Conventional soft robot actuators excel in compliance, but their uncontrolled deformations compromise accuracy and hinder scaling to multi-degree-of-freedom (DoF) systems. We introduce a MONOlithic ORIGAMI-inspired soft folding actuator design (MONORIGAMI) that establishes a design strategy based on spatially programmed stiffness anisotropy to preserve material compliance along desired folding directions while selectively restricting deformation in unwanted directions. The actuator leverages stiffness tiers based on material thickness, patterned in an origami-inspired geometry with facets and creases, converting unconstrained soft deformation into accurate, repeatable, and composable folding motions without additional reinforcements. The design is fully 3D-printable through a single-material, single-print process that requires no assembly. Each actuator serves as a scalable motion primitive, and linking and orienting multiple actuators mechanically programs multi-DoF trajectories. Using the same fundamental module, we demonstrate three 3D-printed soft multi-DoF robotic systems spanning distinct application domains: (1) a compact 4-DoF wearable haptic device for high-fidelity cutaneous feedback in virtual reality (VR), (2) a 3-DoF joystick for kinesthetic feedback in teleoperation, and (3) a modular robotic gripper capable of underwater operation with geometry-encoded grasp trajectories. These systems demonstrate the module's capabilities for compact multi-axis integration, controlled physical interaction, and geometry-programmed operation across different environments. Together, these results show that MONORIGAMI provides a general, composable, accessible, reliable, and scalable platform for high-precision soft multi-DoF robotics, addressing long-standing limitations in both soft actuator design and fabrication.
Computerized flat knitting offers advantages in programmability, integrative forming, and multi-material integration. Here, we present rigid–soft hybrid knitted origami structures that combine stiffness-tunable spacer panels with soft folding lines of predefined curling direction, all fabricated in a single knitting pr...
Fei Sun, Sven Hellmann, A. Annadata et al.· Smart materials and structur...· 0 citations
Origami has been widely used to create various robotic systems, but it remains challenging to achieve diverse motion behaviors from a compact structure without increasing actuator complexity. This work investigates a novel method to generate distinct motion behaviors under uniform tendon actuation by leveraging program...
Soft robots have shown promise across applications such as wearable assistance, gripping, manipulation, and locomotion, where adaptability, safety, and compliance are essential. These functions are largely enabled by a small set of fundamental actuation modes: contraction, bending, twisting, rotation, and stiffening; b...
Ming-Yuan Li, Russell Dickerson, Run-Ze Zuo et al.· Science Advances· 0 citations
ABSTRACT Origami has been a rich source for the design of soft deployable mechanisms capable of safe human‐robot interaction. However, the relatively weak structural stiffness of the folding crease lines gives rise to kinematic instability during shape transition, constraining practical robotic applications. Here, a 3D...
S. Yu, Sang-Joon Ahn, Wonchul Lee et al.· Advancement of science· 0 citations
Soft robotic systems require the integration of compliant and stiff components, yet soft-rigid interfaces remain prone to failure under cyclic deformation due to discrete material junctions. In contrast, biological systems rely on functionally graded materials to distribute stress and optimize performance. Here, we imp...
D. C. Bershadsky, Franz A. Stolpen, Z. Page et al.· Advances in Materials· 0 citations
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