Fabrication of Carbon-Based Ionic Electromechanically Active Soft Actuators
Author(s) -
Pille Rinne,
Inga Põldsalu,
Herman Klas Ratas,
Karl Kruusamäe,
Urmas Johanson,
Tarmo Tamm,
Kaija PõhakoEsko,
Andres Punning,
AnnaLiisa Peikolainen,
Friedrich Kaasik,
Indrek Must,
Daan van den Ende,
Alvo Aabloo
Publication year - 2020
Publication title -
journal of visualized experiments
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.596
H-Index - 91
ISSN - 1940-087X
DOI - 10.3791/61216
Subject(s) - materials science , fabrication , actuator , nanotechnology , microporous material , soft robotics , capacitive sensing , artificial muscle , inert , computer science , composite material , chemistry , artificial intelligence , medicine , alternative medicine , pathology , operating system , organic chemistry
Ionic electromechanically active capacitive laminates are a type of smart material that move in response to electrical stimulation. Due to the soft, compliant and biomimetic nature of this deformation, actuators made of the laminate have received increasing interest in soft robotics and (bio)medical applications. However, methods to easily fabricate the active material in large (even industrial) quantities and with a high batch-to-batch and within-batch repeatability are needed to transfer the knowledge from laboratory to industry. This protocol describes a simple, industrially scalable and reproducible method for the fabrication of ionic carbon-based electromechanically active capacitive laminates and the preparation of actuators made thereof. The inclusion of a passive and chemically inert (insoluble) middle layer (e.g., a textile-reinforced polymer network or microporous Teflon) distinguishes the method from others. The protocol is divided into five steps: membrane preparation, electrode preparation, current collector attachment, cutting and shaping, and actuation. Following the protocol results in an active material that can, for example, compliantly grasp and hold a randomly shaped object as demonstrated in the article.
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