/source
Scientific Reports
Publisher
Springer Science and Business Media LLC
DOI
10.1038/s41598-023-41755-5
Type
journal-article
Language
en
Volume / issue
13 / 1
Pages
Not supplied
ISSN
2045-2322

Access and metrics

Open access
Yes
OA status
gold
License
cc-by
Version
publishedVersion
Cited by
3
References
36
Retracted
No

Authors and affiliations

  1. Giacomo SassoQueen Mary University of London
  2. Nicola M. PugnoQueen Mary University of London · University of Trento
  3. James J. C. BusfieldCorresponding authorQueen Mary University of London
  4. Federico CarpiCorresponding authorDon Carlo Gnocchi Foundation · University of Florence · International Flame Research Foundation

Topics and keywords

Dielectric materials and actuatorsAdvanced Sensor and Energy Harvesting MaterialsAdvanced Materials and MechanicsMicrofluidicsMixing (physics)Soft roboticsMaterials scienceActuatorSoft matterPolymerNanotechnologyElastomerBiological systemComputer scienceChemistry

Funding

  • European Union’s Horizon 2020 Research and Innovation Programme · GrapheneCore3 881603