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    Paper-thin robot powered by muscle cells swims through mazes▼Powered by muscle cells, a paper-thin robot swims through watery maze✉newsTechnologyRobotics14 h ago

    MIT researchers have built a paper-thin swimming robot that moves using living muscle cells rather than motors. The soft robotic swimmer can navigate through watery mazes, demonstrating precise control of biohydraulic movement in a device thin enough to be flexible like paper. The work highlights growing progress in biohybrid robotics, where engineered living tissue is combined with synthetic materials to create machines that move in ways conventional robots cannot.

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    Paper-thin swimming robot powered by living muscle cells●A paper-thin, biohybrid swimming robot powered by a single layer of genetically engineered, living muscle cells that flaMmastodonTechnologyRobotics26 h ago

    Researchers have unveiled a paper-thin biohybrid swimming robot driven by a single layer of genetically engineered, living muscle cells that contract in response to light, making the device move with a flapping motion. The work combines mechanical and biological engineering, and is drawing attention as an example of how living tissue can be integrated into soft robotics for swimming machines.

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    KAIST Unveils Venus Flytrap-Inspired Robot Hand Material▼KAIST develops a Venus flytrap-inspired ‘robot hand’ material that senses objects and grasps them under light✉newsTechnologyRobotics1 h ago

    Researchers at the Korea Advanced Institute of Science and Technology (KAIST) have developed a new material inspired by the Venus flytrap that can sense objects and grasp them when exposed to light. The finding points to soft robotic hands that respond to stimuli without complex electronics, and it is drawing attention in robotics and materials science circles.

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    Paper-thin robot powered by muscle cells navigates watery maze▼Powered by muscle cells, a paper-thin robot swims through a watery maze✉newsTechnologyRobotics2 h ago

    Researchers have unveiled a paper-thin robot driven by living muscle cells that can swim its way through an underwater maze. The biohybrid device, reported by Tech Xplore, demonstrates how engineered muscle tissue can be used to propel soft microrobots through complex aquatic environments, a step with potential applications in medicine and targeted delivery.

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    Light-controlled robot material mimics Venus flytrap grip▼Venus flytrap-inspired 'robot hand' material senses objects and grasps them under light✉newsTechnologyRobotics7 h ago

    Researchers have developed a Venus flytrap-inspired material that works like a robotic hand: it senses nearby objects and automatically grasps them when stimulated by light. The soft, light-responsive design could open new possibilities in soft robotics and automated handling, and the unusual bio-inspired approach is drawing attention across science and technology news.

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    ETH Zurich robotic hand walks on its fingertips●Discover the extraordinary ETH Zurich robotic hand. Researchers successfully trained this detached mechanical hand to waMmastodonTechnologyAI213 h ago

    Researchers at ETH Zurich have trained a detached mechanical hand to walk independently on its fingertips, demonstrating striking advances in soft robotics and AI control. Clips of the eerie, lifelike movement are spreading widely online, with commenters marvelling at the dexterity and debating how such technology could be used in prosthetics, research and automation.

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    KAIST Unveils Venus Flytrap-Inspired Robot Hand Material●KAIST Develops a Venus Flytrap-Inspired ‘Robot Hand’ Material That Senses Objects and Grasps Them Under Light | Newswise✉newsTechnologyRobotics21 h ago

    Researchers at KAIST in South Korea have developed a new material for robotic hands inspired by the Venus flytrap, which can sense objects and grasp them when stimulated by light. The biomimetic design is being reported by science news outlets, drawing attention for combining sensing and actuation in a single soft material that responds without complex electronics.